Dental and medical treatments and procedures

Information

  • Patent Grant
  • 11684421
  • Patent Number
    11,684,421
  • Date Filed
    Monday, August 29, 2022
    a year ago
  • Date Issued
    Tuesday, June 27, 2023
    10 months ago
Abstract
A method treating a root canal in a tooth by introducing into the pulp chamber of a tooth and pulsing a laser light into the fluid reservoir so as to disintegrate pulp within the root canal without generation of any significant heat in said liquid fluid so as to avoid elevating the temperature of any of the dentin, tooth, or other adjacent tissue more than about 5° C.
Description
FIELD OF THE INVENTION

The present invention is related to the field of dentistry, medicine and veterinary medicine.


BACKGROUND OF THE INVENTION

In the field of dentistry, one of the most important and delicate procedures is that of cleaning or extirpating a diseased root canal to provide a cavity which is substantially free of diseased tissue and antiseptically prepared for a permanent embalming or obturation to seal off the area. When done properly, this step enables subsequent substantially complete filling of the canal with biologically inert or restorative material (i.e., obturation) 1, without entrapping noxious tissue in the canal that could lead to failure of the therapy.


In a typical root canal procedure, the sequence is extirpation of diseased tissue and debris from and adjacent the canal followed by obturation. Often there is an intermediate filling of the canal with a calcium hydroxide paste for sterilization and reduction of inflammation prior to obturation and final crowning. In performing the extirpation procedure, the dentist must gain access to the entire canal, shaping it as appropriate. However, root canals often are very small in diameter, and they are sometimes quite curved with irregular dimensions and configurations. It is therefore often very difficult to gain access to the full length of the canal and to properly work all surfaces of the canal wall.


Many tools have been designed to perform the difficult task of cleaning and shaping root canals. Historically, dentists have used elongate, tapered endodontic files with helical cutting edges to remove the soft and hard material from within and adjacent the root canal area, Such root canal dental procedures often result in overly aggressive drilling and filing away of otherwise healthy dentin wall or physical structure of the tooth root thereby unduly weakening the integrity or strength of the tooth. Additionally, when performing root canal procedures, it is desirable to efficiently debride or render harmless all dead, damaged, or infected tissue and to kW all bacteria, viruses and/or other undesirable biological material within the root canal system, Illustrations of a typical root canal system are shown in FIGS. 1A and 1B. The mot canal system includes the main root canal 1 and many lateral or accessory canals 3 that branch off of the main canal 1, all of which can contain diseased or dead tissue, bacteria, etc., It is common during root canal procedure to mechanically strip out the main canal nerve, often tearing it away from the lateral canal nerves, much of which can then stay in place in the canal and become the source of later trouble, Thereafter, the main canal 1 is cleaned and extirpated with a tapered file. While it is desirable to extirpate all of the main and accessory canals in a root canal system, some of the lateral canals 3 are very small and extremely difficult to reach in order to remove tissue. Such lateral canals are often perpendicular to the main canal and may bend, twist, and change cross-section as they branch off from the main canal, making them practically inaccessible to extirpation with any known file or other mechanical device. Accordingly, lateral canals are often not properly extirpated or cleaned. Many times no effort is made in this regard, relying instead on chemical destruction and embalming processes to seal off material remaining in these areas, This approach is sometimes a source of catastrophic failure that can lead to loss of the tooth and other problems. Further, when the main canal is extirpated with a tapered file, this action can leave an undesirable smear layer along the main canal which can plug some of the lateral canal openings and cause other problems that trap noxious material against later efforts to chemically disinfect the canal.


Dentists can attempt to chemo-mechanically debride and/or sterilize both main and lateral canals using a sodium hypochlorite solution or various other medicaments that are left in the root canal system for 30 to 45 minutes a time following primary mechanical extirpation of nerve and pulp tissue. However, this approach does not necessarily completely debride or render harmless ail of the lateral root canals and material trapped therein because of the difficulty in cleaning off the smear layer and/or negotiating and fully wetting the solution into some of the smaller twisted lateral canals. As a result, many treatments using this method fail over time due to reoccurring pathology. This often requires retreatment and sometimes loss of the tooth.


Attempts have been made to reduce or eliminate the use of endodontic files and associated drawbacks by using lasers in the performance of root canal therapy. Some of these approaches involve burning away or carbonizing diseased and other tissue, bacteria, and the like within the canal. In these approaches, laser light is said to be directed or focused into or onto the diseased tissue, producing very high temperatures that intensely burn, carbonize, ablate, and destroy the tissue. These ablative treatments using high thermal energy to remove tissue often result in damage to the underlying collagen fibers and dentin of the root 5, even fusing the hydroxyapatite which makes up the dentin. In some cases, such treatments can cause substantial heating of the periodontal material and bone 7 surrounding the tooth, potentially causing necrosis of the bone and surrounding tissue. Additionally, the high temperatures in such treatments can melt the walls of the main canal, often sealing off lateral canals, thereby preventing subsequent treatment of lateral canals, Other attempts to use lasers fix root canal therapy have focused laser light to a focal point within fluid disposed within a root canal to boil the fluid. The vaporizing fluid creates bubbles which erode material from the root canal when they implode. Such treatments which must raise the fluid temperature above the latent heat of vaporization significantly elevate the temperature of the fluid which can also melt portions of the main canal and cause thermal damage to the underlying dentin, collagen, and periodontal tissue. The damage caused to the tooth structure by these high energy ablative laser treatments weakens the integrity or strength of the tooth, similar to endodontic treatment utilizing endodontic files.


Therefore, there is a present and continuing need for minimally invasive, biomemetic, dental and medical therapies which remove diseased tissue and bacteria from the main root canal as well as the lateral canals of the root canal system while leaving the biological structures undamaged and substantially intact.


SUMMARY OF INVENTION

It is an object of the present invention to provide new medical, dental and veterinary devices, treatments and procedures.


It is another object of the present invention to provide a device for producing a photoacoustic wave used in endodontal treatment of tooth interiors comprising a laser system having a wavelength of at least 1500 nm and power of at least 0.5 Watt, a sheath coupled at one end to the laser system said sheath comprising a laser fiber optic and a treatment fluid lumen, both running the length of the sheath and exiting the sheath at a distal end, said laser fiber optic having a flat, blunt or modified tip and whereby inserting the tip into the treatment fluid delivered into root canal produces a photoacoustic wave as the laser is pulsed.


It is yet another object of the present invention to provide a method for endodontal treatment of tooth interiors comprising the steps of: providing a laser having a wavelength of at least 1500 nm and at least 0.5 Watt; providing a laser fiber optic coupled to the laser, said laser fiber optic having a flat, blunt or modified tip; inserting the tip of the laser fiber optic into a root canal in a tooth; treating the interior root canal by creating a photoacoustic wave front in the interior of the root canal using the at least 1500 nm at least 0.5 Watt laser energy; withdrawing the tip of the laser fiber optic from the root canal; and sealing root canal.


In accordance with one embodiment of the present invention, a method is provided for treating a root canal in a tooth containing a crown portion extending to above a gum line and one or more elongate roots integral with and projecting from the crown into the gum and an adjacent jaw bone. Each root has a root canal containing pulp including nerve and other tissue in open communication with a pulp or coronal chamber in the crown. An opening is formed in the crown into the pulp chamber dimensioned to enable working access to a canal of said one or more roots for treatment thereof. Pulp is removed from the pulp chamber to provide an open area therein to gain access to pulp in said canal and, optionally, remove at least pan of the pulp from said canal to make an opening in said canal in flow communication with said open area in said pulp chamber. Liquid containing hydroxyl groups is dispensed into at least the open area in the pulp chamber in an amount sufficient to provide a liquid reservoir.


A laser system is provided containing a source of a laser light beam and an elongate optical fiber connected to said source and configured to transmit said laser light beam to a tip portion thereof: The tip may include a tapered tip tapering to an apex with a surrounding conical wall, substantially the entire surface of which is uncovered so that said laser light beam is emitted therefrom generally omnidirectionally, The optical fiber may also contain cladding in the form of a continuous sheath coating extending from the source to a terminus edge spaced proximally from said apex of said tapered tip toward said source by a distance of from about 2 to about 10 millimeters so that the surface of said optical fiber is uncovered over the entirety of said tapered tip and over any part of a cylindrical outer surface of the fiber between the terminus and the beginning of the tapered end.


The tip of the laser is substantially completely immerse into the liquid reservoir, and pulsing said laser source at a power level of from about 0.1 W to about 1.5 W and at a pulse duration of from about 50 to about 1000 microseconds, at a pulse frequency of from about 2 Hz to about 25 Hz, and for a cycle time of from about 10 to about 40 seconds.





DETAILED DESCRIPTION OF THE DRAWINGS


FIGS. 1a and 1b illustrate a root canal system including a main or primary root canal and lateral and sub-lateral canals that branch off of the main canal. Some of these lateral canals are very small and extremely difficult to reach in order to eliminate any bacteria and/or viruses. Such lateral canals may bend, twist, change cross-section and/or become long and small as they branch off from the main canal, making them very difficult to access or target therapeutically.



FIG. 2 is a Scanning Electron Micrograph (SEM) clearly illustrating internal reticular canal wall surfaces following use of the present invention which, as can be seen, are preserved with no burning, melting, or other alteration of the canal wall structure or loss of its porosity after subtraction of the internal tissue. The surfaces retain high porosity and surface area and are disinfected for subsequent filling and embalming, i.e., using rubber, gutta-percha, latex, resin, etc.



FIG. 3A illustrates a more preferred approach using the current invention, including optical activation.



FIG. 3B is a graphical illustration of features of a laser fiber tip configured according to a preferred embodiment of the present invention.



FIG. 4 is a graphical illustration of a laser system according to an embodiment of the present invention.



FIG. 5 is a graphical illustration of an applicator tip of a laser system according to an embodiment of the invention.



FIG. 6 shows a somewhat schematic cutaway view of a tooth and healthy surrounding gum tissue.



FIG. 7 shows a somewhat schematic cutaway view of a tooth and surrounding gum tissue including calculus deposits and partially diseased epithelium.



FIG. 8 shows a somewhat schematic cutaway view of a tooth and surrounding gum tissue including a sulcus filled with a fluid mixture in which an instrument has been inserted for treatment.





DESCRIPTION OF THE PREFERRED EMBODIMENTS

The present invention is useful for treating dental, medical, and veterinary problems; primarily dental surface and nerve preparations. The present invention uses nanotechnology and/or microtechnology in dental, medical, and veterinary application during procedures that otherwise face reoccurring infection, inefficient performance and at an increase in expenses. The result of this invention has the potential to decrease the patient chair time by over 50%, thereby reducing the cost of the procedure to the practitioner and reducing the potential for future failures over time.


The overall scheme according to the present invention comprises a first solution that is introduced into nerve tissue, typically in a tooth. The first solution enlarges and porositizes the nerve tissue. Most, if not all, of the nerve is mechanically removed from the tooth by the forces produced by the expanding tissue on the tapered walls. A second solution is introduced into the canal left by the optionally removed the nerve tissue, which dissolves any remaining nerve tissue and debrides the accompanying area. The porosity of the tissue allows for rapid penetration of fluids.


The first dispensed solution comprises a carrier, a source of oxygen and a sensitizing agent. The carrier is preferably water, paste, foam and or gel or a combination of the like. The source of oxygen is preferably an oxidizing bleach agent, such as sodium hypochlorite, perborate or peroxide and the like. The sensitizing agent is preferably a nano- or micro-structure as exemplified by fullerenes, such as nanotubes or buckyballs, or other nanodevices (including micro-sized) capable of sensitizing the oxygenating or activated or activatable chemical, e.g., oxidative bleaching agent.


The sensitizing is accomplished when the first solution is applied to a targeted area directly or with mechanical, physical or other assistance such as mild vibrational or ultrasonic stimulation. The sensitizer is then activated by an energy source, such as photons (light), acoustic (ultrasonic), photo-acoustic, thermo-acoustic, electromagnetic or other phenomena that transitions the sensitizer from a ground state to a higher energy state (singlet state). Typically the singlet state is converted into a triplet state via an intersystem crossing mechanism. The energy difference between the triplet state and the ground state is transferred to the ground state of the. oxygen source and as a result highly reactive singlet oxygen is formed (type II photodynamic reaction). Presumably, the singlet oxygen expands and porositizes the nerve tissue.


The first solution can preferably include additional effective ingredients such as surfactants to reduce the surface tension of the solution and act as a lubricant between the nerves and the canals; antibiotics; stabilizers; polar, non-polar solvents, and the like.


This same methodology can also be used with chemical constituents other than singlet oxygen that are released by various forms of imparted energy.


Preferred energy sources include, but are not limited to; sonic, ultrasonics, electromagnetic, optical, micromechanical stirring or other similar forms that can impart energy to the fluid or combination of these, which is absorbed by the sensitizer structure and creates a resultant reaction.


The most preferred embodiment of the energy source is a pulsed laser light that is photoacoustically coupled to the first solution. The laser light is delivered using a commercially available laser source and an optical light fiber attached at a proximate end to the laser source and has an application tip at the distal end. The application tip may be flat, but is preferably a beveled or tapered tip having a taper angle between 30 and 36 degrees. Preferably any cladding on the optic fiber is stripped from approximately 5 mm of the distal end. The taper angle of the fiber tip and removal of the cladding provide improved lateral dispersion of the emitted laser light and photoacoustic effect.


It was found that the photoacoustic coupling of the laser light to the first solution provides enhanced penetration of the first solution into the surrounding tissue and accessory canals, thereby allowing an excited oxygen source to reach areas of the canal system that are not accessible to laser light alone.


In another use for the present invention is in the field of dental carries or cavities. X-ray identifies a carrier. The carrie is entered using a minimal event (small drillbit or laser drilled holes), the first solution is added and activated, the activated solution arrests, cleans and debides the pathological malady without according damage to the healthy tissue. After the first solution cleans the tooth area interior or affected carrie, the used solution is removed from the carrie, a second X-ray may be performed with or without a radio-opaque fluid that is introduced into the carrie to identify the extent of cleaning performed by the first solution. The first solution may be reintroduced into the carrie in order to further clean the interior, as necessary. After the carrie has been determined to be clean and free from infection, it may then be filled according to current dental practices with only a small hole to seal on the surface.


An alternate method for introducing the first and/or second solutions would be to use vacuum enhanced delivery methods. One such method would be to apply a vacuum to the root canal, thereby removing any included solution, then introducing either the first or second solution into the vacuum-vacated canal, thereby using atmospheric pressure to force the solution into small and typically inaccessible areas. This vacuum/pressure methodology can also be applicable to more effectively infusing the filling materials.


This same methodology has the potential for use with other chemical species that do not require the use of the nanotubes, but whose molecules react with the inherent energy and whose molecules produce similar effects to those previously mentioned above, i.e. expansion, debridement, etc.


In addition to expansion and porositizing the nerve tissue, it is found that the first solution also mechanically abrades, cleans and debrides the surface of the canal or tissues. Resultant Scanning Electron Micrographs (SEM's) show the reticular surface of the dentin to be devoid of infection and malady and allowing for rinsed removal of the debris elements.



FIG. 3A illustrates a more preferred approach using the invention. A. The first solution, which containing the nanotechnology, is slowly dispensed into the main root nerve and canal, 2 and 1, respectively, using a syringe 4 with nerve 2 still intact (no filing required) and allowed to penetrate into accessory nerve canals 3. B. An activating energy source 6, in this approach photo-acoustic, is applied. C. The nanotechnology is activated by the energy source 6 thereby expanding the dental root nerve tissue 2 (up to 10-fold) and hydraulically forcing a portion of the nerve 2, along with a portion of the accessory nerve out of the tapered root structure and the accessory nerve out of the accessory canals. Simultaneously, the nerve tissue 2 becomes more porous allowing more agent access to repeat the process. D. The enlarged nerve 2 is optionally removed from the root canal 1. The second solution is added with to complete tissue decomposition. E. The cavity is then rinsed and filled and sealed (crosshatched).


As shown in FIG. 3B and FIG. 4, the most preferred embodiment of the present invention utilizes an energy source which is preferably a pulsed laser energy that is coupled to a solution in such a fashion that it produces an enhanced photoacoustic pressure wave 8. The laser light is delivered using a commercially available laser source 12 and an optical light fiber 14 attached at a proximate end to the laser source 12 and has an application tip 20 at the distal end. The application tip 20 may be flat or blunt, but is preferably a beveled or tapered tip having a taper angle between 10 and 90 degrees. Preferably any cladding 18 on the optic fiber 14 is stripped from approximately 2-12 mm of the distal end. The taper angle of the fiber tip 20 and removal of the cladding 18 provide wider dispersion of the laser energy 16 over a larger tip area and consequently produces a larger photoacoustic wave. The most preferred embodiment of the application tip 20 includes a texturing or derivatization of the beveled tip 20, thereby increasing the efficacy of the conversion of the laser energy 16 into photoacoustic wave energy within the solution. A coupling ferrule may be used to interchange different applicator tips. It should be noted that in the present invention this tapered tip 20, the surface treatment, and the sheath or cladding 18 stripping is not for the purpose of diffusing or refracting the laser light 16 so that it laterally transmits radiant optical light energy to the root surface. In the current invention these features are for the sole purpose of increasing the photoacoustic wave.


Herein derivatization means a technique used in chemistry that bonds, either covalently or non-covalently, inorganic or organic chemical functional group to a substrate surface.


It was found that the photoacoustic coupling of the laser energy to the solution provides enhanced penetration of the solution into the root canal and accessory canals, thereby allowing the solution to reach areas of the canal system that are not typically accessible.


The photoacoustic (PA) wave is generated when the laser energy transitions from the tip (usually quartz or similar material) of the laser device into the fluid (such as water, EDTA, or the like. The transmission from one medium to another is not 100% efficient and some of the light energy is turned into heat near the transition that the light makes from one media to the other. This heating is very rapid, locally heating some of the molecules of the fluid very rapidly, resulting in molecule expansion and generating the photoacoustic wave. In a pulsed laser, a wave is generated each time the laser is turned on, which is once per cycle. A 10 HZ pulsed laser then generates 10 waves per second. If the power level remains constant, the lower the pulse rate, the greater the laser energy per pulse and consequently the greater the photoacoustic wave per pulse.


