Zinc-complex photoinitiators and applications therefor

Information

  • Patent Grant
  • 6486227
  • Patent Number
    6,486,227
  • Date Filed
    Tuesday, June 19, 2001
    23 years ago
  • Date Issued
    Tuesday, November 26, 2002
    22 years ago
Abstract
The present invention is directed to energy-efficient, photoinitiators having the general formula: wherein Z each independently represent wherein R1, R2, R3, R4, R5, R6, R7, R8 are as defined in claim 1, and wherein R9 represents (R10)2O or (R10)3N; wherein R10 represents H or an alkyl group having from one to eight carbon atoms; and wherein R11 represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group. The present invention is also directed to a method of generating a reactive species, methods of polymerizing polymerizable materials, methods of curing an unsaturated oligomer/monomer mixture, and methods of laminating using the photoinitiators of the present invention. In addition, the present invention is directed to ink compositions, adhesive compositions and resins, and methods of printing using the above-described photoinitiators.
Description




TECHNICAL FIELD




The present invention relates to novel photoinitiators and methods for generating a reactive species using the photoinitiators. The present invention further relates to methods of polymerizing or photocuring polymerizable material using the above-mentioned photoinitiators. The photoinitiators of the present invention find particular utility in photocurable inks as used in ink jet printers or on a printing press with and without nitrogen blanketing.




BACKGROUND OF THE INVENTION




Polymers have served essential needs in society. For many years, these needs were filled by natural polymers. More recently, synthetic polymers have played an increasingly greater role, particularly since the beginning of the 20th century. Especially useful polymers are those prepared by an addition polymerization mechanism, i.e., free radical chain polymerization of unsaturated monomers, and include, by way of example only, coatings and adhesives. In fact, the majority of commercially significant processes are based on free-radical chemistry. That is, chain polymerization is initiated by a reactive species, which often is a free radical. The source of the free radicals is termed an initiator or photoinitiator.




Improvements in free radical chain polymerization have focused both on (1) more reactive monomer and pre-polymer materials and (2) the photoinitiator. Whether a particular unsaturated monomer can be converted to a polymer requires structural, thermodynamic, and kinetic feasibility. Even when all three exist, kinetic feasibility is achieved in many cases only with a specific type of photoinitiator. Moreover, the photoinitiator can have a significant effect on reaction rate which, in turn, may determine the commercial success or failure of a particular polymerization process or product.




A free radical-generating photoinitiator may generate free radicals in several different ways. For example, the thermal, homolytic dissociation of an initiator typically directly yields two free radicals per initiator molecule. A photoinitiator, i.e., an initiator which absorbs light energy, may produce free radicals by one of three pathways:




(1) the photoinitiator undergoes excitation by energy absorption with subsequent decomposition into one or more radicals;




(2) the photoinitiator undergoes excitation and the excited species interacts with a second compound (by either energy transfer or a redox reaction) to form free radicals from the latter and/or former compound(s); or




(3) the photoinitiator undergoes an electron transfer to produce a radical cation and a radical anion.




While any free radical chain polymerization process should avoid the presence of species which may prematurely terminate the polymerization reaction, prior photoinitiators present special problems. For example, absorption of the light by the reaction medium may limit the amount of energy available for absorption by the photoinitiator. Also, the often competitive and complex kinetics involved may have an adverse effect on the reaction rate. Moreover, some commercially available radiation sources, such as medium and high pressure mercury and xenon lamps, may emit over a wide wavelength range, thus producing individual emission bands of relatively low intensity. Many photoinitiators only absorb over a small portion of the emission spectra and, as a consequence, much of the lamps' radiation remains unused. In addition, most known photoinitiators have only moderate “quantum yields” (generally less than 0.4) at these wavelengths, indicating that the conversion of light radiation to radical formation can be more efficient.