The photoacoustic effect creates sound (pressure) waves that can potentially propagate throughout both the media and localized structure, e.g., the main root canal and the lateral or accessory canals. These sound waves provide vibrational energy, which expedites the breaking loose of and/or causing cell lysis of the biotics and inorganics in the root canal and lateral canal systems. In addition these vibrational waves help the propagation of the fluids into and throughout the main and lateral canal systems.


In general, light travels in a straight line, however, in a fluid light can be bent and transmitted around corners, but this transmission is minimal compared to the straight-line transmissibility of light. A sonic or shock wave on the other hand is easily transmitted around corners and through passages in a fluid. For example, air is a fluid. If you stood in one room and shined a bright light from that room into a hallway that was at right angles to that room, the intensity of the light would decrease the farther you go down the hallway. If you then went into a room at the end of the hallway and went to a back corner of the room, the light might be very dim. However, if while standing at the same location as the light source, you yelled vocally at the hallway, you could most likely hear the sound in the back corner of the back room. This is because sound is propagated spherically by the vibration of molecules instead of primarily in a straight line like light.


Although the laser light cannot turn corners easily and cannot propagate easily into the lateral canals, the sonic wave produced by the photoacoustic effect is easily transmitted through the lateral canals. Also, since the canals are tapered in a concave fashion, the photoacoustic wave will be amplified as it transverses toward the end of the lateral canals. Since the cross-sectional area of the lateral canals decreases as the wave traverses toward the canal end, the amplitude of the wave increases much as a Tsunami wave increases as it approaches a beach where the cross sectional area of the water channel constantly decreases.


The tip design can affect the magnitude and direction of the produced photoacoustic wave. A tapered tip has the effect of diverting the laser energy over the larger cone area (compared to the circular area of the standard tip) and thereby creating a larger photoacoustic wave. The same applies to any stripped sheath section of the tip.


Testing Using a MEMS Pressure Sensor:


A small plastic vial was fitted with a fluid connection (bottom of vial at right angles to axis of vial) that was close coupled hydraulically to a miniature MEMS piezo-resistive pressure sensor (Honeywell Model 24PCCFA6D). The sensor output was run through a differential amplifier and coupled to a digital Oscilloscope (Tektronics Model TDS 220). This model oscilloscope will hold a trace on the screen and allow a digital image to be taken of the trace. The vial and sensor were filled with water. The laser tip was submerged below the fluid level in the vial and fired (laser frequency was 10 HZ) at various power setting. A trace was recorded of the resulting photoacoustic pressure waves.


A 170% increase in the photoacoustic wave was observed for the tapered and stripped tip versus the blunt-ended tip. A 580% increase in the photoacoustic wave was observed for textured (frosted) tapered/stripped tip versus the standard blunt-ended tip. The tapered tip has a greater exposed area than the blunt straight tip. The fiber optic is coated with a polyamide sheath, which reflects the laser beam internally, not allowing it to escape and propagating the laser energy down the fiber to the tip. On the straight or blunt-ended tip, the exposed area is the circular cross-sectional area of the end of the tip. On the tapered tip and textured tip the exposed area is the area of the tapered cone, which is greater than the exposed area of the blunt straight tip. This invention is on the ability of these features to increase the photoacoustic wave not to refract or redirect the radiant optical properties of the laser energy. In fact such radiant light energy can fuse the root canal wall surface making it impossible to clean and debride the small passages behind the fused areas.


During a previous experiment, fluid was placed into a Dampen dish located on a Formica surface. The laser tip was placed into the fluid and fired repetitively. The photoacoustic wave vibrated the Dampen dish on the Formica surface making an audible sound. For a specific tip this audible sound increased with an increasing power level of the laser. This implies that the audible sound is somewhat proportional to the amplitude of the photoacoustic wave. This was verified by placing a sound level meter one inch away from the Dampen dish and recording the dB level. Next, the laser power level was held constant and the tip was changed. The tapered and stripped sheath tip produced a greater photoacoustic wave than the standard straight or blunt-end tip. A tapered and stripped tip was then frosted or etched. This tip was tested and showed a greater photoacoustic wave generated than the non-frosted version. This was verified to be true at three different power levels. It would appear that since the power level was held constant, the photoacoustic wave amplitude would also be proportional to the exposed area and the surface treatment.


An increase in photoacoustic wave generation was seen by stripping the polyamide sheath away for 2-12 mm from the tapered end. Although laser light is coherent and travels in a straight line, some light bounces off of the polyamide sheath at an angle. As this light travels down the light path it continues bouncing off of the inside of the polyamide sheath and will eventually exit at an angle to the sheath once the sheath stops and exposes a non sheathed section. Therefore, some of the laser energy would also exit where the polyamide sheath has been removed, just upstream of the tapered tip. A tip with the sheath removed for 2 to 12 mm directly upstream of the tapered section was placed in the above-mentioned test set up.


The photoacoustic wave will propagate primarily perpendicular to the exposed surface and secondarily spherically with respect to the exposed surface. The standard straight end tip would have the PA wave propagating primarily in line with the tip. The tapered tip produced PA wave would be primarily propagated in a more lateral pattern. The tapered tip with the shinned sheath would propagate the PA wave in a more spherical pattern than the other two.


The standard straight blunt end tip would be less desirable because it directs the photoacoustic wave toward the apical end of the tooth and would have more propensities to drive the fluid from the nerve hole in the apical end and outward into the gum which could create medical complications. Since there may be lateral or accessory canals anywhere along the main root canal, it is more desirable to have a spherical wave distribution to direct waves to as many lateral canals as possible. Therefore the tapered tip with the skinned sheath produces a more desirable effect within the tooth.


Resultant Scanning Electron Micrographs (SEM's) show the reticular surface of the dentin to be devoid of infection and malady and allowing for rinsed removal of the debris elements.


A method and apparatus according to a preferred embodiment of the present invention uses a subablative energy source, preferably a pulsing laser, to produce photoacoustic energy waves in solutions dispensed in a root canal to effectively clean the root canal and lateral canals. In the context of this application, the term “subablative” is used to refer to a process or mechanism which does not produce or cause thermal energy-induced destruction of nerve or other native tooth structure, material or tissue, namely, that does not carbonize, burn, or thermally melt any tooth material. The pulsing laser in the inventive configuration of a preferred embodiment induces oscillating photoacoustic energy waves which emanate generally omnidirectionally from adjacent the exposed length of an applicator tip where light energy is caused to exit the surface of optical fiber material in many directions/orientations into adjacent fluid medium from a light energy source maintained at a relatively low power setting of from about 0.1 to no more than about 1.5 watts in order to avoid any ablative effects.


According to one embodiment of the present invention, a tooth is first prepared for treatment in a conventional manner by drilling a coronal access opening in the crown of the tooth to access the coronal or pulp chamber and associated root canal. This may be performed with a carbide or diamond bur or other standard approaches for preparation of a tooth for root canal treatment known in endodontic practice after which the upper region above the entry of the canal into the chamber is generally emptied of pulp and other tissue. Thereafter, a first solution is slowly dispensed into the chamber, such as by use of a syringe or other appropriate mechanisms, with a small amount seeping and/or injected down into the individual root canals containing the as-yet unremoved nerves and other tissue. The first solution is preferably dispensed in an amount sufficient to fill the chamber to adjacent the top of the chamber. In other embodiments, portions of the nerve and other tissue in the canals may be removed using a broach or other known methods for removing a nerve from a root canal before the first solution is dispensed into the chamber and down into the root canals. In some embodiments, only a single solution may be used, although multiple solutions or mixtures may also be used as explained in more detail below.


The first solution preferably includes a compound containing molecules with at least one hydroxyl functional group and/or other excitable functional groups which are susceptible to excitation by a laser or other energy source in the form of rapidly oscillating photoacoustic waves of energy to assist with destructive subablative disintegration of root canal nerve tissue. It has been observed that certain fluids which do not contain excitable groups, such as xylene, do not appear to produce the desired photoacoustic wave when an energy source has been applied. In one embodiment of the invention, the first solution is a standard dental irrigant mixture, such as a solution of water and ethylenediamine tetraacetic acid (EDTA), containing hydroxyl or other excitable groups. In other embodiments of the invention, the hydroxyl-containing solution may be distilled water alone. In other alternate embodiments, solutions containing fluids other than water may be used, or various pastes, perborates, alcohols, foams, chemistry-based architectures (e.g., nanotubes, hollow spheres) and/or gels or a combination of the like may be used. Additionally, various other additives may be included in the solution. For example, and not by way of limitation, the first solution may include agents energizable by exposure to energy waves propagated through the solution from adjacent the fiber. These include materials selected from the group consisting of hydrogen peroxide, perborates, hypochlorites, or other oxidizing agents and combinations thereof. Additional additives believed to be energizable in the solution include materials selected from the group consisting of reducing agents, silanols, silanating agents, chelating agents, chelating agents coordinated or complexed with metals (such as EDTA-Calcium), anti-oxidants, sources of oxygen, sensitizing agents, catalytic agents, magnetic agents and rapidly expanding chemical, pressure or phase change agents and/or combinations of the like. The solution may also include dispersions or mixtures of particles containing nano- or micro-structures, preferably in the nature of fullerenes, such as nanotubes or bucky balls, or other nanodevices (including micro-sized devices) capable of sensitizing or co-acting with oxygenating, energizable, or activatable components in the solution/mixture, such as oxidative bleaching or other oxygenated agents. Various catalytic agents may be titanium oxide or other similar inorganic agents or metals. The first solution may also include additional effective ingredients such as surfactants or surface active agents to reduce or otherwise modify the surface tension of the solution. Such surface active agents may be used to enhance lubrication between the nerves and other intracanal tissue and the canals wall, as well as antibiotics; stabilizers; antiseptics; anti-virals; germicidals; and polar or non-polar solvents; and the like. It is especially preferred that all materials used in the system be bio-compatible and FDA and otherwise approved, as necessary, for use in dental procedures. The amounts of any of the foregoing and other additives are generally very small in the order of a few percent by weight or only small fractions of percents. The majority of the solution/mixture is preferably water, preferably sterile triple distilled water for avoidance of undesirable or unaccounted for ionic effects.


An activating energy source is applied to the first solution contained in the coronal pulp chamber. In a preferred embodiment, the activating energy source is a pulsing laser 10. The laser light energy 16 is delivered using a laser source 12 and an optical light fiber 14 attached at its proximate end to a laser source 12 and having an applicator tip 20 adjacent its distal end. The optical fiber 14 preferably has a diameter of from about 200 microns to about 400 microns. The diameter should be small enough to easily fit into the coronal pulp chamber and, if necessary, into a root canal itself, but large enough to provide sufficient energy via light carried therein to create a photoacoustic effect and to prevent avoidable leakage of light or loss of energy and damage to the tooth or the fiber tip. In a preferred embodiment, the laser source is a solid state laser having a wavelength of from about 700 nm to about 3000 nm, such as NdYAG, ErYAG, HoYag, NdYLF, Ti Sapphire, or ErCrYSGG laser. However, other suitable lasers sources may be used in various embodiments.


An appropriately dimensioned laser applicator tip 20 is preferably placed into the coronal chamber until it is at least fully immersed in the first solution. By “fully immersed” it is meant liquid level is even with the edge of the cladding or other covering on the optical fiber 18. Preferably, the distal most edge of any cladding or covering 18 on the optic fiber 14 adjacent the tip is spaced approximately 2-10 mm from the distal end of the distal end tip or end of the fiber, most preferably about 5 mm therefrom. As a result, up to about 10 mm and most preferably about 5 mm of the distal end of the fiber is uncovered. Preferably, all or substantially all of the length of this uncovered part of the tip end is immersed. If the uncovered part of the applicator tip is not fully immersed, sufficient energy may not be transferred to the fluid since light will be permitted to escape to the environ above the liquid surface. Accordingly, it is believed that spacing the distal-most or outermost end edge of the cladding more than about 10 mm should be avoided, as that can diminish the effectiveness of the system. In some applications, it may be necessary to provide a dam and reservoir around and above the opening in the tooth in order to increase the volume and level of fluid available for immersion of the uncovered area of the end of the fiber. The larger liquid volume and deeper immersion of the uncovered area of the tip end is believed to enable application of sufficient energy levels to produce the desired photoacoustic wave intensity in such instances. Such instances may include, for example, smaller teeth such as upper/lower centrals or teeth that are fractured off. In certain applications where a dam or reservoir is used it may be desirable to use a laser tip with more than 10 mm of space between the tip end and the cladding due to the larger volume of fluid.


It is a feature of the invention in a preferred embodiment that the distal-most end of the applicator tip be tapered to and end point, i.e. that the distal end have a “tapered tip” 22. Most preferably, the tapered tip has an included taper angle of from about 25 to about 40 degrees. The applicator tip 20 is therefore preferably not a focusing lens configured to concentrate light to a point in space away from the tip end. Such a configuration is believed to cause an ablative effect due to the high thermal energy created by the laser light focused to a point. Rather, the taper angle of the tapered fiber tip 22 and rearward spacing of the end of the cladding from the tip end in accordance with preferred embodiments of the invention are believed to enable a relatively wide dispersion of the laser energy for emission from a relatively large surface area of the tip all the way back to the edge of the cladding, not merely from the end of the laser fiber. An objective is to emit laser light generally omnidirectionally from the sides 24 and from the tapered area 22 of the tapered applicator tip, and consequently, to produce a larger or more omnidirectional photoacoustic wave propagating into surrounding liquid and adjacent material from substantially the entire exposed surface of the fiber optic quartz material. Among other things, this avoids and preferably eliminates any ablative effects associated with higher levels of focused or refracted radiant laser energy. The tip design in accordance with the invention is selected to provide a magnitude and direction of the photoacoustic wave in the surrounding fluid medium that exhibits a relatively sharp or high rise time at the leading edge of each pulse and which propagates through the fluid generally omnidirectionally from the exposed area of the end of the fiber. Accordingly, a tapered tip according to the invention has the effect of dispersing the laser energy over the larger uncovered cone surface area and the rearwardly extending cylindrical wall surface (compared to a two dimensional generally flat circular surface area of a standard tip), thereby creating a much larger area through which the leading edges of the successive photoacoustic waves can propagate. In some embodiments, the exposed area of the fiber adjacent the tip end may include a texturing, such as frosting or etching, to increase the surface area and angular diversity of light emission for an even more comprehensive coverage of the photoacoustic wave energy within the solution and adjacent tissue.


When applying the laser to the first solution, applicants have discovered that it may be important to apply the laser energy to the solution so as to limit the creation of thermal energy. In the present invention, after the applicator tip is immersed in the first solution, laser energy is preferably applied to the first solution using subablative threshold settings, thereby avoiding any thermal-induced carbonization, melting, or other effects caused by a temperature rise above about 5° C. in the dentin walls of the canal, apical portions of the tooth, or surrounding bone or tissue caused by the generation of significant thermal energy in the canal area or wall due to the ablative power settings used in prior attempts to perform root canal therapy with lasers. The practice of the present invention in accordance with its preferred embodiments causes an observable temperature rise in the solution of no more than a few degrees Centigrade and, as a result, no more than a few degrees Centigrade elevation, if any, of the dentin wall and other adjacent tooth structure and tissue. This is far below the standard constraint of avoiding any exposure of such material and tissue to more than 5° C. increase in temperature for any significant period of time to avoid permanent damage in the same.


The inventors have found that relatively low power settings of from about 0.1 watt to about 1.5 watt and with a laser pulse duration of from about 100 nanoseconds to about 1000 microseconds, with a pulse length of about 50 microseconds most preferred, produces the desired photoacoustic effect without heating the fluid or surrounding tissue to produce any ablative or other thermal effect within or adjacent the root canal. A frequency of from about 5 to 25 Hz is preferred and a frequency of about 15 Hz is believed to provide optimal potentiation of harmonic oscillation of pressure waves in the fluid medium to disintegrate nerve and other tissue within the canal.


The particular preferred power level found to produce the ideal photoacoustic wave has a relationship to the approximate root volume of a particular tooth. The following chart (Table 1) shows what are believe to be preferred ranges of power levels for treatment of root canals in different types and sizes of teeth in accordance with the invention.









TABLE 1







Preferred Power Levels for Various Tooth Types












Approx. Average
Range of Preferred



Tooth Type
Root Volume (μL)
Power Levels (watts)















Molar
177
0.5 to 1.5



Pre Molar
88
0.5 to 1.0



Cuspid
67
0.5 to 0.75



Laterals
28
0.25 to 0.5



Centrals
28
0.25 to 0.5



Lower Centrals
28
0.1 to 0.25










When the laser is immersed in the first solution, the laser is pulsed for a time preferably ranging from about 10 seconds to about 40 seconds, most preferably about 20 seconds. If the laser is pulsed for longer than about 40 seconds, excessive thermal energy can begin to develop in the fluid, potentially leading to deleterious heating effects in and around the tooth as described above. It has been found rather surprisingly that pulsing under the parameters of the invention causes a measurable temperature rise in the fluid medium of no more than a few degrees Celsius, if any, while still utterly destroying and/or disintegrating all nerve, pulp, and other tissue within the canal that also is observed to hydraulically self-eject from the canal during pulsing.


After the laser has been pulsed in the first solution, the first solution is allowed to stabilize and then laser pulsing treatment may be repeated again in the same or a different solution. In certain embodiments, the solution may be removed between repetitions of pulsing cycles of the laser to remove debris more gradually and to avoid any development or transfer of heat energy into the dentin surrounding wall or other adjacent structure. The coronal chamber and canal may be irrigated with a standard dental irrigant and solution may then be reinserted into the coronal chamber to perform an additional laser pulsing treatment. While any number of pulsing phases or cycles can be repeated, it is believed that a fully effective removal of all material within the canal can be achieved in less than about seven cycles.


To assist dentists in performing root canal treatments according to the present invention, a photoacoustic activity index has been developed which provides relationships between the various parameters, machine setting, and the like which have been found to be important in the practice of the inventive procedure. Factors which appear important in the practice of the invention include the power level, laser pulse frequency, the pulse duration, the proportion of average excitable functional groups per molecule in the first solution, the diameter of the laser optical fiber, the number of pulsing cycles repeated in completing an extirpation procedure, the duration of each cycle, the viscosity of the first solution, and the distance between the tip and the end of the cladding. Coefficients have been determined which relate deviations of certain of the above factors from what is believed to be the ideal or the most preferred factor value. Tables of these coefficients are shown below:
















Approx. Average
Preferred Range of
Power Density



Root Volume
Power Levels
Coefficient


Tooth Type
(ul)
(watts)
(DPD)


















Molar
177
0.5 to 1.5
1


Pre Molar
88
0.5 to 1.0
1


Cuspid
67
0.5 to 0.75
1


Laterals
28
0.25 to 0.5
1


Centrals
28
0.25 to 0.5
1


Lower Centrals
28
0.1 to 0.25
1























Frequency Coefficient
Pulses per Second



C(fq)
(Value in HZ)



















0.4
 2 HZ



0.6
 5 HZ



0.9
10 HZ



1
15 HZ



0.5
20 HZ



0.2
25 HZ
























Pulse Duration Coefficient
Pulse Duration Value in micro sec



C(pw)
(μs)



















1
<50



0.9
50



0.7
100



0.3
150



0.2
200



0.1
1000
























Hydroxyl Coefficient
Average quantity of excitable



C(hy)
groups per fluid molecule



















1
>2



0.9
2



0.7
1



0.5
Part or Mixture



0
none
























Fiber Diameter Coefficient
Fiber Diameter



C(fd)
Value in microns



















0.8
>400



1
400



0.8
320



0.5
200



0.3
<200
























Repetition Cycle Coefficient
Repetition Cycles



C(rp)
(repetitions)



















0.3
>7



0.5
6



0.7
5



1
4



0.9
3



0.6
2



0.3
1
























Cycle Duration Coefficient
Cycle Duration



C(sa)
(Value in seconds)



















0.2
>40



0.6
40



0.9
30



1
20



0.5
10



0.2
<10


























Viscosity Coefficient
Fluid Viscosity



C(vs)
(Centipoise)







1
<1



0.9
1



0.1
>500



0.05
>1000














Cladding Separation
Distance Between Terminus of Cladding



Length Coefficient
and Apex of Tip Value in millimeters



C(sl)
(mm)







0.4
2



0.6
3



0.9
4



1
5



0.9
>5



0.3
>10










A practitioner may input coefficients from the above tables correlating to equipment, setting, and material parameters into the following equation:

Photoacoustic Activity Index(“PA” Index)=DPD×C(fqC(pwC(hyC(fdC(rpC(saC(vsC(sl)


If the resulting PA Index value is greater than about 0.1, more preferably above about 0.3, then the equipment and materials may generally be acceptable to produce an effective photoacoustic wave for disintegration and substantially complete and facile removal of all root canal nerve, pulp, and other tissue from within the canal. If the PA Index is below about 0.1, it may indicate a need to modify one's equipment setup, setting, and method parameters in order to more closely approach the desired PA index of 1 or unity.


Using the invention parameters and procedures, root canal tissue and other material to be removed or destroyed is not believed to be removed or destroyed via thermal vaporization, carbonization, or other thermal effect due primarily to exposure to high temperatures, but rather through a photoacoustic streaming of and other activities within liquids in the canal which are laser activated via photon initiated photoacoustic streaming (PIPS). A photoacoustic wave with a relatively high leading edge is generated when the laser light transitions from the exposed surface of the fiber optic material into the solution. The laser light is believed to create very rapid and relatively intense oscillations of waves through the solution emanating from the interface of the exposed surface of the fiber optic and the surrounding liquid. The rapid, intense microfluctuations in the light energy emitted is believed to cause rapid excitation and/or expansion and de-excitation and/or expansion of hydroxyl-containing molecules adjacent the exposed surface of the fiber generating, among other things, photoacoustic waves of energy which propagates through and into the root canal system and oscillates within the system. These intense photoacoustic waves are believed to provide substantial vibrational energy, which expedites the breaking loose of and/or cell lysis and other effects to bring about a rapid and facile degradation/disintegration of substantially all tissue in the root canal and lateral canal systems immersed in the solution. The pulsing photoacoustic energy waves in combination with the chemistry of the fluid also is believed to cause intense physically disruptive cycling of expanding and contracting of nerve and other tissue which porositizes, expands, and ultimately disintegrates the nerve and other tissue in the canal without any significant thermally induced carbonization or other thermal effects of the same so that the resulting solution/mixture containing nerve and other tissue remains is observed to be self-ejected or basically “pumped” by a hydraulic effect out of the canal.


The photoacoustic effect creates energy waves that propagate throughout the fluid media in the main root canal and into the lateral canals, thereby cleaning the entire root system. The use of a substantially incompressible fluid medium causes the waves produced by the photoacoustic effect to be instantly transmitted through the lateral canals. Also, since the canals are tapered in a concave fashion, the photoacoustic wave is believed to be amplified as it transverses toward the end of the lateral canals for further intensification of the destruction towards apical or cul de sac areas.


In certain embodiments of the invention, a second dissolution solution may be added to the canal after treatment with the energy source/first solution. This dissolution solution chemically dissolves and/or disintegrates any remaining nerve structure or other debris that may remain in the main canal or in any lateral canals. Preferred dissolution solutions include hypochlorite, sodium hypochlorite, perborate, calcium hydroxide, acetic acid/lubricant/doxycycline and other like nerve tissue or matrix dissolving substances such as chelating agents (EDTA) and inorganic agents such as titanium oxides.


Finally, after desired tissue has been removed from the tooth interior, the canal may be irrigated to remove any remaining debris and remaining solution, and then obturated with a material of choice, such as gutta percha, root canal resin, etc., according to standard practices in the industry.


Qualitative experimentation was performed placing a fluid into a Dampen dish located on a Formica surface. The laser applicator tip was placed into the fluid and fired repetitively. The photoacoustic wave vibrated the Dampen dish on the Formica surface making an audible sound. For a specific tip this audible sound increased with an increasing power level of the laser. This was verified by placing a sound level meter one inch away from the Dampen dish and recording the dB level. This implies that the power level is proportional to the amplitude of the photoacoustic wave. Next, the laser power level was held constant and the tip was changed. The tapered tip and a tip with a stripped sheath produced a greater photoacoustic wave than the standard flat tip. A tapered, stripped tip was then frosted or etched. This tip was tested and showed a greater photoacoustic wave generated than the non-frosted version. This was verified to be true at three different power levels. It would appear that since the power level was held constant, the photoacoustic wave amplitude would also be proportional to the exposed area and the surface treatment.


In a quantitative investigation of the applicator tip a MEMS Pressure sensor was utilized to measure the photoacoustic wave amplitude. This testing has shown a dramatic increase in the photoacoustic wave propagation caused by changes in the geometry and texturing of the tip. The inventors have also discovered that stripping of the cladding from the end of the applicator tip results in increases in the photoacoustic wave effect. In this regard, a small plastic vial was fitted with a fluid connection that was close coupled hydraulically to a miniature MEMS piezo-resistive pressure sensor (Honeywell Model 24PCCFA6D). The sensor output was run through a differential amplifier and coupled to a digital Oscilloscope (Tektronics Model TDS 220). The vial and sensor were filled with water. Laser tips having varying applicator tip configurations were fully submerged below the fluid level in the vial and fired at a frequency of 10 HZ. The magnitude of the photoacoustic pressure waves was recorded by the pressure sensor.


A 170% increase in pressure measured from generation of the photoacoustic waves was observed for the tapered tip versus the standard blunt-ended tip. A 580% increase in pressure measured from generation of the photoacoustic wave was observed for textured (frosted) tapered tips versus the standard blunt-ended tip. Rather than emitting in a substantially linear direction, the frosting disperses the light omnidirectionally causing excitation and expansion of more fluid molecules.


An increase in photoacoustic wave generation was seen by stripping the polyamide sheath away from about 2 mm to about 10 mm from the tapered end. Although laser light is coherent and typically travels substantially in a straight line, some light bounces off of the polyamide sheath at an angle. As this light travels down the light path it continues bouncing off of the inside of the polyamide sheath and will eventually exit at an angle to the sheath once the sheath stops and exposes a non sheathed section. Therefore, some of the laser light would also exit where the polyamide sheath has been removed, upstream of the tapered tip end. A tip with the sheath removed for 2 to 10 mm directly upstream of the tapered section was placed in the above-mentioned test set up and showed markedly better production of photoacoustic waves.


In various other embodiments of the invention, energy sources other than lasers may be used to produce the photoacoustic waves including, but not limited to, other sources of light energy, sonic, ultrasonic, photo-acoustic, thermo-acoustic, micromechanical stirring, magnetic fields, electric fields, radio-frequency, and other exciter mechanisms or other similar forms that can impart energy to a solution. Some of these sources penetrate the tooth structure externally. Additional subablative energy sources may be used to create other types of pressure waves in a solution, such as chemoacoustic waves (shock waves created by rapid chemical expansion creating shock and pressure waves). Such waves can be created for example by loading the nanoparticles with a chemical that expands rapidly upon excitation, coating nanoparticles with a hard shell (e.g., polyvinyl alcohol), and activating the chemistry with an energy source such as optical, ultrasonic, radio-frequency, etc. As the activating chemical expands, pressure builds up in the hard shell, when the shell bursts it creates a shock wave that can propagate throughout the fluid similar to a photoacoustic wave. Additionally, a photoacoustic wave can be the activating energy source for producing the chemoacoustic wave.


Further, the present invention may be used for various procedures other than root canal treatment, such as for treatment of dental caries, cavities or tooth decay. Additionally, the present invention may be usable for treatments of bone and other highly networked material where infection is problematic, e.g. dental implants, bone infection, periodontal disease, vascular clotting, organ stones, scar tissues, etc. Adding a tube structure around the tip which might be perforated and will allow introduction of a fluid around the tip that will allow the photoacoustic waves to be directed into more difficult areas that do not contain fluid volume such as periodontal and gum tissue. This would be considered a type of photoacoustic transmission tube. This application process may also be used in other soft tissue applications where it is necessary to expand the diseased tissue or material to allow more rapid access and penetration to healing agents, chemicals or biologicals; i.e., antibiotics, peptides, proteins, enzymes, catalysts, genetics (DNA, mRNA or RNA or derivatives) or antibody based therapeutics or combinations thereof. In some cases, the present methodology may be used to rapidly dissolve or destroy diseased tissue areas. Additionally, the present invention may be used to expand diseased tissue in an abscess, allowing for extremely rapid and efficient penetration of healing or biological agents. The porosity created in the tissue by photoacoustic waves may allow for rapid infusion with the subsequent chemical species that can impose destruction, healing or cleaning or a combination of these events. The speed of this healing action may allow medical procedures that currently are not viable because of extensive time required for standard healing processes, i.e., sometimes adjacent tissue is infected because the original infection cannot be controlled more rapidly than the infection propagates. In this case, expanding the diseased tissue to enhance porosity may allow near instantaneous access for the medication, e.g., antibiotic or other agents.


Furthermore, the present invention may be applied to begin, construct or stage the activation of cells and/or tissues, including the area of transplantation and use in stem or primordial cells accentuation, their attachment and/or stimulation for growth and differentiation. The present invention is also believed to be usable to activate cells, e.g., progenitor, primordial or stem cells, to promote inherent nascent bone or tissue growth and differentiation, as well as in transplantation where stem or primordial cells are accentuated in their attachment and stimulated for growth and differentiation.


In one of the alternate embodiments of this invention, nanotubes or other micro-structures can be moved around in a therapeutic fluid by applying a magnetic field. An alternating or pulsed magnetic field could impart significant motion and stirring of the therapeutic fluid. Since the field would penetrate the entire tooth, the stirring action would also occur throughout the lateral or accessory canal system. These moving micro-particles would also act as an abrasive on any bacteria, virus, nerve material, or debris within the canal system. The effect would be a more thorough circulation of the fluid throughout the canal system to provide superior cleaning and debridement of the canal system. Magnetic material can also be inserted into, adsorbed onto, or absorbed into the nanotube or other microstructure increasing its magnetic moment.


TiO2 or other similar compounds can be activated and made bactericidal by exposing them to UV light or by inserting them in an electric field. Once excited these can destroy bacteria and other organic compounds such as remaining nerve tissue. Such compounds can be part of a therapeutic and can be activated by a UV light source pointed toward the therapeutic fluid, a UV source dipped into the fluid, or a UV laser source. These TiO2 or other similar compounds can also be activated by an alternating or pulsed electric field. One means to supply such an electric field could be by an external device that would bridge the tooth. Since the field propagates throughout the entire tooth it would also react TiO2 or other similar compounds within the accessory or lateral canals. This action could also be combined with the micro-particle based motion action mentioned above. This combination would more thoroughly clean and debride the canals. Since electric fields are generated externally and penetrate the entire root structure they could be used several months or on a yearly basis after the tooth is sealed to reactivate the titanium oxide and its bactericidal properties.


The foregoing description of preferred embodiments for this disclosure has been presented for purposes of illustration and description. The disclosure is not intended to be exhaustive or to limit the various embodiments to the precise form disclosed. Other modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the underlying concepts and their practical application, and to thereby enable one of ordinary skill in the art to utilize the various embodiments with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.

Claims
  • 1. A method for cleaning a root canal of a tooth, the method comprising: delivering a treatment liquid into the root canal;inserting a tip of an optical fiber into the treatment liquid within the root canal, the optical fiber extending along a fiber axis, the tip comprising a conical tip that emits at least a portion of laser light laterally outwardly relative to the fiber axis;operating a laser source to generate laser light;pulsing the laser light along the optical fiber to the tip; anddirecting at least a portion of the laser light laterally outwardly relative to the fiber axis into the treatment liquid, the laser light emanating from the tip having sufficient power to create photoacoustic waves in the treatment liquid of sufficient vibrational energy to remove at least organic material from a portion of a wall of the root canal.
  • 2. The method of claim 1, further comprising distributing the treatment liquid throughout the root canal with the vibrational energy of the photoacoustic waves.
  • 3. The method of claim 1, wherein the root canal comprises at least a main root canal and a plurality of accessory canals that branch from the main root canal, the method further comprising inserting the tip of the optical fiber into the treatment liquid in the main canal, and propagating the photoacoustic waves throughout the main root canal and the accessory root canals to remove at least organic material from both the main root canal and one or more of the accessory root canals without the tip of the optical fiber being inserted into any of the accessory canals.
  • 4. The method of claim 1, wherein directing at least a portion of the laser light laterally outwardly relative to the fiber axis into the treatment liquid comprises directing most of the laser light in a direction that is non-parallel to the fiber axis.
  • 5. The method of claim 1, wherein inserting the tip of the optical fiber comprises providing the optical fiber having a cladding stripped from a distal end of the optical fiber by a distance in a range of 2 mm to 12 mm.
  • 6. A method for cleaning a tooth having a coronal pulp chamber and a root canal extending from the coronal pulp chamber, the method comprising: delivering a treatment liquid into at least the coronal pulp chamber;inserting a tip of an optical fiber into the treatment liquid to position the tip within the coronal pulp chamber and outside of the root canal, the optical fiber extending along a fiber axis, the tip comprising a tapered tip without a focusing lens;operating an ErCrYSGG laser source to generate laser light;pulsing the laser light along the optical fiber to the tip and into the treatment liquid with the tip positioned within the coronal pulp chamber and outside of the root canal; andproducing photoacoustic waves in the treatment liquid with energy provided by the pulsed laser light, at least a portion of the photoacoustic waves propagating laterally outwardly relative to the fiber axis, the photoacoustic waves of sufficient vibrational energy to remove at least organic material from the coronal pulp chamber.
  • 7. The method of claim 6, further comprising providing a shape for the tip which tapers radially inwardly and distally.
  • 8. The method of claim 7, wherein providing the shape comprises providing a conical tip that tapers to an apex.
  • 9. The method of claim 6, wherein pulsing the laser light involves delivering power at a level sufficient to remove the organic material from the coronal pulp chamber without carbonizing, burning, or thermally damaging dentin along a wall of the coronal pulp chamber with the tip immersed within the liquid.
  • 10. The method of claim 6, wherein pulsing the laser light involves delivering power at a level sufficient to remove the organic material from the coronal pulp chamber without elevating a temperature of the tooth or adjacent tissue by more than 5° C.
  • 11. The method of claim 6, wherein operating the ErCrYSGG laser source comprises operating the ErCrYSGG laser source at a power level in a range of 0.1 W to 1.5 W.
  • 12. The method of claim 6, wherein operating the ErCrYSGG laser source comprises operating the ErCrYSGG laser source at a pulse frequency in a range of 2 Hz to 25 Hz.
  • 13. The method of claim 6, wherein operating the ErCrYSGG laser source comprises operating the ErCrYSGG laser source at a cycle time of 10 seconds to 40 seconds.
  • 14. A method for cleaning a root canal of a tooth, the root canal comprising a main root canal and a plurality of accessory canals that branch from the main root canal, the method comprising: delivering a treatment liquid into the root canal;inserting a tip of an optical fiber into the treatment liquid within the main root canal, the optical fiber extending along a fiber axis, the tip comprising a tapered tip;operating a laser source to generate laser light;pulsing the laser light along the optical fiber to the tip; anddirecting at least a portion of the laser light laterally outwardly relative to the fiber axis into the treatment liquid, the laterally directed light having sufficient power to create photoacoustic waves in the treatment liquid of sufficient vibrational energy to remove at least organic material from both the main root canal and one or more of the accessory root canals, without the tip of the optical fiber being inserted into any of the accessory canals.
  • 15. The method of claim 14, wherein directing the at least a portion of the laser light laterally outwardly comprises providing a shape for the tip which tapers radially inwardly and distally.
  • 16. The method of claim 14, wherein directing at least a portion of the laser light laterally outwardly relative to the fiber axis into the treatment liquid comprises directing most of the laser light in a direction that is non-parallel to the fiber axis.
  • 17. The method of claim 14, wherein inserting the tip of the optical fiber comprises providing the optical fiber having a cladding stripped from a distal end of the optical fiber by a distance in a range of 2 mm to 12 mm.
Parent Case Info

This application is a continuation of application Ser. No. 17/317,744, filed May 11, 2021 (now U.S. Pat. No. 11,426,239), which is a continuation of application Ser. No. 14/537,742, filed Nov. 10, 2014, which is a continuation in part of application Ser. No. 14/077,880, filed Nov. 12, 2013, which is a continuation of application Ser. No. 13/633,096, filed Oct. 1, 2012, which is a continuation of application Ser. No. 12/875,565, filed Sep. 3, 2010, which is a continuation in part of application Ser. No. 11/895,404, filed Aug. 24, 2007, the entire contents of each of which are incorporated by reference herein. Application Ser. No. 12/875,565 is also a continuation in part of application Ser. No. 12/395,643, filed Feb. 28, 2009, which is a continuation in part of application Ser. No. 11/895,404, filed Aug. 24, 2007, the entire contents of each of which are incorporated by reference herein. Application Ser. No. 12/395,643 is also a continuation in part of application Ser. No. 11/704,655, filed Feb. 9, 2007, which claims priority to Provisional Application No. 60/840,282, filed Aug. 24, 2006, the entire contents of each of which are incorporated by reference herein. Application Ser. No. 11/895,404 is a continuation in part of application Ser. No. 11/704,655 and also claims priority to Provisional Application No. 60/840,282, the entire contents of each of which are incorporated herein by reference.