Many commercially available photoinitiators, including IRGACURE® 369, are presently used in ink compositions to accelerate ink drying in “radiation-drying printing.” As used herein, the term “radiation-drying printing” refers to any printing method which utilizes radiation as a drying means. Radiation-drying printing includes, for example, off-set printing operations, such as on a Heidelberg press, flexographic printing, and flat-bed printing. Commercially available photoinitiator systems have a number of shortcomings. First, most of the commercially available photoinitiator systems require a relatively large amount of photoinitiator in the ink composition to fully cure/dry the ink composition. This leads to undesirable extractables within the ink composition. Second, most of the commercially available photoinitiator systems require a high energy radiation source to induce photocuring. Moreover, even with the high energy radiation source, often the cure results are unsatisfactory. Third, many commercially available photoinitiator systems are highly reactive to oxygen and must be used under a nitrogen blanket. Fourth, even with a large amount of photoinitiator and a high energy light source, the commercially available photoinitiator systems require a dry/cure time only accomplished by multiple passes, as many as 15 passes, under a light source, which significantly limits the output of a radiation-drying printing press.




What is needed in the art is a new class of energy-efficient photoinitiators having unsurpassed photoreactivity even when exposed to a low energy light source, such as a 50 W excimer cold lamp. What is also needed in the art is a new class of energy-efficient photoinitiators that may be cured in air, as well as, a nitrogen atmosphere. Further, what is needed in the art is a class of photoinitiators having unsurpassed photoreactivity, for use in the radiation-drying printing industry, which will significantly increase the output of a radiation-drying printing press due to reduction in ink drying/curing time.




SUMMARY OF THE INVENTION




The present invention addresses some of the difficulties and problems discussed above by the discovery of energy-efficient photoinitiators having the following general formula:











wherein Z each independently represents











wherein R


1


, R


2


, R


3


and R


4


each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R


5


, R


6


, R


7


and R


8


each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R


9


represents (R


10


)


2


O or (R


10


)


3


N; wherein R


10


represents H or an alkyl group having from one to eight carbon atoms; and wherein R


11


, represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group. By selecting particular “R” groups, photoinitiators are produced having a desired absorption maximum, which substantially corresponds to an emission band of a radiation source and selectively varies from less than about 290 nm to greater than about 350 nm.




The present invention is directed to the above-described photoinitiators, compositions containing the same, and methods for generating a reactive species which includes providing one or more of the photoinitiators and irradiating the one or more photoinitiators. One of the main advantages of the photoinitiators of the present invention is that they efficiently generate one or more reactive species under extremely low energy lamps, such as excimer lamps and mercury lamps, as compared to prior art photoinitiators. The photoinitiators of the present invention also efficiently generate one or more reactive species in air or in a nitrogen atmosphere. Unlike many prior photoinitiators, the photoinitiators of the present invention are not sensitive to oxygen. Further, the photoinitiators of the present invention are as much as ten times faster than the best prior art photoinitiators.




The present invention is further directed to a method of efficiently generating a reactive species by matching a photoinitiator having an absorption maximum to an emission band of a radiation source, which corresponds to the absorption maximum. By adjusting the substituents of the photoinitiator, one can shift the absorption maximum of the photoinitiator from less than about 290 nm to greater than about 350 nm.




The present invention is also directed to methods of using the above-described photoinitiators to polymerize and/or photocure a polymerizable material. The photoinitiators of the present invention result in rapid curing times in comparison to the curing times of prior art photoinitiators, even with relatively low output lamps. The present invention includes a method of polymerizing a polymerizable material by exposing the polymerizable material to radiation in the presence of the efficacious wavelength specific photoinitiator composition described above. When an unsaturated oligomer/monomer mixture is employed, curing is accomplished.




The present invention further includes a film and a method for producing a film, by drawing an admixture of polymerizable material and one or more photoinitiators of the present invention, into a film and irradiating the film with an amount of radiation sufficient to polymerize the composition. The admixture may be drawn into a film on a nonwoven web or on a fiber, thereby providing a polymer-coated nonwoven web or fiber, and a method for producing the same.




The present invention is also directed to an adhesive composition comprising a polymerizable material admixed with one or more photoinitiators of the present invention. Similarly, the present invention includes a laminated structure comprising at least two layers bonded together with the above-described adhesive composition, in which at least one layer is a nonwoven web or film. Accordingly, the present invention provides a method of laminating a structure wherein a structure having at least two layers with the above-described adhesive composition between the layers is irradiated to polymerize the adhesive composition.




The present invention is further directed to a method of printing, wherein the method comprises incorporating one or more photoinitiators of the present invention into an ink composition; printing the ink onto a substrate; and drying the ink with a source of radiation.