US Referenced Citations (914)
Number Name Date Kind
1500107 Chandler Jul 1924 A
2108558 Jackman Feb 1938 A
3023306 Kester Feb 1962 A
3225759 Drapen et al. Dec 1965 A
3401690 Martin Sep 1968 A
3460255 Hutson Aug 1969 A
3514328 Malin May 1970 A
3521359 Harris Jul 1970 A
3522801 Seymour Aug 1970 A
3547110 Balamuth Dec 1970 A
3561433 Kovach Feb 1971 A
3590813 Roszyk Jul 1971 A
3593423 Jones et al. Jul 1971 A
3624907 Brass et al. Dec 1971 A
3703170 Ryckman, Jr. Nov 1972 A
3731675 Kelly May 1973 A
3739983 Jousson Jun 1973 A
3745655 Malmin Jul 1973 A
3747216 Bassi et al. Jul 1973 A
3756225 Moret et al. Sep 1973 A
3828770 Kuris et al. Aug 1974 A
3871099 Kahn Mar 1975 A
3921296 Harris Nov 1975 A
3930505 Wallach Jan 1976 A
3962790 Riitano et al. Jun 1976 A
4021921 Detaille May 1977 A
4060600 Vit Nov 1977 A
4071956 Andress Feb 1978 A
4215476 Armstrong Aug 1980 A
4247288 Yoshii et al. Jan 1981 A
4274555 Sneider Jun 1981 A
4276880 Malmin Jul 1981 A
4293188 McMahon Oct 1981 A
4330278 Martin May 1982 A
4376835 Schmitt et al. Mar 1983 A
4386911 Maloney et al. Jun 1983 A
4424036 Lokken Jan 1984 A
4474251 Johnson, Jr. Feb 1984 A
4462803 Landgraff et al. Jul 1984 A
4492575 Mabille Jan 1985 A
4522597 Gallant Jun 1985 A
4534542 Russo Aug 1985 A
4539987 Nath et al. Sep 1985 A
4554088 Whitehead et al. Nov 1985 A
4595365 Edel et al. Jun 1986 A
4608017 Sadohara Aug 1986 A
4659218 de Lasa et al. Apr 1987 A
4661070 Friedman Apr 1987 A
4671259 Kirchner Jun 1987 A
4676586 Jones et al. Jun 1987 A
4676749 Mabille Jun 1987 A
4684781 Frish et al. Aug 1987 A
4732193 Gibbs Mar 1988 A
4789335 Geller et al. Dec 1988 A
4818230 Myers et al. Apr 1989 A
4872837 Issalene et al. Oct 1989 A
4917603 Haack Apr 1990 A
4935635 O'Harra Jun 1990 A
4941459 Mathur Jul 1990 A
4957436 Ryder Sep 1990 A
4973246 Black et al. Nov 1990 A
4985027 Dressel Jan 1991 A
4992048 Goof Feb 1991 A
4993947 Grosrey Feb 1991 A
5013300 Williams May 1991 A
5020995 Levy Jun 1991 A
5029576 Evans, Sr. Jul 1991 A
5037431 Summers et al. Aug 1991 A
5046950 Favonio Sep 1991 A
5055048 Vassiliadis et al. Oct 1991 A
5066232 Negri et al. Nov 1991 A
5094256 Barth Mar 1992 A
5112224 Shirota May 1992 A
5116227 Levy May 1992 A
5118293 Levy Jun 1992 A
5122060 Vassiliadis et al. Jun 1992 A
5123845 Vassiliadis et al. Jun 1992 A
5151029 Levy Sep 1992 A
5151031 Levy Sep 1992 A
5169318 Levy Dec 1992 A
5171150 Levy Dec 1992 A
5173049 Levy Dec 1992 A
5173050 Dillon Dec 1992 A
5180304 Vassiliadis et al. Jan 1993 A
5188532 Levy Feb 1993 A
5188634 Hussein et al. Feb 1993 A
5194005 Levy Mar 1993 A
5194723 Cates et al. Mar 1993 A
5195952 Solnit et al. Mar 1993 A
5224942 Beuchat et al. Jul 1993 A
5228852 Goldsmith et al. Jul 1993 A
5232366 Levy Aug 1993 A
5232367 Vassiliadis et al. Aug 1993 A
5236360 Levy Aug 1993 A
5249964 Levy Oct 1993 A
5257935 Vassiliadis et al. Nov 1993 A
5267856 Wolbarsht et al. Dec 1993 A
5267995 Doiron et al. Dec 1993 A
5269777 Doiron et al. Dec 1993 A
5273713 Levy Dec 1993 A
5275564 Vassiliadis et al. Jan 1994 A
5281141 Kowalyk Jan 1994 A
5290274 Levy et al. Mar 1994 A
5292253 Levy Mar 1994 A
5295828 Grosrey Mar 1994 A
5304167 Freiberg Apr 1994 A
5306143 Levy Apr 1994 A
5307839 Loebker et al. May 1994 A
5310344 Vassiliadis et al. May 1994 A
5318562 Levy et al. Jun 1994 A
5322504 Doherty et al. Jun 1994 A
5324200 Vassiliadis et al. Jun 1994 A
5326263 Weissman Jul 1994 A
5326264 Al Kasem Jul 1994 A
5334016 Goldsmith et al. Aug 1994 A
5334019 Goldsmith et al. Aug 1994 A
5342196 Van Hale Aug 1994 A
5342198 Vassiliadis et al. Aug 1994 A
5374266 Kataoka et al. Dec 1994 A
5380201 Kawata Jan 1995 A
5387376 Gasser Feb 1995 A
5390204 Yessik et al. Feb 1995 A
D356866 Meller Mar 1995 S
5399089 Eichman et al. Mar 1995 A
5409376 Murphy Apr 1995 A
5415652 Mueller et al. May 1995 A
5422899 Freiberg et al. Jun 1995 A
5428699 Pon Jun 1995 A
5435724 Goodman et al. Jul 1995 A
5474451 Dalrymple et al. Dec 1995 A
5484283 Franetzki Jan 1996 A
5490779 Malmin Feb 1996 A
5503559 Vari Apr 1996 A
5507739 Vassiliadis et al. Apr 1996 A
5540587 Malmin Jul 1996 A
5545039 Mushabac Aug 1996 A
5547376 Harrel Aug 1996 A
5554896 Hogan Sep 1996 A
5562692 Bair Oct 1996 A
5564929 Alpert Oct 1996 A
5570182 Nathel et al. Oct 1996 A
5591184 McDonnell et al. Jan 1997 A
5601430 Kutsch et al. Feb 1997 A
5611797 George Mar 1997 A
5620414 Campbell, Jr. Apr 1997 A
5621745 Yessik et al. Apr 1997 A
5622501 Levy Apr 1997 A
5639239 Earle Jun 1997 A
5642997 Gregg et al. Jul 1997 A
5643299 Bair Jul 1997 A
5660817 Masterman et al. Aug 1997 A
5662501 Levy Sep 1997 A
5674226 Doherty et al. Oct 1997 A
5688486 Watson et al. Nov 1997 A
5720894 Neev et al. Feb 1998 A
5730727 Russo Mar 1998 A
5735815 Bair Apr 1998 A
5740291 De Lasa et al. Apr 1998 A
5741247 Rizoiu et al. Apr 1998 A
5748655 Yessik et al. May 1998 A
5755752 Segal May 1998 A
5759031 Goldsmith et al. Jun 1998 A
5759159 Masreliez Jun 1998 A
5762501 Levy Jun 1998 A
5785521 Rizoiu et al. Jul 1998 A
5795153 Rechmann Aug 1998 A
5797745 Ruddle Aug 1998 A
5810037 Sasaki et al. Sep 1998 A
5816807 Matsutani et al. Oct 1998 A
5820373 Okano et al. Oct 1998 A
5825958 Gollihar et al. Oct 1998 A
5832013 Yessik et al. Nov 1998 A
5839896 Hickok et al. Nov 1998 A
5842863 Bruns et al. Dec 1998 A
5846080 Schneider Dec 1998 A
5853384 Bair Dec 1998 A
5865790 Bair Feb 1999 A
5868570 Hickok et al. Feb 1999 A
5874677 Bab et al. Feb 1999 A
5879160 Ruddle Mar 1999 A
5885082 Levy Mar 1999 A
5897314 Hack et al. Apr 1999 A
5911711 Pelkey Jun 1999 A
5915965 Ohlsson et al. Jun 1999 A
5921775 Buchanan Jul 1999 A
5968037 Rizoiu et al. Oct 1999 A
5968039 Deutsch Oct 1999 A
5971755 Liebermann et al. Oct 1999 A
5975897 Propp et al. Nov 1999 A
5989023 Summer et al. Nov 1999 A
6004319 Goble et al. Dec 1999 A
6019605 Myers Feb 2000 A
6022309 Celliers et al. Feb 2000 A
6030221 Jones et al. Feb 2000 A
6033431 Segal Mar 2000 A
6045516 Phelan Apr 2000 A
6053735 Buchanan Apr 2000 A
6079979 Riitano Jun 2000 A
6086367 Levy Jul 2000 A
6096029 O'Donnell, Jr. Aug 2000 A
6104853 Miyagi et al. Aug 2000 A
6106514 O'Donnell, Jr. Aug 2000 A
6122300 Frieberg et al. Sep 2000 A
6129721 Kataoka et al. Oct 2000 A
6139319 Sauer et al. Oct 2000 A
6139320 Hahn Oct 2000 A
6143011 Hood et al. Nov 2000 A
D435651 Hartwein Dec 2000 S
6159006 Cook et al. Dec 2000 A
6162052 Kokubu Dec 2000 A
6162177 Bab et al. Dec 2000 A
6162202 Sicurelli et al. Dec 2000 A
6164966 Turdiu et al. Dec 2000 A
6179617 Ruddle Jan 2001 B1
6190318 Bab et al. Feb 2001 B1
6197020 O'Donnell, Jr. Mar 2001 B1
6221031 Heraud Apr 2001 B1
6224378 Valdes et al. May 2001 B1
6227855 Hickok et al. May 2001 B1
6231567 Rizoiu et al. May 2001 B1
6245032 Sauer et al. Jun 2001 B1
6254597 Rizoiu et al. Jul 2001 B1
6270342 Neuberger et al. Aug 2001 B1
6282013 Ostler et al. Aug 2001 B1
6288499 Rizoiu et al. Sep 2001 B1
6290502 Hugo Sep 2001 B1
6309340 Nakagawa Oct 2001 B1
6312440 Hood et al. Nov 2001 B1
6315557 Messick Nov 2001 B1
6315565 Slotke et al. Nov 2001 B1
6319002 Pond Nov 2001 B1
6343929 Fischer Feb 2002 B1
6350123 Rizoiu et al. Feb 2002 B1
6354660 Friedrich Mar 2002 B1
6386871 Rossell May 2002 B1
6389193 Kimmel et al. May 2002 B1
6390815 Pond May 2002 B1
6428319 Lopez et al. Aug 2002 B1
6440103 Hood et al. Aug 2002 B1
6454566 Lynch et al. Sep 2002 B1
6464498 Pond Oct 2002 B2
6485304 Beerstecher et al. Nov 2002 B2
6497572 Hood et al. Dec 2002 B2
6511493 Moutafis et al. Jan 2003 B1
6514077 Wilk Feb 2003 B1
6527766 Bair Mar 2003 B1
6533775 Rizoiu Mar 2003 B1
6538739 Visuri et al. Mar 2003 B1
6544256 Rizoiu et al. Apr 2003 B1
6561803 Rizoiu et al. May 2003 B1
6562050 Owen May 2003 B1
6567582 Rizoiu et al. May 2003 B1
6572709 Kaneda et al. Jun 2003 B1
6592371 Durbin et al. Jul 2003 B2
6602074 Suh et al. Aug 2003 B1
6610053 Rizoiu et al. Aug 2003 B1
6616447 Rizoiu et al. Sep 2003 B1
6616451 Rizoiu et al. Sep 2003 B1
6638219 Asch et al. Oct 2003 B1
6641394 Garman Nov 2003 B2
6644972 Mays Nov 2003 B1
6663386 Moelsgaard Dec 2003 B1
6669685 Rizoiu et al. Dec 2003 B1
6676409 Grant Jan 2004 B2
6679837 Daikuzono Jan 2004 B2
6744790 Tilleman et al. Jun 2004 B1
6783364 Juan Aug 2004 B1
6817862 Hickok Nov 2004 B2
6821272 Rizoiu et al. Nov 2004 B2
D499486 Kuhn et al. Dec 2004 S
6827766 Carnes et al. Dec 2004 B2
6829427 Becker Dec 2004 B1
6881061 Fisher Apr 2005 B2
6886371 Arai et al. May 2005 B2
6893259 Reizenson May 2005 B1
6910887 Van Den Houdt Jun 2005 B2
6942658 Rizoiu et al. Sep 2005 B1
6948935 Nusstein Sep 2005 B2
6971878 Pond Dec 2005 B2
6976844 Hickok et al. Dec 2005 B2
6981869 Ruddle Jan 2006 B2
6997714 Schoeffel Feb 2006 B1
7008224 Browning et al. Mar 2006 B1
7011521 Sierro et al. Mar 2006 B2
7011644 Andrew et al. Mar 2006 B1
7014465 Marais Mar 2006 B1
7029278 Pond Apr 2006 B2
7044737 Fu May 2006 B2
7068912 Becker Jun 2006 B1
7090497 Harris Aug 2006 B1
7108693 Rizoiu et al. Sep 2006 B2
7115100 McRury et al. Oct 2006 B2
7144249 Rizoiu et al. Dec 2006 B2
7147468 Snyder et al. Dec 2006 B2
7163400 Cozean et al. Jan 2007 B2
7187822 Rizoiu et al. Mar 2007 B2
7194180 Becker Mar 2007 B2
7226288 Schoeffel Jun 2007 B2
7234937 Sachdeva et al. Jun 2007 B2
7238342 Torabinejad et al. Jul 2007 B2
7261558 Rizoiu et al. Aug 2007 B2
7261561 Ruddle et al. Aug 2007 B2
7269306 Koeneman et al. Sep 2007 B1
7270544 Schemmer et al. Sep 2007 B2
7270657 Rizoiu et al. Sep 2007 B2
7288086 Andriasyan Oct 2007 B1
7290940 Boutoussov Nov 2007 B2
7292759 Boutoussov et al. Nov 2007 B2
7296318 Mourad et al. Nov 2007 B2
7303397 Boutoussov Dec 2007 B2
7306459 Williams et al. Dec 2007 B1
7306577 Lemoine et al. Dec 2007 B2
7320594 Rizoiu et al. Jan 2008 B1
7326054 Todd et al. Feb 2008 B2
7356208 Becker Apr 2008 B2
7356225 Loebel Apr 2008 B2
7384419 Jones et al. Jun 2008 B2
7415050 Rizoiu et al. Aug 2008 B2
7421186 Boutoussov et al. Sep 2008 B2
7424199 Rizoiu et al. Sep 2008 B2
7445618 Eggers et al. Nov 2008 B2
7448867 Aloise et al. Nov 2008 B2
7458380 Jones et al. Dec 2008 B2
7461658 Jones et al. Dec 2008 B2
7461982 Boutoussov et al. Dec 2008 B2
7467946 Rizoiu et al. Dec 2008 B2
7470124 Bornstein Dec 2008 B2
7485116 Cao Feb 2009 B2
7549861 Ruddle et al. Jun 2009 B2
7563226 Boutoussov Jul 2009 B2
7575381 Boutoussov Aug 2009 B2
7578622 Boutoussov Aug 2009 B2
7620290 Rizoiu et al. Nov 2009 B2
7621745 Bornstein Nov 2009 B2
7630420 Boutoussov Dec 2009 B2
7641668 Perry et al. Jan 2010 B2
7665467 Jones et al. Feb 2010 B2
7670141 Thomas et al. Mar 2010 B2
7695469 Boutoussov et al. Apr 2010 B2
7696466 Rizoiu et al. Apr 2010 B2
7697814 Rizoiu et al. Apr 2010 B2
7702196 Boutoussov et al. Apr 2010 B2
7748979 Nahlieli Jul 2010 B2
7751895 Jones et al. Jul 2010 B2
7766656 Feine Aug 2010 B1
7778306 Marincek et al. Aug 2010 B2
7815630 Rizoiu et al. Oct 2010 B2
7817687 Rizoiu et al. Oct 2010 B2
7833016 Gharib et al. Nov 2010 B2
7833017 Hof et al. Nov 2010 B2
7845944 DiGasbarro Dec 2010 B2
7867223 Van Valen Jan 2011 B2
7867224 Lukac et al. Jan 2011 B2
7878204 Van Valen Feb 2011 B2
7891363 Jones et al. Feb 2011 B2
7891977 Riva Feb 2011 B2
7901373 Tavger Mar 2011 B2
7909040 Jones et al. Mar 2011 B2
7909817 Griffin et al. Mar 2011 B2
7916282 Duineveld et al. Mar 2011 B2
7942667 Rizoiu et al. May 2011 B2
7957440 Boutoussov Jun 2011 B2
7959441 Glover Jun 2011 B2
7967017 Jones et al. Jun 2011 B2
7970027 Rizoiu et al. Jun 2011 B2
7970030 Rizoiu et al. Jun 2011 B2
7980854 Glover et al. Jul 2011 B2
7980923 Olmo et al. Jul 2011 B2
7997279 Jones et al. Aug 2011 B2
7998136 Jones et al. Aug 2011 B2
8002544 Rizoiu et al. Aug 2011 B2
8011923 Lukac et al. Sep 2011 B2
8023795 Rizoiu et al. Sep 2011 B2
8033825 Rizoiu et al. Oct 2011 B2
8037566 Grez Oct 2011 B2
8047841 Jefferies Nov 2011 B2
8052627 Gromer et al. Nov 2011 B2
8056564 Jones et al. Nov 2011 B2
8062673 Figuly et al. Nov 2011 B2
8100482 Kito et al. Jan 2012 B2
8128401 Ruddle et al. Mar 2012 B2
8152797 Boutoussov et al. Apr 2012 B2
8204612 Feine et al. Jun 2012 B2
8221117 Rizoiu et al. Jul 2012 B2
8235719 Ruddle et al. Aug 2012 B2
8241035 Jones et al. Aug 2012 B2
8256431 Van Valen Sep 2012 B2
D669180 Takashi et al. Oct 2012 S
8276593 Jones et al. Oct 2012 B2
8295025 Edel et al. Oct 2012 B2
8297540 Vijay Oct 2012 B1
8298215 Zinn Oct 2012 B2
8317514 Weill Nov 2012 B2
8322910 Gansmuller et al. Dec 2012 B2
8328552 Ruddle Dec 2012 B2
8366702 Van Valen Feb 2013 B2
8371848 Okawa et al. Feb 2013 B2
8388345 Ruddle Mar 2013 B2
8403922 Boutoussov et al. Mar 2013 B2
8419719 Rizoiu et al. Apr 2013 B2
8439676 Florman May 2013 B2
8439904 Jones et al. May 2013 B2
8448645 Jones et al. May 2013 B2
8470035 Cruise et al. Jun 2013 B2
8474635 Johnson Jul 2013 B2
8479745 Rizoiu Jul 2013 B2
8485818 Boutoussov et al. Jul 2013 B2
8506293 Pond Aug 2013 B2
8525059 Berger et al. Sep 2013 B2
8544473 Rizoiu et al. Oct 2013 B2
8568392 Jones et al. Oct 2013 B2
8588268 Boutoussov et al. Nov 2013 B2
8602033 Jones et al. Dec 2013 B2
8603079 Van Valen Dec 2013 B2
8617090 Fougere et al. Dec 2013 B2
8653392 Berger et al. Feb 2014 B2
8672678 Gramann et al. Mar 2014 B2
D701971 Van Valen et al. Apr 2014 S
8684956 McDonough et al. Apr 2014 B2
8709057 Tettamanti et al. Apr 2014 B2
RE44917 Tuttle May 2014 E
8740957 Masotti Jun 2014 B2
8747005 Kemp et al. Jun 2014 B2
8753121 Gharib et al. Jun 2014 B2
8758010 Yamanaka et al. Jun 2014 B2
8764739 Boutoussov et al. Jul 2014 B2
8792251 Shih Jul 2014 B2
8801316 Abedini Aug 2014 B1
D713538 Van Valen et al. Sep 2014 S
8821483 Boutoussov et al. Sep 2014 B2
8827990 Van Valen et al. Sep 2014 B2
8834450 McCrary et al. Sep 2014 B1
8834457 Cao Sep 2014 B2
8926323 Mossle Jan 2015 B2
8944814 Mossle Feb 2015 B2
8977085 Walsh et al. Mar 2015 B2
8978930 Bublewitz et al. Mar 2015 B2
D726324 Duncan et al. Apr 2015 S
9022959 Fusi, II et al. May 2015 B2
9022961 Fougere et al. May 2015 B2
9025625 Skrabelj et al. May 2015 B2
9050157 Boyd et al. Jun 2015 B2
9052805 Boutoussov et al. Jun 2015 B2
9060845 Van Valen et al. Jun 2015 B2
9084651 Laufer Jul 2015 B2
9101377 Boutoussov et al. Aug 2015 B2
9186222 Marincek et al. Nov 2015 B2
D745966 Piorek et al. Dec 2015 S
9204946 Kotlarchik et al. Dec 2015 B2
9216073 McDonough et al. Dec 2015 B2
9308326 Hunter et al. Apr 2016 B2
9333060 Hunter May 2016 B2
9341184 Dion et al. May 2016 B2
9408781 Qian et al. Aug 2016 B2
9492244 Bergheim et al. Nov 2016 B2
9504536 Bergheim et al. Nov 2016 B2
9545295 Sung et al. Jan 2017 B2
9572632 Lukac et al. Feb 2017 B2
9579174 Yamamoto et al. Feb 2017 B2
9597168 Black et al. Mar 2017 B2
9603676 Bochi Mar 2017 B1
9610125 Kazic et al. Apr 2017 B2
9675426 Bergheim et al. Jun 2017 B2
9696893 Boutoussov et al. Jul 2017 B2
9700382 Pond et al. Jul 2017 B2
9700384 Yamamoto et al. Jul 2017 B2
9700394 Yamamoto et al. Jul 2017 B2
9713511 Lifshitz Jul 2017 B2
9730773 Uchitel et al. Aug 2017 B2
9743999 Policicchio Aug 2017 B2
9788899 Sivriver et al. Oct 2017 B2
9820827 Feine et al. Nov 2017 B2
9820834 Maxwell et al. Nov 2017 B2
9864485 Patton et al. Jan 2018 B2
9867997 Boutoussov et al. Jan 2018 B2
9872748 Schoeffel Jan 2018 B2
9877801 Khakpour et al. Jan 2018 B2
D812231 Duncan et al. Mar 2018 S
D813391 Duncan et al. Mar 2018 S
9931187 Fregoso et al. Apr 2018 B2
9956039 Boutoussov et al. May 2018 B2
9987200 Kishen Jun 2018 B2
10010388 Gharib et al. Jul 2018 B2
10016263 Gharib et al. Jul 2018 B2
D824935 Boutoussov et al. Aug 2018 S
10039625 Gharib et al. Aug 2018 B2
10039932 Van Valen Aug 2018 B2
10098708 Pond Oct 2018 B2
10098717 Bergheim et al. Oct 2018 B2
10130424 Boutoussov et al. Nov 2018 B2
10314671 Lifshitz et al. Jun 2019 B2
10321957 Boutoussov et al. Jun 2019 B2
10327866 Lifshitz et al. Jun 2019 B2
10335249 Hiemer et al. Jul 2019 B2
10363120 Khakpour et al. Jul 2019 B2
10420629 Buchanan Sep 2019 B2
10420630 Bergheim et al. Sep 2019 B2
10430061 Boutoussov et al. Oct 2019 B2
10450656 Sivriver et al. Oct 2019 B2
10518299 Lukac et al. Dec 2019 B2
10561560 Boutoussov et al. Feb 2020 B2
10617498 Gharib et al. Apr 2020 B2
10631962 Bergheim et al. Apr 2020 B2
10702355 Bergheim et al. Jul 2020 B2
10722325 Khakpour et al. Jul 2020 B2
10729514 Buchanan Aug 2020 B2
D896827 Boutoussov et al. Sep 2020 S
10779908 Dresser et al. Sep 2020 B2
10779920 Buchanan Sep 2020 B2
10806543 Bergheim et al. Oct 2020 B2
10806544 Khakpour et al. Oct 2020 B2
10835355 Gharib et al. Nov 2020 B2
10877630 Patton et al. Dec 2020 B2
D923038 Boutoussov et al. Jun 2021 S
11103309 Boutoussov et al. Aug 2021 B2
11103333 Khakpour et al. Aug 2021 B2
11141249 Evans et al. Oct 2021 B2
11160455 Islam Nov 2021 B2
11160645 Bergheim et al. Nov 2021 B2
11173010 Boutoussov et al. Nov 2021 B2
11173019 Bergheim et al. Nov 2021 B2
11193209 Sivriver et al. Dec 2021 B2
11202687 Boutoussov et al. Dec 2021 B2
11213375 Khakpour et al. Jan 2022 B2
11250941 Patton et al. Feb 2022 B2
11284978 Bergheim et al. Mar 2022 B2
11350993 DiVito et al. Jun 2022 B2
11426239 DiVito Aug 2022 B2
20010041324 Riitano Nov 2001 A1
20020012897 Tingley et al. Jan 2002 A1
20020014855 Rizoiu et al. Feb 2002 A1
20020072032 Senn et al. Jun 2002 A1
20020086264 Okawa et al. Jul 2002 A1
20020090594 Riitano et al. Jul 2002 A1
20020108614 Schultz Aug 2002 A1
20020142260 Pond Oct 2002 A1
20020183728 Rosenberg et al. Dec 2002 A1
20030013063 Goldman Jan 2003 A1
20030013064 Zirkel Jan 2003 A1
20030022126 Buchalla et al. Jan 2003 A1
20030023234 Daikuzono Jan 2003 A1
20030027100 Grant Feb 2003 A1
20030096213 Hickok et al. May 2003 A1
20030121532 Coughlin et al. Jul 2003 A1
20030124485 Teraushi Jul 2003 A1
20030129560 Atkin Jul 2003 A1
20030158544 Slatkine Aug 2003 A1
20030191429 Andrew et al. Oct 2003 A1
20030207231 Nance Nov 2003 A1
20030207232 Todd et al. Nov 2003 A1
20030211083 Vogel et al. Nov 2003 A1
20030215768 Aumuller et al. Nov 2003 A1
20030236517 Appling Dec 2003 A1
20040038170 Hiszowicz et al. Feb 2004 A1
20040048226 Garman Mar 2004 A1
20040063073 Kajimoto et al. Apr 2004 A1
20040063074 Fisher Apr 2004 A1
20040068256 Rizoiu et al. Apr 2004 A1
20040072122 Hegemann Apr 2004 A1
20040073374 Lockhart et al. Apr 2004 A1
20040092925 Rizoiu et al. May 2004 A1
20040101809 Weiss et al. May 2004 A1
20040102782 Vercellotti et al. May 2004 A1
20040126732 Nusstein Jul 2004 A1
20040127892 Harris Jul 2004 A1
20040166473 Cohen Aug 2004 A1
20040193236 Altshuler Sep 2004 A1
20040210276 Altshuler et al. Oct 2004 A1
20040224288 Bornstein Nov 2004 A1
20040259053 Bekov et al. Dec 2004 A1
20050064371 Soukos et al. Mar 2005 A1
20050065497 Levatino Mar 2005 A1
20050096529 Cooper et al. May 2005 A1
20050112525 McPherson et al. May 2005 A1
20050136375 Sicurelli, Jr. et al. Jun 2005 A1
20050142517 Frysh et al. Jun 2005 A1
20050155622 Leis Jul 2005 A1
20050170312 Pond Aug 2005 A1
20050175960 Wiek et al. Aug 2005 A1
20050186530 Eagle Aug 2005 A1
20050199261 Vanhauwemeiren et al. Sep 2005 A1
20050256517 Boutoussov Nov 2005 A1
20050271531 Brown, Jr. et al. Dec 2005 A1
20050277898 Dimalanta et al. Dec 2005 A1
20050281530 Rizoiu et al. Dec 2005 A1
20050281887 Rizoiu Dec 2005 A1
20050283143 Rizoiu Dec 2005 A1
20060019220 Loebel et al. Jan 2006 A1
20060021642 Sliwa et al. Feb 2006 A1
20060036172 Abe Feb 2006 A1
20060064037 Shalon et al. Mar 2006 A1
20060110710 Schemmer et al. May 2006 A1
20060142743 Rizoiu et al. Jun 2006 A1
20060142744 Boutoussov Jun 2006 A1
20060142745 Boutoussov Jun 2006 A1
20060184071 Klopotek Aug 2006 A1
20060189965 Litvak et al. Aug 2006 A1
20060227653 Keller Oct 2006 A1
20060234182 Ruddle et al. Oct 2006 A1
20060234183 Ruddle et al. Oct 2006 A1
20060240381 Rizoiu et al. Oct 2006 A1
20060240386 Yaniv et al. Oct 2006 A1
20060241574 Rizoiu Oct 2006 A1
20060246395 Pond Nov 2006 A1
20060257819 Johnson Nov 2006 A1
20060264808 Staid et al. Nov 2006 A1
20070003604 Jones Jan 2007 A1
20070009449 Kanca Jan 2007 A1
20070014517 Rizoiu et al. Jan 2007 A1
20070016176 Boutoussov et al. Jan 2007 A1
20070016177 Vaynberg et al. Jan 2007 A1
20070016178 Vaynberg et al. Jan 2007 A1
20070020576 Osborn et al. Jan 2007 A1
20070042315 Boutoussov et al. Feb 2007 A1
20070042316 Pichat et al. Feb 2007 A1
20070049911 Brown Mar 2007 A1
20070054233 Rizoiu et al. Mar 2007 A1
20070054235 Rizoiu et al. Mar 2007 A1
20070054236 Rizoiu et al. Mar 2007 A1
20070059660 Rizoiu et al. Mar 2007 A1
20070060917 Andriasyan Mar 2007 A1
20070072153 Gross et al. Mar 2007 A1
20070083120 Cain et al. Apr 2007 A1
20070088295 Bankiewicz Apr 2007 A1
20070099149 Levy et al. May 2007 A1
20070104419 Rizoiu et al. May 2007 A1
20070128576 Boutoussov Jun 2007 A1
20070135797 Hood et al. Jun 2007 A1
20070148615 Pond Jun 2007 A1
20070175502 Sliwa Aug 2007 A1
20070179486 Welch et al. Aug 2007 A1
20070184402 Boutoussov et al. Aug 2007 A1
20070190482 Rizoiu Aug 2007 A1
20070208328 Boutoussov et al. Sep 2007 A1
20070224575 Dieras et al. Sep 2007 A1
20070265605 Vaynberg et al. Nov 2007 A1
20070287125 Weill Dec 2007 A1
20070298369 Rizoiu et al. Dec 2007 A1
20080014545 Schippers Jan 2008 A1
20080032259 Schoeffel Feb 2008 A1
20080033411 Manvel Artyom et al. Feb 2008 A1
20080044789 Johnson Feb 2008 A1
20080065057 Andriasyan Mar 2008 A1
20080070185 Rizoiu et al. Mar 2008 A1
20080070195 DiVito et al. Mar 2008 A1
20080085490 Jabri Apr 2008 A1
20080097417 Jones et al. Apr 2008 A1
20080102416 Karazivan et al. May 2008 A1
20080125677 Van Valen May 2008 A1
20080138761 Pond Jun 2008 A1
20080138764 Rizoiu Jun 2008 A1
20080138772 Bornstein Jun 2008 A1
20080151953 Rizoiu et al. Jun 2008 A1
20080155770 Grez Jul 2008 A1
20080157690 Rizoiu et al. Jul 2008 A1
20080159345 Bornstein Jul 2008 A1
20080160479 Ruddle et al. Jul 2008 A1
20080160480 Ruddle et al. Jul 2008 A1
20080160481 Schoeffel Jul 2008 A1
20080188848 Deutmeyer et al. Aug 2008 A1
20080199831 Teichert et al. Aug 2008 A1
20080209650 Brewer et al. Sep 2008 A1
20080219629 Rizoiu et al. Sep 2008 A1
20080221558 Becker Sep 2008 A1
20080255498 Houle Oct 2008 A1
20080274438 Schemmer Nov 2008 A1
20080276192 Jones et al. Nov 2008 A1
20080285600 Marincek et al. Nov 2008 A1
20080311045 Hardy Dec 2008 A1
20080311540 Gottenbos et al. Dec 2008 A1
20080314199 Niemi et al. Dec 2008 A1
20090004621 Quan et al. Jan 2009 A1
20090011380 Wang Jan 2009 A1
20090031515 Rizoiu et al. Feb 2009 A1
20090035717 Rizoiu et al. Feb 2009 A1
20090042171 Rizoiu et al. Feb 2009 A1
20090047624 Tsai Feb 2009 A1
20090047634 Calvert Feb 2009 A1
20090054881 Krespi Feb 2009 A1
20090059994 Nemes et al. Mar 2009 A1
20090067189 Boutoussov et al. Mar 2009 A1
20090092947 Cao Apr 2009 A1
20090105597 Abraham Apr 2009 A1
20090105707 Rizoiu et al. Apr 2009 A1
20090111068 Martinez Apr 2009 A1
20090111069 Wagner Apr 2009 A1
20090130622 Bollinger et al. May 2009 A1
20090143775 Rizoiu et al. Jun 2009 A1
20090170052 Borczyk Jul 2009 A1
20090208898 Kaplan Aug 2009 A1
20090211042 Bock Aug 2009 A1
20090225060 Rizoiu et al. Sep 2009 A1
20090227185 Summers et al. Sep 2009 A1
20090263759 Van Herpern Oct 2009 A1
20090275935 McKee Nov 2009 A1
20090281531 Rizoiu et al. Nov 2009 A1
20090298004 Rizoiu Dec 2009 A1
20100015576 Altshuler et al. Jan 2010 A1
20100042040 Arentz Feb 2010 A1
20100047734 Harris et al. Feb 2010 A1
20100068679 Zappini Mar 2010 A1
20100086892 Riozoui et al. Apr 2010 A1
20100092922 Ruddle Apr 2010 A1
20100125291 Rizoiu et al. May 2010 A1
20100143861 Gharib Jun 2010 A1
20100151406 Boutoussov et al. Jun 2010 A1
20100151407 Rizoiu et al. Jun 2010 A1
20100152634 Dove Jun 2010 A1
20100160838 Krespi Jun 2010 A1
20100160904 McMillan et al. Jun 2010 A1
20100167226 Altshuler et al. Jul 2010 A1
20100167228 Rizoiu et al. Jul 2010 A1
20100185188 Boutoussov et al. Jul 2010 A1
20100190133 Martinez Jul 2010 A1
20100206324 Paschke Aug 2010 A1
20100209867 Becker et al. Aug 2010 A1
20100229316 Hohlbein et al. Sep 2010 A1
20100233645 Rizoiu Sep 2010 A1
20100233649 McPeek et al. Sep 2010 A1
20100261136 Schulte et al. Oct 2010 A1
20100272764 Latta et al. Oct 2010 A1
20100273125 Janssen et al. Oct 2010 A1
20100279250 Pond et al. Nov 2010 A1
20100279251 Pond Nov 2010 A1
20100330539 Glover et al. Dec 2010 A1
20110020765 Maxwell et al. Jan 2011 A1
20110027746 McDonough et al. Feb 2011 A1
20110027747 Fougere et al. Feb 2011 A1
20110070552 Bornstein Mar 2011 A1
20110072605 Steur Mar 2011 A1
20110076638 Gottenbos et al. Mar 2011 A1
20110087605 Pond Apr 2011 A1
20110096549 Boutoussov et al. Apr 2011 A1
20110111365 Gharib et al. May 2011 A1
20110129789 Rizoiu et al. Jun 2011 A1
20110136935 Khor et al. Jun 2011 A1
20110143310 Hunter Jun 2011 A1
20110151394 Rizoiu et al. Jun 2011 A1
20110183284 Yamanaka et al. Jul 2011 A1
20110189627 Gharib et al. Aug 2011 A1
20110189630 Koubi Aug 2011 A1
20110198370 Ho Aug 2011 A1
20110200959 Rizoiu et al. Aug 2011 A1
20110217665 Walsh et al. Sep 2011 A1
20110229845 Chen Sep 2011 A1
20110256503 Fraser Oct 2011 A1
20110269099 Glover et al. Nov 2011 A1
20110270241 Boutoussov Nov 2011 A1
20110281230 Rizoiu et al. Nov 2011 A1
20110281231 Rizoiu et al. Nov 2011 A1
20120065711 Netchitailo et al. Mar 2012 A1
20120077144 Fougere et al. Mar 2012 A1
20120094251 MÖssle Apr 2012 A1
20120099815 Boutoussov et al. Apr 2012 A1
20120135368 Rizoiu et al. May 2012 A1
20120135373 Cheng et al. May 2012 A1
20120141953 Mueller Jun 2012 A1
20120148979 Ruddle Jun 2012 A1
20120240647 Montemurro Sep 2012 A1
20120276497 Gharib Nov 2012 A1
20120282566 Rizoiu et al. Nov 2012 A1
20120282570 Mueller Nov 2012 A1
20120021375 Binner et al. Dec 2012 A1
20130040267 Bergheim Feb 2013 A1
20130066324 Engqvist et al. Mar 2013 A1
20130084544 Boutoussov et al. Apr 2013 A1
20130084545 Netchitailo et al. Apr 2013 A1
20130085485 Van Valen et al. Apr 2013 A1
20130085486 Boutoussov et al. Apr 2013 A1
20130086758 Boutoussov et al. Apr 2013 A1
20130089829 Boutoussov et al. Apr 2013 A1
20130110101 Van Valen et al. May 2013 A1
20130115568 Jelovac et al. May 2013 A1
20130131656 Marincek et al. May 2013 A1
20130143180 Glover et al. Jun 2013 A1
20130177865 Ostler Jul 2013 A1
20130178847 Rizoiu et al. Jul 2013 A1
20130190738 Lukac et al. Jul 2013 A1
20130190743 Boutoussov et al. Jul 2013 A1
20130216980 Boronkay et al. Aug 2013 A1
20130236857 Boutoussov et al. Sep 2013 A1
20130273494 Boutoussov et al. Oct 2013 A1
20130274724 Rizoiu Oct 2013 A1
20130288195 Mueller Oct 2013 A1
20130296910 Deng Nov 2013 A1
20130330684 Dillon et al. Dec 2013 A1
20130337404 Feine Dec 2013 A1
20140032183 Fisker et al. Jan 2014 A1
20140072931 Fougere et al. Mar 2014 A1
20140080090 Laufer Mar 2014 A1
20140087333 DiVito et al. Mar 2014 A1
20140113243 Boutoussov et al. Apr 2014 A1
20140124969 Blaisdell et al. May 2014 A1
20140127641 Hilscher et al. May 2014 A1
20140147804 Yamamoto et al. May 2014 A1
20140170588 Miller et al. Jun 2014 A1
20140205965 Boutoussov et al. Jul 2014 A1
20140220511 DiVito et al. Aug 2014 A1
20140242551 Downs Aug 2014 A1
20140257254 Boutoussov et al. Sep 2014 A1
20140261534 Schepis Sep 2014 A1
20140272782 Luettgen et al. Sep 2014 A1
20140303692 Pignatelli et al. Oct 2014 A1
20140342303 Altshuler et al. Nov 2014 A1
20140349246 Johnson et al. Nov 2014 A1
20150010878 Seibel et al. Jan 2015 A1
20150017599 Marincek et al. Jan 2015 A1
20150017607 Nelson et al. Jan 2015 A1
20150030991 Sung et al. Jan 2015 A1
20150044630 Gharib et al. Feb 2015 A1
20150056567 Fregoso et al. Feb 2015 A1
20150056570 Kansal Feb 2015 A1
20150126984 Boutoussov et al. May 2015 A1
20150147715 Breysse May 2015 A1
20150147717 Taylor et al. May 2015 A1
20150150650 Netchitailo et al. Jun 2015 A1
20150173850 Garrigues et al. Jun 2015 A1
20150182283 Boutoussov et al. Jul 2015 A1
20150190597 Zachar et al. Jul 2015 A1
20150216398 Yang et al. Aug 2015 A1
20150216597 Boutoussov et al. Aug 2015 A1
20150216622 Vartanian et al. Aug 2015 A1
20150230865 Sivriver et al. Aug 2015 A1
20150268803 Patton et al. Sep 2015 A1
20150277738 Boutoussov et al. Oct 2015 A1
20150283277 Schafer et al. Oct 2015 A1
20150327964 Bock Nov 2015 A1
20150335410 Zhao Nov 2015 A1
20150342679 Boutoussov et al. Dec 2015 A1
20150359672 Van Valen et al. Dec 2015 A1
20150367142 Kazic et al. Dec 2015 A1
20150374471 Stangel et al. Dec 2015 A1
20160022392 Chang et al. Jan 2016 A1
20160067149 Kishen Mar 2016 A1
20160100921 Ungar Apr 2016 A1
20160113733 Pond et al. Apr 2016 A1
20160113745 Golub et al. Apr 2016 A1
20160128815 Birdee et al. May 2016 A1
20160135581 Pai May 2016 A1
20160149370 Marincek et al. May 2016 A1