These and other features and advantages of the present invention will become apparent after a review of the following detailed description of the disclosed embodiments and the appended claims.




DETAILED DESCRIPTION OF THE INVENTION




The present invention is directed to energy-efficient, reactive, photoinitiators and methods for utilizing the same. More particularly, the present invention is directed to new photoinitiators having the following general formula:











wherein Z each independently represents











wherein R


1


, R


2


, R


3


and R


4


each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R


5


, R


6


, R


7


and R


8


each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R


9


represents (R


10


)


2


O or (R


10


)


3


N; wherein R


10


represents H or an alkyl group having from one to eight carbon atoms; and wherein R


11


, represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group.




The present invention is further directed to a method of efficiently generating a reactive species by matching a photoinitiator having an absorption maximum to an emission band of a radiation source, which corresponds to the absorption maximum. The present invention also includes a method of polymerizing a polymerizable material by exposing the polymerizable material to electromagnetic radiation in the presence of one or more of the photoinitiators described above. Further, the present invention is directed to a film and a method for producing a film, by drawing an admixture of polymerizable material and one or more of the photoinitiators described above, into a film and irradiating the film with an amount of electromagnetic radiation sufficient to polymerize the admixture.




The present invention is further directed to an adhesive composition comprising a polymerizable material admixed and one or more photoinitiators of the present invention. Similarly, the present invention includes a laminated structure comprising at least two layers bonded together with the above-described adhesive composition. The present invention further provides a method of laminating a structure wherein a structure having at least two layers with the above-described adhesive composition between the layers is irradiated with appropriate electromagnetic radiation to polymerize the adhesive composition.




Definitions




As used herein, the term “reactive species” is used herein to mean any chemically reactive species including, but not limited to, free-radicals, cations, anions, nitrenes, and carbenes. Illustrated below are examples of several of such species. Examples of carbenes include, for example, methylene or carbene, dichlorocarbene, diphenylcarbene, alkylcarbonyl-carbenes, siloxycarbenes, and dicarbenes. Examples of nitrenes include, also by way of example, nitrene, alkyl nitrenes, and aryl nitrenes. Cations (sometimes referred to as carbocations or carbonium ions) include, by way of illustration, a proton; primary, secondary, and tertiary alkyl carbocations, such as methyl cation, ethyl cation, propyl cation, t-butyl cation, t-pentyl cation, t-hexyl cation; allylic cations; benzylic cations; aryl cations, such as triphenyl cation; cyclopropylmethyl cations; methoxymethyl cation; triarylsulphonium cations; and acyl cations. Cations also include those formed from various metal salts, such as tetra-n-butylammonium tetrahaloaurate(III) salts; sodium tetrachloroaurate(III); vanadium tetrachloride; and silver, copper(I) and (II), and thallium(I) triflates. Examples of anions (sometimes referred to as carbanions) include, by way of example, alkyl anions, such as ethyl anion, n-propyl anion, isobutyl anion, and neopentyl anion; cycloalkyl anions, such as cyclopropyl anion, cyclobutyl anion, and cyclopentyl anion; allylic anions; benzylic anions; aryl cations; and sulfur- or phosphorus-containing alkyl anions. Finally, examples of organometallic photoinitiators include titanocenes, fluorinated diaryltitanocenes, iron arene complexes, manganese decacarbonyl, and methylcyclopentadienyl manganese tricarbonyl. Organometallic photoinitiators generally produce free radicals or cations.




As used herein, the term “quantum yield” is used herein to indicate the efficiency of a photochemical process. More particularly quantum yield is a measure of the probability that a particular molecule will absorb a quantum of light during its interaction with a photon. The term expresses the number of photochemical events per photon absorbed. Thus, quantum yields may vary from zero (no absorption) to 1.




As used herein, the term “polymerization” is used herein to mean the combining, e.g. covalent bonding, of a number of smaller molecules, such as monomers, to form large molecules, i.e., macromolecules or polymers. The monomers may be combined to form only linear macromolecules or they may be combined to form three-dimensional macromolecules, commonly referred to as crosslinked polymers.




As used herein, the term “curing” means the polymerization of functional oligomers and monomers, or even polymers, into a crosslinked polymer network. Thus, curing is the polymerization of unsaturated monomers or oligomers in the presence of crosslinking agents.