20160149372 Marincek et al. May 2016 A1
20160220200 Sandholm et al. Aug 2016 A1
20160270889 Casabonne et al. Sep 2016 A1
20160334283 Scurtescu et al. Nov 2016 A1
20170027646 DivVito et al. Feb 2017 A1
20170027647 DiVito et al. Feb 2017 A1
20170036253 Lukac et al. Feb 2017 A1
20170056143 Hyun Mar 2017 A1
20170189149 Golub et al. Jul 2017 A1
20170196658 Schoeffel Jul 2017 A1
20170197071 Gottenbos Jul 2017 A1
20170216579 Becker et al. Aug 2017 A1
20170265965 Chow et al. Sep 2017 A1
20170274220 Ertl et al. Sep 2017 A1
20170281305 Bergheim Oct 2017 A1
20170300220 Boutoussov et al. Oct 2017 A1
20170325889 DiVito et al. Nov 2017 A1
20170340523 Guzman Nov 2017 A1
20180008347 DeVito et al. Jan 2018 A9
20180021104 Duncan et al. Jan 2018 A1
20180104020 Boutoussov et al. Apr 2018 A1
20180125608 Gottenbos et al. May 2018 A1
20180140865 Boutoussov et al. May 2018 A1
20180214247 Sharma et al. Aug 2018 A1
20180228581 Ouyang Aug 2018 A1
20180228582 Shin Aug 2018 A1
20180257962 Montemurro Sep 2018 A1
20180360563 Khakpour Dec 2018 A1
20190059996 Duncan et al. Feb 2019 A1
20190117078 Sharma et al. Apr 2019 A1
20190142516 Boutoussov et al. May 2019 A1
20190175401 Van Valen et al. Jun 2019 A1
20190282332 Lifshitz et al. Sep 2019 A1
20190282347 Gharib et al. Sep 2019 A1
20190336219 DiVito Nov 2019 A9
20200069402 Gharib Mar 2020 A1
20200085534 Kim et al. Mar 2020 A1
20200139146 Khakpour May 2020 A1
20200179209 Boutoussov et al. Jun 2020 A1
20200197143 Snyder et al. Jun 2020 A1
20200205934 Groves, Jr. et al. Jul 2020 A1
20200253369 De Gentile et al. Aug 2020 A1
20200253702 De Gentile et al. Aug 2020 A1
20200254586 Sanders et al. Aug 2020 A1
20200268491 Shotton et al. Aug 2020 A1
20200281688 Lares et al. Sep 2020 A1
20200297455 Bergheim Sep 2020 A1
20200330184 Boutoussov et al. Oct 2020 A1
20200347191 Gomurashvili Nov 2020 A1
20200360108 Gomurashvili et al. Nov 2020 A1
20210038344 Khakpour Feb 2021 A1
20210068921 Bergheim Mar 2021 A1
20210069756 Lukac et al. Mar 2021 A1
20210077234 Gharib et al. Mar 2021 A1
20210082562 Patton et al. Mar 2021 A1
20210085435 Bergheim Mar 2021 A1
20210106402 Khakpour et al. Apr 2021 A1
20210121275 Parham et al. Apr 2021 A1
20210145538 Boutoussov et al. May 2021 A1
20210153937 Duncan et al. May 2021 A1
20210186824 Gomurashvili et al. Jun 2021 A1
20210386532 Khakpour et al. Dec 2021 A1
20220015829 Boutoussov et al. Jan 2022 A1
20220022961 Boutoussov et al. Jan 2022 A1
20220031548 Boutoussov et al. Feb 2022 A1
20220054230 Lifshitz et al. Feb 2022 A1
20220071735 Boutoussov et al. Mar 2022 A1
20220186376 Sivriver et al. Jun 2022 A1
20220202525 Boutoussov et al. Jun 2022 A1
20220208334 Patton et al. Jun 2022 A1
20220233291 DeZan et al. Jul 2022 A1
20220296346 Bergheim et al. Sep 2022 A1
20220313405 Bergheim et al. Oct 2022 A1
20220370177 Khakpour et al. Nov 2022 A1
Foreign Referenced Citations (82)
Number Date Country
2031739 Jun 1991 CA
2771397 Feb 2011 CA
2189448 Feb 1995 CN
1127982 Jul 1996 CN
2693189 Apr 2005 CN
2936192 Aug 2007 CN
200953143 Oct 2007 CN
201070397 Jun 2008 CN
201370644 Dec 2009 CN
101632849 Jan 2010 CN
103027762 Apr 2013 CN
107080697 Aug 2017 CN
3708801 Sep 1988 DE
4404983 Sep 1994 DE
10248336 May 2004 DE
102005028925 Jan 2007 DE
0261466 Mar 1988 EP
0436316 Jul 1991 EP
0685454 Dec 1995 EP
0830852 Mar 1998 EP
0902654 Aug 2004 EP
1225547 Jul 1960 FR
2831050 Apr 2003 FR
917633 Feb 1963 GB
2011305 Jul 1979 GB
51-064791 Apr 1976 JP
01-313048 Dec 1989 JP
05-169039 Sep 1993 JP
H07-155335 Jun 1995 JP
H08-117335 May 1996 JP
H08-1118 Sep 1996 JP
09-84809 Mar 1997 JP
09-276292 Oct 1997 JP
10-33548 Feb 1998 JP
H11-28219 Feb 1999 JP
11-113927 Apr 1999 JP
H11-504843 May 1999 JP
11-244303 Sep 1999 JP
2000-254153 Sep 2000 JP
2002-209911 Jul 2002 JP
2004-313659 Nov 2003 JP
3535685 Jun 2004 JP
2004-261288 Sep 2004 JP
2005-052754 Mar 2005 JP
2005-080802 Mar 2005 JP
2005-095374 Apr 2005 JP
2006-247619 Sep 2006 JP
2008-93080 Apr 2008 JP
2008-132099 Jun 2008 JP
2009-114953 May 2009 JP
2010-247133 Nov 2010 JP
10-2008-0105713 Dec 2008 KR
10-2012-0084897 Jul 2012 KR
10-2013-0022553 Mar 2013 KR
10-2013-0141103 Dec 2013 KR
2004-72508 May 2014 KR
2326611 Dec 2011 RU
M 336 027 Jul 2008 TW
WO 1992004871 Apr 1992 WO
WO 1992012685 Aug 1992 WO
WO 1995035069 Dec 1995 WO
WO 1997021420 Jun 1997 WO
WO 1998023219 Jun 1998 WO
WO 1998025536 Jun 1998 WO
WO 199963904 Dec 1999 WO
WO 2000045731 Aug 2000 WO
WO 2000074587 Dec 2000 WO
WO 2001026577 Apr 2001 WO
WO 200126735 Apr 2001 WO
WO 200193773 Dec 2001 WO
WO 2002078644 Oct 2002 WO
WO 2003086223 Oct 2003 WO
WO 2004032881 Apr 2004 WO
WO 2006082101 Aug 2006 WO
WO 2008120018 Oct 2008 WO
WO 2011114718 Sep 2011 WO
WO 2012074918 Jun 2012 WO
WO 201315700 Jan 2013 WO
WO 2013057519 Apr 2013 WO
WO 2013061251 May 2013 WO
WO 2013160888 Oct 2013 WO
WO 2022099258 May 2022 WO
Non-Patent Literature Citations (231)
Entry
U.S. Appl. No. 16/160,799, filed Oct. 15, 2018, Bergheim et al.
U.S. Appl. No. 17/452,731, filed Oct. 28, 2021, Bergheim et al.
U.S. Appl. No. 17/454,725, filed Nov. 12, 2021, Bergeim et al.
U.S. Appl. No. 17/562,798, filed Dec. 27, 2021, Khakpour et al.
U.S. Appl. No. 61/701,947, filed Sep. 17, 2012, Laufer.
U.S. Appl. No. 61/894,762, filed Oct. 23, 2013, Lifshitz et al.
U.S. Appl. No. 61/895,316, filed Oct. 24, 2013, Lifshitz et al.
ADA American Dental Association, “Glossary of Dental Clinical and Administrative Terms,” http://www.ada.org/en/publications/cdt/glossary-of-dental-clinical-and-administrative-ter, downloaded May 4, 2017, in 46 pages.
Adachi et al; Jet Structure Analyses on High-Speed Submerged Water Jets through Cavitation 110 Noises; pp. 568-574; The Japan Society of Mechanical Engineers International Journal—Series B, vol. 39, No. 3; Nov. 1996.
Ahmad et al., “Ultrasonic Debridement of Root Canals: Acoustic Cavitation and Its Relevance,” Journal of Endontics, vol. 14, No. 10, pp. 486-493, Oct. 1988.
Al-Jadaa et al; Acoustic Hypochlorite Activation in Simulated Curved Canals; pp. 1408-1411; Journal of Endodontics, vol. 35, No. 10; Oct. 2009.
Alomairy, Evaluating two techniques on removal of fractured rotary nickel-titanium endodontic instruments from root canals: an in vitro study. J Endod 2009;35:559-62.
Anand et al; Prevention of Nozzle Wear in High-Speed Slurry Jets Using Porous Lubricated Nozzles; pp. 1-13; Department of Mechanical Engineering, The Johns Hopkins University, Oct. 2000.
Anantharamaiah et al; A simple expression for predicting the inlet roundness of micro-nozzles; pp. N31-N39; Journal of Micromechanics and Microengineering, vol. 17; Mar. 21, 2007.
Anantharamaiah et al; A study on flow through hydroentangling nozzles and their degradation; pp. 4582-4594; Chemical Engineering Science, vol. 61; May 2006.
Anantharamaiah et al; Numerical Simulation of the Formation of Constricted Waterjets in Hydroentangling Nozzles Effects of Nozzle Geometry; pp. 31-238; Chemical Engineering Research and Design, vol. 84; Mar. 2006.
Attin et al; Clinical evaluation of the cleansing properties of the nonistrumental technique for cleaning root canals; pp. 929-933; International Endodontic Journal, vol. 35, Issue 11; Nov. 2002.
Aydin, et al., “Fracture resistance of root-filled teeth after cavity preparation with conventional burs, Er:YAG and Er,Cr:YSGG Lasers,” Eur Oral Res 2018; 52: 59-63.
Bader et al., “Indications and limitations of Er:YAG laser applications in dentistry,” archive ouverte UNIGE, http://archive-ouverte.unige.ch. American Journal of Denistry, 2006, vol. 19, No. 3, p. 178-186.
Bahia, et al.: Physical and mechanical characterization and the influence of cyclic loading on the behaviour of nickel-titanium wires employed in the manufacture of rotary endodontic instruments. Int Endod. J. 2005;38:795-801.
Batchelor et al; Analysis of the stability of axisymmetric jets; pp. 529-551; Journal of Fluid Mechanics, vol. 14; Dec. 1962.
Begenir et al; Effect of Nozzle Geometry on Hydroentangling Water Jets: Experimental Observations; pp. 178-184; Textile Research Journal, vol. 74; Feb. 2004.
Begenir, Asli; The Role of Orifice Design in Hydroentanglement; Thesis submitted to North Carolina State University; dated Dec. 2002, in 107 pages.
Biolase Study, Efficacy of the Er,Cr:YSGG laser in the Laser Assisted Endodontic Treatment, Blind Randomized Clinical Trial, in 332 pages, Apr. 11, 2014. URL: https://repositorio-aberto.up.pt/handle/10216/82757.
Borkent et al; Is there gas entrapped on submerged silicon wafers? Visualizing nano-scale bubbles with cavitation; pp. 225-228; Solid State Phenomena, vol. 134 (2008); available online Nov. 2007.
Bornstein, Eric. “Proper use of Er: YAG lasers and contact sapphire tips when cutting teeth and bone: scientific principles and clinical application.” Dentistry today 23.8 (2004): 84-89.
Bremond et al; Cavitation on surfaces; pp. S3603-S3608; Journal of Physics: Condensed Matter, vol. 17; Oct. 28, 2005.
Brennen, Christopher E.; Fission of collapsing cavitation bubbles; pp. 153-166; Journal of Fluid Mechanics, vol. 472; Dec. 2002.
Buchanan, “Closed-System Negative Pressure Irrigation: A Serious Inflection Point inRoot Canal Cleaning,” Apr. 1, 2020. https://www.dentistrytoday.com/articles/10666.
Chang et al; Effects of Inlet Surface Roughness, Texture, and Nozzle Material on Cavitation; pp. 299-317; Atomization and Sprays, vol. 16 (2006).
Charara, et al.: “Assessment of apical extrusion during root canal procedure with the novel GentleWave system in a simulated apical environment,” J Endod 2015. In Press.
Christo, Jonathan Dr., “Efficacy of Sodium Hypochlorite and Er,Cr:YSGG Laser Energised Irrigation Against an Enterococcus faecalis Biofilm”, Sep. 2012.
Crump et al., “Relationship of broken root canal instruments to endodontic case prognosis: a clinical investigation,” J Am Dent Assoc 1970;80:1341-7.
Culjat et al., “B-Scan Imaging of Human Teeth Using Ultrasound,” Apr. 2003, in 4 pages.
D'Arcangelo, et al.: “Broken instrument removal—two cases,” J Endod 2000;26:368-70.
De Groot, et al., “Laser-activated irrigation within root canals: cleaning efficacy and flow visualization,” Int Endod J. 2009;42:1077-83.
Didenkulov et al.; Nonlinear Acoustic Diagnostics of Scatterer Spatial Distribution in a Cavitation Jet; Nov. 19-23, 2001, pp. 276-278, XI Session of the Russion Acoustical Society.
DiVito et al.: “Cleaning and debriding efficacy of new radial and stripped tips using an Erbium laser on human root canal dentin walls—an in vitro study: SEM observations,” undated.
DiVito et al., “The Photoacoustic Efficacy of an Er:YAG Laser with Radial and Stripped Tips on Root Canal Dentin Walls: An SEM Evaluation,” J Laser Dent 2011;19(1):156-161.
Dumouchel, Christophe; On the experimental investigation on primary atomization of liquid streams; pp. 371-422; Experimental Fluids, vol. 45; Jun. 22, 2008.
Ebihara et al.: “Er:YAG laser modification of root canal dentine: Influence of pulse duration, repetitive irradiation and water spray,” Lasers in Medical Science, 17(3), 198-207, Aug. 2002.
Eddingfield et al; Mathematical Modeling of High Velocity Water Jets; pp. 25-39; Proceedings of 1st U.S. Water Jet Conference; 1981.
El-Din, et al., “Antibacterial Effect of Er,Cr:YSGG Laser Under Various Irradiation Conditions in Root Canals Contaminated With Enterococcus Faecalis,” Alexandria Dental Journal. (2017) vol. 42 pp. 108-112.
EMS Electro Medical Systems, “Cleaning”, in 2 pages, dated 2005, downloaded from http://www.ems-dent.com/en/endodontics cleaning. htm.
Esen, et al.: “Apical microleakage of root-end cavities prepared by CO2 laser,” J Endod 2004;30:662-4.
ESI Endo Soft Instruments, EMS Electro Medical Systems, Brochure in 2 pages, downloaded from www.emsdent.com, dated Jan. 2004.
Feldman, et al.: “Retrieving broken endodontic instruments,” J Am Dent Assoc. 1974:88:588-91.
Feng et al; Enhancement of ultrasonic cavitation yield by multi-frequency sonication; pp. 231-236; Ultrasonics Sonochemistry, vol. 9; Oct. 2002.
Flint, E. B., et al., “The Temperature of Cavitation”, Science, vol. 253, Sep. 20, 1991, pp. 1397-1399.
Foldyna et al; Acoustic wave propagation in high-pressure system; pp. e1457-e1460; Ultrasonics vol. 44 (Supplement 1); Jun. 8, 2006.
Fors, et al.: “A method for the removal of broken endodontic instruments from root canals,” J Endod 1983;9:156-9.
Fuchs, “Ultrasonic Cleaning: Fundamental Theory and Application,” Blackstone—Ney Ultrasonics, Jamestown, NY, May 2002.
G.E. Reisman and C.E. Brennen, “Pressure Pulses Generated by Cloud Cavitation”, FED—vol. 236, 1996 Fluids Engineering Division Conference, vol. 1, pp. 319-328, ASME 1996.
G.E. Reisman, Y.-C. Wang and C.E. Brennen, “Observations of shock waves in cloud cavitation”, J. Fluid Mech. (1998), vol. 355, pp. 255-283.
Gencoglu, et al.: Comparison of the different techniques to remove fractured endodontic instruments from root canal systems. Eur J Dent 2009;3:90-5.
George, M.D.Sc., Ph.D, et al., “Thermal Effects from Modified Endodontic Laser Tips Used in the Apical Third of Root Canals with Erbium-Doped Yttrium Aluminium Garnet and Erbium, Chromium-Doped Yttrium Scandium Gallium Garnet Lasers,” Photomedicine and Laser Surgery vol. 28, No. 2, 2010, Mary Ann Liebert, Inc., pp. 161-165.
Ghassemieh et al; Effect of Nozzle Geometry on the Flow Characteristics of Hydroentangling Jets; pp. 444-450; Textile Research Journal, vol. 73; May 2003.
Ghassemieh et al; The effect of nozzle geometry on the flow characteristics of small water jets; pp. 1739-1753; Proceedings of the Institute of Mechanical Engineers, Part C: Mechanical Engineering Science, vol. 12, Sep. 2006.
Gordon, DMD, et al., “The antimicrobial efficacy of the erbium, chromiumyttrium-scandium-gallium-garnet laser with radial emitting tips on root canal dentin walls infected with Enterococcus faecalis,” Research—Advances in Dental Products, JADA, vol. 138, Jul. 2007. RFT endolase, Root Calan Therapy System for the Waterlase MD YSGG Laser, Peer-Reviewed Clincal Articles.
Gregorcic, Peter, Matija Jezersek, and Janez Mozina. “Optodynamic energy-conversion efficiency during an Er: YAG-laser-pulse delivery into a liquid through different fiber-tip geometries.” Journal of biomedical optics 17.7 (2012): 075006.
Guidotti R, et al, “Er:YAG 2,940-nm laser fiber in endodontic treatment: a help in removing smear layer,” Lasers Med Sci. 2014;29:69-75.
Haapasalo, et al.: “Tissue dissolution by a novel multisonic ultra-cleaning system and sodium hypochlorite,” J Endod 2014;40:1178-81.
Hahn et al; Acoustic resonances in the bubble plume formed by a plunging waterjet; pp. 1751-1782; Proceedings of the Royal Society of London A, vol. 459; May 16, 2003.
Haikel, et al.: Dynamic and cyclic fatigue of engine-driven rotary nickel-titanium endodontic instruments. J Endod 1999;25:434-40.
Haikel, et al.: Dynamic fracture of hybrid endodontic hand instruments compared with traditional files. J Endod 1991;17:217-20.
Hashish, Mohamed; Experimental Studies of Cutting with Abrasive Waterjets; pp. 402-416; Proceedings of 2nd American Water Jet Conference; 1983.
Herbert et al; Cavitation pressure in water; pp. 041603-1 to 041603-22; Physical Review E, vol. 74; Oct. 2006.
Hiroyasu, Hiro; Spray Breakup Mechanism from the Hole-Type Nozzle and its Applications; pp. 511-527; Atomization and Sprays, vol. 10 (2000).
Hmud R. et al. “Cavitational Effects in Aqueous Endodontic Irrigants Generated by Near-Infrared Lasers”, Journal of Endodontics, vol. 36, Issue 2, Feb. 2010, available online Dec. 4, 2009, in 4 pages.
Hoque et al; Air entrainment and associated energy dissipation in steady and unsteady plunging jets at free surface; pp. 37-45; Applied Ocean Research, vol. 30; May 2008.
Hulsmann, et al.: Influence of several factors on the success or failure of removal of fractured instruments from the root canal. Endod Dent Traumatol 199;15:252-8.
Hulsmann: “Methods for removing metal obstructions from the root canal,” Endod Dent Traumatol 1993;9:223-37.
Hydrocision Products: SpineJet Hydrosurgery; system webpage in 2 pages, copyright 2010, downloaded from http://www.hydrocision.com on Apr. 22, 2010.
Hydrocision SpineJet XL HydroSurgery System; Brochure in 2 pages, copyright 2004-2006, downloaded from http://www.hydrocision.com on Apr. 22, 2010.
Iqbal, et al.: “A comparison of three methods for preparing centered platforms around separated instruments in curved canals,” J Endod 2006; 32:48-51.
JLAD, Fall 2015, Issue 3.
Jackson et al; Nozzle Design for Coherent Water Jet Production; pp. 53-89; Proceeding of the 2nd US Water Jet Conference; May 1983.
Jiang, et al., “Evaluation of A Sonic Device Designed to Activate Irrigant in the Root Canal,” Journal of endodontics, 36(1): 143-146, Jan. 2010.
Jonathan, et al., “Comparative Evaluation of the Antibacterial Efficacy of Four Different Disinfection Techniques in Minimally Instrumented Experimentally Infected Root Canals: An in vitro Study,” International Journal of Laser Densitry, May-Aug. 2013; 3(2): 49-54.
Junge et al; Cell Detachment Method Using Shock-Wave-Induced Cavitation; pp. 1769-1776; Ultrasound in Medicine & Biology, vol. 29, No. 12; Dec. 2003.
Kalumuck et al; Development of High Erosivity Well Scale Cleaning Tools; pp. 1-36; Dynaflow, Inc.; Report 98012 conducted under Contract No. DE-FG07-981013684 for the US Dept. of Energy; Jul. 1999, in 36 pages.
Karasawa et al; Effect of Nozzle Configuration on the Atomization of a Steady Spray; pp. 411-426; Atomization and Sprays, vol. 2 (1992).
Kato, Hiroharu; Utilization of Cavitation for Environmental Protection—Killing Planktons and Dispersing Spilled Oil; pp. 1-8; In CAV2001: Fourth International Symposium on Caviation; California Institute of Technology, Pasadena, CA; dated Jun. 2001.
Kimura et al., “Lasers in endodontics: a review,” International Endodontic Journal, 33, 173-185, 2000.
Koch et al., “Irrigant flow during photon-induced photoacoustic streaming (PIPS) using Particle Image Velocimetry (PIV)”, Clin. Oral Invest. vol. 20:381-386 (2016).
Kolnick, Justin. “Managing Refractory Endodontic Disease With Radial Apical Cleansing (Report Of Two Clinical Cases).” (Sep. 2018).
Kourti, E. et al., “Smear Layer Removal By Means of Erbium, Chromium: Yttrium Scandium Gallium Garnet (er,Cr:YSGG) Laser Irradiatin From Apical Third of Mesial Root Canals,” International Journal of Recent Scientific Research, vol. 12, Issue, 05, pp. 41804-41808, May 2021.
Lee et al; The efficacy of ultrasonic irrigation to remove artificially placed dentine debris from different-sized simulated plastic root canals; pp. 607-612; International Endodontic Journal, vol. 37; May 2004.
Li et al; Cavitation Resonance; pp. 031302-1 to 031302-7; Journal of Fluids Engineering, vol. 130; Mar. 2008.
Lienhard V et al; Velocity Coefficients for Free Jets From Sharp-Edged Orifices; pp. 13-17; Reprinted from Mar. 1984, vol. 106, Journal of Fluids Engineering.
Lin et al; Drop and Spray Formation from a Liquid Jet; pp. 85-105; Jan. 1998: vol. 30; Annual Review of Fluid Mechanics.
Linfield, Kevin William; A Study of the Discharge Coefficient of Jets From Angled Slots and Conical Orifices; Thesis submitted to Dept. of Aerospace Science and Engineering; University of Toronto; dated 2000; in 148 pages.
Lukac et al.: “Photoacoustic Endodontics Using the Novel SWEEPS Er:YAG Laser Modality,” Journal of the Laser and Health Academy, vol. 2017, No. 1; www.laserlaserandhealth.com.
Lukac, et al., “Modeling Photoacoustic Efficiency during Erbium Laser Endodontics,” Journal of the Laser and Health Academy, vol. 2013, No. 2.
Lukac, et al., “Wavelength dependence of photoninduced photoacoustic streaming technique for root canal irrigation,” Journal of Biomedical Optics 21(7), 075007 (Jul. 2016).
Lumkes, Jr., Control Strategies for Dynamic Systems: Design and Implementation, 2002, pp. 117-118.
Lussi et al; A new non-instrumental technique for cleaning and filling root canals; pp. 1-6; International Endodontic Journal, vol. 28; Jan. 1995.
Lussi et al; A Novel Noninstrumented Technique for Cleansing the Root Canal System; pp. 549-553; Journal of Endodontics, vol. 19, No. 11; Nov. 1993.
Lussi et al; In vivo performance of the new non-instrumentation technology (NIT) for root canal obturation; pp. 352-358; International Endodontic Journal, vol. 35; Apr. 2002.
Ma, et al.: “In vitro study of calcium hydroxide removal from mandibular molar root canals,” J Endod 2015;41:553-8.
Madarati, et al.: “Efficiency of a newly designed ultrasonic unit and tips in reducing temperature rise on root surface during the removal of fractured files,” J Endod 2009;35:896-9.
Madarati, et al.: “Management of intracanal separated instruments,” J Endod 2013;39:569-81.
Madarati, et al.: “Qualtrough AJ. Factors contributing to the separation of endodontic files,” Br Dent J 2008;204:241-5.
Matsumoto, et al. “Visualization of irrigant flow and cavitation induced by Er: YAG laser within a root canal model.” Journal of endodontics 37.6 (2011): 839-843.
Maximum Dental Inc ., “Canal Clean Max”, “Intra Canal Irrigation and Aspiration Device”, and “SonicMax, Endo-Perio Sonic Handpiece”, in 3 pages, downloaded from www.dentalmaximum.com on May 8, 2008.
Merigo, et al., “Bactericidal effect of Er,Cr:YSGG laser irradiation on endodontic biofilm: An ex vivo study,” Journal of Photochemistry & Photobiology, B: Biology 218 (2021) 112185.
Molina, et al.: “Histological evaluation of root canal debridement of human molars using the GentleWaveTM system,” J Endod 2015;41:1702-5.
Montero-Miralles, et al., “Comparative study of debris and smear layer removal with EDTA and Er,Cr:YSGG laser,” J Clin Exp Dent. 2018;10(6):e598-602.
Mrochen, et al. “Erbium: yttrium-aluminum-garnet laser induced vapor bubbles as a function of the quartz fiber tip geometry Erbium: yttrium-aluminum-garnet laser induced vapor bubbles as a function of the quartz fiber tip geometry.” Journal of biomedical optics 6.3 (2001): 344-350.
Nagahashi et al., “Er:YAG laser-induced cavitation can activate irrigation for the removal of intraradicular biofilm”, Scientific Reports, https://doi.org/10.1038/s41598-022-08963-x, pp. 1-11 (2022).
Nammour et al.: “External temperature during KTP-nd:YAG laser irradiation in root canals: An in vitro study,” Lasers in Medical Science, 19(1), 27-32, Jul. 2004.
Nevares, et al.: “Success rates for removing or bypassing fractured instruments: a prospective clinical study,” J Endod 2012;38:442-4.
Ohrn et al; Geometric Effects on Spray Cone Angle for Plain-Orifice Atomizers; pp. 253-268; Atomization and Sprays, vol. 1 (1991).
Ohrn et al; Geometrical Effects on Discharge Coefficients for Plain-Orifice Atomizers; pp. 137-153; Atomization and Sprays, vol. 1, No. 2 (1991).
Olivi, et al., “Lasers in Endodontics,” Scientific Background and Clinical Applications, 2016.
Oral Health, Special Issue, Laser Dentistry, Photo-Acoustic, Root Canal, Decontamination, in 52 pages.
Peeters, et al., “Measurement of temperature changes during cavitation generated by an erbium, chromium: Yttrium, scandium, gallium garnet laser,” OJST. 2012;2:286-91.
Phinney, Ralph E.; The breakup of a turbulent liquid jet in a gaseous atmosphere; pp. 689-701; J. Fluid Mechanics, vol. 60, Part 4; Oct. 1973.
Piezon Master 600 Ultrasound a la carte, EMS Electro Medical Systems, EMS SA FA-319.EN ed. Mar. 2009; Brochure dated Mar. 2009, in 2 pages.
Prasad, et al., Introduction to biophotonics. John Wiley & Sons, 2003.
Quinn, W. R.; Experimental study of the near field and transition region of a free jet issuing from a sharp-edged elliptic orifice plate; pp. 583-614; European Journal of Mechanics—B/Fluids, vol. 26; Jul.-Aug. 2007; available online Dec. 2006.
Ramamurthi et al; Disintegration of Liquid Jets from Sharp-Edged Nozzles; pp. 551-564; Atomization and Sprays, vol. 4 (1994).
Reitz et al; Mechanism of atomization of a liquid jet; pp. 1730-1742; Physics Fluids, vol. 25, No. 10; Oct. 1982.
Roots—international magazine of endodontics, Issn 2193-4673, vol. 15, Issue Apr. 2019.
Roth, et al.: “A study of the strength of endodonitc files: potential for torsional breakage and relative flexibility,” J Endod 1983; 9:228-32.
Ruddle, “Nonsurgical retreatment,” J Endod 2004;30:827-45.
Sabeti, “Healing of apical periodontitis after endodontic treatment with and without obturation in dogs,” Journal of Endodontics, Jul. 2006, pp. 628-633.
Sallam et al; Liquid breakup at the surface of turbulent round liquid jets in still gases; pp. 427-449; International Journal of Multiphase Flow, vol. 28; Mar. 2002.
Sawant et al; Effect of hydrodynamic cavitation on zooplankton: A tool for disinfection; pp. 320-328; Biochemical Engineering Journal, vol. 42, Issue 3; Dec. 2008.
Schoop et al., “The impact of an erbium, chromium: yttrium-scandium-gallium-garnet laser with radial-firing tips on endodontic treatment,” Lasers in Medical Science, vol. 24(1):59-65, published online Nov. 20, 2007.
Schneider, et al.: “A comparison of canal preparations in straight and curved root canals,” Oral Surg Oral Med Oral Pathol 1971;32:271-5.
Schneider, et al.: “NIH Image to ImageJ: 25 years of image analysis,” Nat Methods 2012;9:671-5.
Seet, et al., An in-vitro Evaluation of the Effectiveness of Endodontic Irrigants, with and without Sonic and Laser Activation, in the Eradication of Enterococcus faecalis Biofilm.
Shaheed, et al., “Healing of Apical Periodontitis after Minimally Invasive Endodontics therapy using Er, Dr:YSGG laser: A Prospective Clinical Study,” Sys Rev Pharm 2020; 11(2): 135-140.
Shen, et al.: “Factors associated with the removal of fractured NiTi instruments from root canal systems,” Oral Surg Oral Med Oral Pathol Oral Radiol Endod 2004;98:605-10.
Shi et al; Comparison—speed liquid jets; Experiments in Fluids, vol. 35; pp. 486-492; Oct. 7, 2003.
Silva, et al., “Analysis of Permeability and Morphology of Root Canal Dentin After ER,Cr:YSGG Laser Irradiation,” Photomedicine and Laser Surgery vol. 28, No. 1, pp. 103-108, 2010.
Skyttner, “Endodontic instrument separations: evaluation of a patient cases series with separated endodontic instruments and factors related to the treatment regarding separated instruments [thesis],” Stockholm: Karolinska Institutet; 2007.
Sou et al; Effects of cavitation in a nozzle on liquid jet atomization; pp. 3575-3582; International Journal of Heat and Mass Transfer, vol. 50; Mar. 2007.
Souter, et al.: “Complications associated with fractured file removal using an ultrasonic technique,” J Endod 2005;31:450-2.
Soyama et al; High-Speed Observation of Ultrahigh-Speed Submerged Water Jets; pp. 411-416; Experimental Thermal and Fluid Science, vol. 12 1996).
Soyama, Hitoshi; High-Speed Observation of a Cavitating Jet in Air; Journal of Fluids Engineering, vol. 127; pp. 1095-1101; Nov. 2005.
Stamos et al., “Retreatodontics and ultrasonics”, Journal of Endodontics, vol. 14., No. 1, pp. 39-42, Jan. 1, 1988.
Stamos et al., “Use of ultrasonics in single-visit endodontic therapy,” Journal of Endodontics, vol. 13, No. 5, pp. 246-249, May 1, 1987.
Summers, David A; Considerations in the Comparison of Cavitating and Plain Water Jets; pp. 178-184; Rock Mechanics and Explosive Research Center, Rolla, Missouri, 1983.
Summers, David A; The Volume Factor in Cavitation Erosion; Proceedings of 6th International Conference on Erosion by Liquid and Solid Impact; University of Missouri-Rolla; Rolla, Missouri, 1983, in 12 pages.
Suslick, K. S., et al., “The Sonochemical Hot Spot”, Journal of the American Chemical Society, vol. 108, No. 18, Sep. 3, 1986, pp. 5641-5642.
Suslick, K. S., et al., “Heterogeneous Sonocatalysis with Nickel Powder”, Journal of the American Chemical Society, vol. 109, No. 11, May 27, 1987, pp. 3459-3461.
Suter, et al.: “Probability of removing fractured instruments from root canals,” Int Endod J 2005;38:112-23.
Tafreshi et al; Simulating Cavitation and Hydraulic Flip Inside Hydroentangling Nozzles; pp. 359-364; Textile Research Journal, vol. 74, Apr. 2004.
Tafreshi et al; Simulating the Flow Dynamics in Hydroentangling Nozzles: Effect of Cone Angle and Nozzle Aspect Ratio; pp. 700-704; Textile Research Journal, vol. 73; Aug. 2003.