As used herein, the terms “unsaturated monomer,” “functional oligomer,” and “crosslinking agent” are used herein with their usual meanings and are well understood by those having ordinary skill in the art. The singular form of each is intended to include both the singular and the plural, i.e., one or more of each respective material.




As used herein, the term “unsaturated polymerizable material” is meant to include any unsaturated material capable of undergoing polymerization. The term encompasses unsaturated monomers, oligomers, and crosslinking agents. Again, the singular form of the term is intended to include both the singular and the plural.




As used herein, the term “fiber” as used herein denotes a threadlike structure. The fibers used in the present invention may be any fibers known in the art. As used herein, the term “nonwoven web” as used herein denotes a web-like matter comprised of one or more overlapping or interconnected fibers in a nonwoven manner. It is to be understood that any nonwoven fibers known in the art may be used in the present invention.




Photoinitiators




The present invention is directed to new photoinitiators having the following general formula:











wherein Z each independently represents











wherein R


1


, R


2


, R


3


and R


4


each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R


5


, R


6


, R


7


and R


8


each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R


9


represents (R


10


)


2


O or (R


10


)


3


N; wherein R


10


represents H or an alkyl group having from one to eight carbon atoms; and wherein R


11


, represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group.




Photoinitiators having the above formula include, but are not limited to, the following photoinitiators:











wherein R


5


, R


6


, R


7


, R


8


and R


9


are as described above.




The photoinitiators of the present invention may be associated with a variety of counterions. Suitable counterions possess a negative charge distribution, which is spread over a large anion, resulting in a diffused charge rather than a point charge. Examples of suitable counterions include, but are not limited to, tetraphenylboron, tetrachloroboron, tetrafluoroboron, hexafluorophosphate, and perchlorate. Desirably, the counterion comprises tetraphenylboron or tetrafluoroboron. More desirably, the counterion comprises tetrafluoroboron.




In one embodiment of the present invention, a photoinitiator system comprises the following photoinitiator and counterions:











The above-described photoinitiators of the present invention may be produced by the following reaction mechanism, shown for when R


11


is hydrogen and Z is NC


4


H


4


O:











wherein one or more compounds react with the Zn-containing compound or complex to produce a photoinitiator of the present invention and one or more anions (X





). Suitable Zn-containing compounds or complexes include, but are not limited to, Zn(OEt


2


)


2


Cl


2


, Zn(H


2


O)


6


(BF


4


)


2


, and Zn(H


2


O)


6


(BPh


4


)


2


. In the above mechanism, the use of a particular Zn-containing compound or complex results in a particular R


9


group and anions as shown in the table below:




















Zn-containing









Compound or




Resulting R


9









Complex




Group




Resulting Anions













Zn(OEt


2


)


2


Cl


2






OEt


2






Cl












Zn(H


2


O)


6


(BF


4


)


2






H


2


O




BF


4














Zn(H


2


O)


6


(BPh


4


)


2






H


2


O




BPh


4






















It should be understood that the above examples of suitable photoinitiators are only a few of the possible photoinitiators encompassed by the present invention. Any combination of photoinitiator having selected “R” groups and any of the above-mentioned counterions may be used in combination to form a photoinitiator system of the present invention. Further, the above reaction mechanism is only one example of many possible reaction mechanisms, which may include a variety of reactants, resulting in the photoinitiators of the present invention.




The resulting photoinitiators are relatively stable at room temperature (from about 15° C. to 25° C.) and normal room humidity (from about 5% to 60%; desirably from 5% to 30%). However, upon exposure to radiation at an appropriate wavelength, the photoinitiators efficiently produce one or more reactive species. The photoinitiators of the present invention have a high intensity of absorption. For example, the photoinitiators of the present invention have a molar extinction coefficient (absorptivity) greater than about 20,000 1 mole


−1


cm


−1


. As a further example, the photoinitiators of the present invention have a molar extinction coefficient greater than about 25,000 1 mole


−1


cm


−1


.