Tafreshi et al; The effects of nozzle geometry on waterjet breakup at high Reynolds numbers; pp. 364-371; Experiments in Fluids, vol. 35; Sep. 2, 2003.
Takeda et al., “A comparative study of the removal smear layer by three endodontic irrigants and two types of laser,” International Endodontic Journal, 32, 32 39, 1999.
Takeda et al., “Comparative Study about the Removal of Smear Layer by Three Types of Laser Devices,” Journal of Clinical Laser Medicine & Surgery, vol. 16, No. 2, 1998 Mary Ann Liebert, Inc, pp. 117-122.
Terauchi, et al.: “Evaluation of the efficiency of a new file removal system in comparison with two conventional systems,” J. Endod 2007;33:585-8.
Schoop et al.: “The use of the erbium, chromium:yttrium-scandium-gallium-garnet laser in endodontic treatment: The results of an in vitro study,” The Journal of the American Dental Association: vol. 138, Issue 7, Jul. 2007, pp. 949-955.
Ward Jr.: “The use of an ultrasonic technique to remove a fractured rotary nickel-titanium instrument from the apical third of a curved root canal,” Aust Endod J 2003;29:25-30.
Wohlemuth et al.: “Effectiveness of GentleWave System in Removing Separated Instruments,” JOE, vol. 41, No. 11, Nov. 2015.
Yoldas, et al.: “Perforation risks associated with the use of Masserann endodontic kit drills in mandibular molars,” Oral Surg Oral Med Oral Pathol Oral Radiol Endod 2004;97:513-7.
Yu et al.: “Study on removal effects of filling materials and broken files from root canals using pulsed Nd:YAG laser,” J Clin Laser Med Surg 2000;18:23-8.
Zehnder, “Root Canal Irrigants”, Journal of Endodontics, vol. 32, No. 5, pp. 389-398, May 2006.
Zuo et al; An Attribution of Cavitation Resonance: Volumetric Oscillations of Cloud; pp. 152-158; Journal of Hydrodynamics, vol. 21; Apr. 2009.
European Extended Search Report, re EP Application No. 14765398.4, dated May 31, 2017.
European Supplemental Search Report, re EP Application No. 07837261.2, dated May 3, 2012.
International Search Report and Written Opinion, re PCT Application No. PCT/US07/18664, dated Sep. 23, 2008.
International Preliminary Report on Patentability, re PCT Application No. PCT/US07/18664, dated Feb. 24, 2009.
International Search Report and Written Opinion, re PCT Application No. PCT/US2014/030435, dated Aug. 28, 2014.
International Preliminary Report on Patentability, re PCT Application No. PCT/US2014/030435, dated Sep. 15, 2015.
International Preliminary Report on Patentability, re PCT Application No. PCT/IL2013/050330, dated Oct. 30, 2014.
International Preliminary Report on Patentability, re PCT Application No. PCT/IL2014/050924, dated May 6, 2016.
International Search Report and Written Opinion, re PCT Application No. PCT/IL2013/050330, dated Jul. 30, 2013.
International Search Report and Written Opinion, re PCT Application No. PCT/IL2014/050924, dated Mar. 19, 2015.
International Search Report and Written Opinion for PCT/US2021/053844, dated Mar. 11, 2022, in 22 pages.
Abad-Gallegos et al, “In vitro evaluation of the temperature increment at the external root surface after Er,Cr:YSGG laser irradiation of the root canal”, Med Oral Patol Oral Cir Bucal, vol. 14(12):658-662 (2009).
Abdelkarim-Elafifi et al., “Aerosols generation using Er,Cr:YSGG laser compared to rotary instruments in conservative dentistry: A preliminary study”, J Clin Exp Dent, vol. 13(1):e30-6 (2021).
Altundasar et al., “Ultramorphological and histochemical changes after ER,CR:YSGG laser irradiation and two different irrigation regimes”, Basic Research—Technology, vol. 32(5):465-468 (2006).
Arnabat et al., “Bactericidal activity of erbium, chromium: yttrium-scandium-gallium-garnet laser in root canals”, Lasers Med Sci vol. 25:805-810 (2010).
Aydin et al., “Efficacy of erbium, chromium-doped yttrium, scandium, gallium and garnet laser-activated irrigation compared with passive ultrasonic irrigation, conventional irrigation, and photodynamic therapy against enterococcus faecalis”, ResearchGate, https://www.researchgate.net/publication/338906248, Article in The Journal of Contemporary Dental Practice, Jan. 2020.
Beader et al., “Efficacy of three different lasers on eradication of enterococcus faecalis and candida albicans biofilms in root canal system”, ResearchGate, https://www.researchgate.net/publication/316287465, Article in Photomedicine and Laser Surgery, Apr. 2017.
Betancourt et al., “Er,Cr:YSGG laser-activated irrigation and passive ultrasonic irrigation: comparison of two strategies for root canal disinfection”, Photobiomodulation, Photomedicine, and Laser Surgery, vol. 383(2):91-97 (2020).
Betancourt et al., “ER/Cr:YSGG laser-activation enhances antimicrobial and antibiofilm action of low concentrations of sodium hypochlorite in root canals”, Antibiotics, vol. 8(232):1-10 (2019).
Bolhari et al., “Efficacy of Er,Cr:YSGG laser in removing smear layer and debris with two different output powers”, Photomedicine and Laser Surgery, vol. 32(10):527-532 (2014).
Cheng et al., “Evaluation of the bactericidal effect of Nd:YAG, Er:YAG, Er,Cr:YSGG laser radiation, and antimicrobial photodynamic therapy (aPDT) in experimentally infected root canals”, Lasers in Surgery and Medicine, vol. 44:824-831 (2012).
Christo et al., “Efficacy of low concentrations of sodium hypochlorite and low-powered Er,Cr:YSGG laser activated irrigation against an Enterococcus faecalis biofilm”, International Endodontic Journal, vol. 49:279-286 (2016).
De Moor et al., “Laser induced explosive vapor and cavitation resulting in effective irrigation of the root canal. Part 2: Evaluation of the efficacy”, Lasers in Surgery and Medicine, vol. 41:520-523 (2009).
De Moor et al., “Efficacy of ultrasonic versus laser-activated irrigation to remove artificially placed dentin debris plugs”, Basic Research Technology, JOE vol. 36(9):1580-1583 (2010).
Dewsnup et al., “Comparison of bacterial reduction in straight and curved canals using erbium, chromium:Yttrium-Scandium-Gallium-Garnet laser treatment versus a traditional irrigation technique with sodium hypochlorite”, Basich Research—Technology, JOE, vol. 36(4):725-728 (2010).
Erken, “Evaluation of apically extruded debris using two niti systems associated with two irrigation techniques in primary teeth”, ResearchGate, https://www.researchgate.net/publication/310465261, The Journal of Clinical Pediatric Dentistry, Nov. 2016.
George et al., “Laser activation of endodontic irrigants with improved conical laser fiber tips for removing smear layer in the apical third of the root canal”, Basic Research—Technology, JOE, vol. 34(12):1524-1521 (2008).
George et al., Apical extrusion of root canal irrigants when using Er:YAG and ER,Cr:YSGG lasers with optical fibers: An in vitro dye study, Basic Research—Technology, JOE, vol. 34(6):706-708 (2008).
Ishizaki et al., “Thermographical and morphological studies of Er,Cr:YSFF laser irradiation on root canal walls”, Photomedicine and Laser Surgery, vol. 22(4):291-297 (2004).
Kustarci et al., “Efficacy of laser activated irrigation on apically extruded debris with different preparation systems”, Photomedicine and Laser Surgery, vol. 33(7):384-389 (2015).
Licata et al., “Effectiveness of a new method of disinfecting the root canal, using Er,Cr:YSGG laser to kill Enterococcus faecaslis in an infected tooth model”, ResearchGate, https://www.researchgate.net/publication/255688995, Article in Lasers in Medical Science, Aug. 2013.
Lopes et al., “Evaluation of chemical and morphological changes in radicular dentin after different final surface treatments”, Micros. Res. Tech. vol. 81:973-979 (2018).
Martins et al., “Outcome of Er,Cr:YSGG laser-assisted treatment of teeth with apical periodontitis: A blind randomized clinical trial”, Photomedicine and Laser Surgery, vol. 32(1):3-9, (2014).
Martins et al., “Efficacy of Er,Cr:YSGG laser with endodontical radial firing tips on the outcome of endodontic treatment: blind randomized controlled clinical trial with six-month evaluation”, Lasers Med Sci vol. 28:1049-1055 (2013).
Matsuoka et al., “Morphological study of the Er,Cr:YSGG laser for root canal preparation in mandibular incisors with curved root canals”, Photomedicine and Laser Surgery, vol. 23(5):480-484 (2005).
Minas et al, “In vitro investigation of intra-canal dentine-laser beam interaction aspects: II. Evaluation of ablation zone extent and morphology”, Lasers Med Sci vol. 25:867-872 (2010).
Nasher et al., “Debris and smear layer removal in curved root canals using the dual wavelength Er,Cr:YSGG/Diode 940 nm laser and the XP_Endoshaper and finisher technique”, ResearchGate, https://www.researchgate.net/publication/338755431, Article in Photobiomodulation Photomedicine and Laser Surgery, Jan. 2020.
Nowazesh et al., “Efficacy of root canal preparation by Er,Cr:YSGG laser irradiation with crown-down technique in Vitro”, Photomedicine and Laser Surgery, vol. 23(2):196-201 (2005).
Peeters et al., “Efficacy of smear layer removal at the root tip by using ethylenediaminetetraacetic acid and erbium, chromium: Yttrium, candium, and gallium garnet laser”, Basic Research—Technology, JOE, vol. 37(11):1585-1589 (2011).
Peeters et al., “Extrusion of irrigant in open apex teeth with periapical lesions following laser-activated irrigation and passive ultrasonic irrigation”, Iranian Endodontic Journal, vol. 13(2):169-175 (2018).
Peeters et al., “Measurement of pressure changes during laser-activated irrigant by an erbium, chronium: yttrium, scandium, gallium, garnet laser”, Lasers in Medical Science, DOI 10.1007/s10103-014-1605-5, Received Jan. 23, 2014, Springer-Verlag London.
Peeters et al., “Radiographic examination of apical extrusion of root canal irrigants during cavitation induced by Er,Cr:YSGG laser irradiation: an in vivo study”, Clin Oral Invest vol. 17:2105-2112 (2013).
Race et al., “Efficacy of laser and ultrasonic-activated irrigation on eradicating a mixed-species biofilm in human mesial roots”, Australian Endodontic Journal, vol. 45:317-324 (2019).
Rahimi et al., “Comparison of the effect of Er,Cr-YSGG laser ultrasonic retrograde root-end cavity preparation on the integrity of root apices”, Journal of Oral Science, vol. 52(1):77-81 (2010).
Schoop et al., “The use of the erbium, chromium:yttrium-scandium-gallium-garnet laser in endodontic treatment”, JADA, vol. 138:949-955 (2007).
Sen et al., “Comparative safety of needle, EndoActivator, and laser-activated irrigation in overinstrumented root canals”, Photomedicine and Laser Surgery, vol. 36(4):198-202 (2018).
Sigma-Aldrich, Product Specification, 2-propanol SDS, Product No. 190764.
Soares et al., “Impact of Er,Cr:YSGG laser therapy on the cleanliness of the root canal walls of primary teeth”, Basic Research—Technology, JOE, vol. 34(4):474-477 (2008).
Tokuc et al., “The bactericidal effect of 2780 nm Er,Cr:YSGG laser combined with 940 nm diode laser in enterococcus faecalis elimination: A comparative study”, Photobiomodulation, hotomedicine, and Laser Surgery, vol. XX(XX):1-6 (2019).
Wang et al., “Evaluation of the bactericidal effect of Er,Cr:YSGG, and Nd:YAG lasers in experimentallyl infected root canals”, Basic Research—Biology, JOE, vol. 33(7):830-832 (2007).
Yamazaki et al., “Effects of erbium,chromium:YSGG laser irradiation on root canal walls: A scanning electron microscopic and thermographic study”, Journal of Endodontics, vol. 27(1):9-12 (2001).
European Search Report, re EP Application No. 13763534.8, dated Jun. 20, 2022.
International Search Report and Written Opinion for PCT/US2021/072194, dated Jan. 27, 2022, in 15 pages.
European Extended Search Report, EP Application No. 20176387.7, dated Nov. 10, 2020.
Extended European Search Report and Written Opinion for European Application No. 21175783.6, dated Dec. 13, 2013, in 8 pages.
Extended European Search Report for European Application No. 22167511.9, dated Aug. 11, 2022, in 8 pages.
European Search Report in application No. EP 21160099.4, dated Sep. 26, 2022.
Acharya Letter Re: PIPStek, LLC v. Biolase, Inc. (D. Del. Case No. 1:23-cv-00011-MN), dated Mar. 3, 2023 in 3 pages.
Acharya Letter, Exhibit A, in 34 pages, dated Mar. 3, 2023.
Acharya Letter, Exhibit B, in 15 pages, dated Mar. 3, 2023.
Acharya Letter, Exhibit C, Waterlase User Manual, in 50 pages. For purposes of examination, consider dated 2003.
Acharya Letter, Exhibit D, Waterlase User Manual, in 79 pages. For purposes of examination, consider dated 2004.
Acharya Letter, Exhibit E, Endolase Instructions for Use, in 2 pages. For purposes of examination, consider dated 2002.
Acharya Letter, Exhibit F, Fax Boutoussov to De Vito [sic], in 2 pages. For purposes of examination, consider dated May 26, 2004.
Acharya Letter, Exhibit G, Fax Boutoussov to DiVito, in 1 page. For purposes of examination, consider dated Jun. 8, 2004.
Acharya Letter, Exhibit H, Biolase Accessories Overview, in 39 pages. For purposes of examination, consider dated Jan. 2004.
Acharya Letter, Exhibit I, Rocky Mountain Symposium, in 1 page. For purposes of examination, consider dated 2004.
Correspondence DiVito to Boutoussov, in 3 pages. For purposes of examination, consider dated May 28, 2004.
Fax Boutoussov to De Vito [sic], in 1 page. For purposes of examination, consider dated Nov. 24, 2004.
Related Publications (1)
Number Date Country
20220409278 A1 Dec 2022 US
Provisional Applications (2)
Number Date Country
60840282 Aug 2006 US
60840282 Aug 2006 US
Continuations (4)
Number Date Country
Parent 17317744 May 2021 US
Child 17898340 US
Parent 14537742 Nov 2014 US
Child 17317744 US
Parent 13633096 Oct 2012 US
Child 14077880 US
Parent 12875565 Sep 2010 US
Child 13633096 US
Continuation in Parts (6)
Number Date Country
Parent 14077880 Nov 2013 US
Child 14537742 US
Parent 12395643 Feb 2009 US
Child 12875565 US
Parent 11895404 Aug 2007 US
Child 12395643 US
Parent 11895404 Aug 2007 US
Child 12875565 US
Parent 11704655 Feb 2007 US
Child 11895404 US
Parent 11704655 Feb 2007 US
Child 12395643 US