Method of Generating a Reactive Species and Applications Therefor




The present invention is further directed to a method of generating a reactive species. The method of generating a reactive species involves generating a reactive species by exposing one or more of the above-described photoinitiators to radiation. The exposure of the photoinitiators to a radiation source triggers a photochemical process. As stated above, the term “quantum yield” is used herein to indicate the efficiency of a photochemical process. More particularly, quantum yield is a measure of the probability that a particular molecule (photoinitiator) will absorb a quantum of light during its interaction with a photon. The term expresses the number of photochemical events per photon absorbed. Thus, quantum yields may vary from zero (no absorption) to 1.




The photoinitiators of the present invention absorb photons having a relatively specific wavelength and transfers the absorbed energy to one or more excitable portions of the molecule. The excitable portion of the molecule absorbs enough energy to cause a bond breakage, which generates one or more reactive species. The efficiency with which a reactive species is generated with the photoinitiators of the present invention is significantly greater than that experienced with photoinitiators of the prior art as indicated by faster cure times. For example, the photoinitiators of the present invention desirably will have a quantum yield greater than about 0.8. More desirably, the quantum yield of the photoinitiators of the present invention will be greater than about 0.9. Even more desirably, the quantum yield of the photoinitiators of the present invention will be greater than about 0.95. Still more desirably, the quantum yield of the photoinitiators of the present invention will be greater than about 0.99, with the most desirable quantum yield being about 10.




In one embodiment of the present invention, the photoinitiators of the present invention are exposed to radiation at a desired wavelength, resulting in the generation of one or more reactive species, wherein an electron-donating solvent is used to generate one or more reactive species. Any solvent capable of donating an electron to the photoinitiators of the present invention may be used to generate one or more reactive species. Suitable electron-donating solvents include, but are not limited to, acrylates, methacylates, vinyl esters, enamines, and a combination thereof. Desirably, the electron-donating solvent comprises acrylic acid.




It is believed that the interaction between the photoinitiator of the present invention and the electron-donating solvent takes place as shown by the following reaction mechanism:




Donation of Electron











As shown above, donation of an electron from the electron-donating solvent generates a cationic free radical.




Electron Interaction With Photoinitiator:











The introduction of the electron into the structure of the photoinitiator results in the formation of a carbon-carbon double bond and cleavage of the carbon-nitrogen bond. The end result is a nitrogen-containing free radical.




The above mechanism generates a combination of free radicals, one of which is a cationic free radical and one of which is nitrogen radical species. In conventional electron transfer systems, an initiator generates a radical cation, which starts the polymerization process, and a radical anion, which is a chain terminator (i.e., stops polymerization). However, the method of generating a reactive species of the present invention generates a radical cation and a nitrogen radical species, both of which start the polymerization process, and neither of which act as a chain terminator (i.e., stop polymerization).




Exposing the photoinitiators of the present invention to radiation results in the generation of one or more reactive species as discussed above. Thus, the photoinitiators may be employed in any situation where reactive species are required, such as for the polymerization of an unsaturated monomer and the curing of an unsaturated oligomer/monomer mixture. The unsaturated monomers and oligomers may be any of those known to one having ordinary skill in the art. In addition, the polymerization and curing media also may contain other materials as desired, such as pigments, extenders, amine synergists, and such other additives as are well known to those having ordinary skill in the art.




By way of illustration only, examples of unsaturated monomers and oligomers include ethylene, propylene, vinyl chloride, isobutylene, styrene, isoprene, acrylonitrile, acrylic acid, methacylic acid, ethyl acrylate, methyl methacrylate, vinyl acrylate, allyl methacrylate, tripropylene glycol diacrylate, trimethylol propane ethoxylate acrylate, epoxy acrylates, such as the reaction product of a bisphenol A epoxide with acrylic acid; polyether acrylates, such as the reaction product of acrylic acid with an adipic acid/hexanediol-based polyether, urethane acrylates, such as the reaction product of hydroxypropyl acrylate with diphenylmethane-4,4′-diisocyanate, and polybutadiene diacrylate oligomer.




The types of reactions that various reactive species enter into include, but are not limited to, addition reactions, including polymerization reactions; abstraction reactions; rearrangement reactions; elimination reactions, including decarboxylation reactions; oxidation-reduction (redox) reactions; substitution reactions; and conjugation/deconjugation reactions.




Accordingly, the present invention also comprehends a method of polymerizing a polymerizable material, such as an unsaturated monomer or epoxy compound, by exposing the polymerizable material to radiation in the presence of the effacious photoinitiators of the present invention described herein. When an unsaturated oligomer/monomer mixture is employed in place of an unsaturated monomer, curing is accomplished. It is to be understood that the polymerizable material admixed with the photoinitiators of the present invention is to be admixed by means known in the art, and that the mixture will be irradiated with an amount of radiation sufficient to polymerize the material. The amount of radiation sufficient to polymerize the material is readily determinable by one of ordinary skill in the art, and depends upon the identity and amount of photoinitiators, the identity and amount of the polymerizable material, the intensity and wavelength of the radiation, and the duration of exposure to the radiation.




Polymer Films, Coated Fibers and Webs, and Adhesive Compositions




The present invention further includes a film and a method for producing a film, by drawing an admixture of a polymerizable material and one or more photoinitiators of the present invention, into a film and irradiating the film with an amount of radiation sufficient to polymerize the composition. When the polymerizable material is an unsaturated oligomer/monomer mixture, curing is accomplished. Any film thickness may be produced, as per the thickness of the admixture formed, so long as the admixture sufficiently polymerizes upon exposure to radiation. The admixture may be drawn into a film on a nonwoven web or on a fiber, thereby providing a polymer-coated nonwoven web or fiber, and a method for producing the same. Any method known in the art of drawing the admixture into a film may be used in the present invention. The amount of radiation sufficient to polymerize the material is readily determinable by one of ordinary skill in the art, and depends upon the identity and amount of photoinitiator, the identity and amount of the polymerizable material, the thickness of the admixture, the intensity and wavelength of the radiation, and duration of exposure to the radiation.




The present invention is further directed to coatings comprising a polymerizable material admixed with one or more photoinitiators of the present invention. The coatings may be applied to a substrate and then exposed to an amount of radiation sufficient to polymerize the polymerizable material of the coating. Any substrate may be used in the practice of the present invention. Particular applications of interest include, but are not limited to, coatings on textiles, coatings on fabrics, coatings on textile fibers, and coatings on optical fibers.




The present invention also includes an adhesive composition comprising a polymerizable material admixed with one or more photoinitiators of the present invention. Similarly, the present invention includes a laminated structure comprising at least two layers bonded together with the above-described adhesive composition. In one embodiment of the present invention, a laminate is produced wherein at least one layer is a cellulosic or polyolefin nonwoven web or film. Accordingly, the present invention provides a method of laminating a structure wherein a structure having at least two layers with the above-described adhesive composition between the layers is irradiated to polymerize the adhesive composition. When the unsaturated polymerizable material in the adhesive is an unsaturated oligomer/monomer mixture, the adhesive is irradiated to cure the composition.




It is to be understood that any layers may be used in the laminates of the present invention, on the condition that at least one of the layers allows sufficient radiation to penetrate through the layer to enable the admixture to polymerize sufficiently. Accordingly, any cellulosic or polyolefin nonwoven web or film known in the art may be used as one of the layers so long as they allow radiation to pass through. Again, the amount of radiation sufficient to polymerize the admixture is readily determinable by one of ordinary skill in the art, and depends upon the identity and amount of photoinitiator, the identity and amount of the polymerizable material, the thickness of the admixture, the identity and thickness of the layer, the intensity and wavelength of the radiation, and the duration of exposure to the radiation.




The radiation to which the photoinitiators of the present invention may be exposed generally will have a wavelength of from about 4 to about 1,000 nanometers. Thus, the radiation may be ultraviolet radiation, including near ultraviolet and far or vacuum ultraviolet radiation; visible radiation; and near infrared radiation. Desirably, the radiation will have a wavelength of from about 100 to about 900 nanometers. More desirably, the radiation will have a wavelength of from about 100 to 700 nanometers. Desirably, the radiation will be ultraviolet radiation having a wavelength of from about 4 to about 400 nanometers. More desirably, the radiation will have a wavelength of from about 100 to about 420 nanometers, and even more desirably will have a wavelength of from 290 to about 320 nanometers. The radiation desirably will be incoherent, pulsed ultraviolet radiation from a dielectric barrier discharge excimer lamp or radiation from a mercury lamp.




Excimers are unstable excited-state molecular complexes which occur only under extreme conditions, such as those temporarily existing in special types of gas discharge. Typical examples are the molecular bonds between two rare gaseous atoms or between a rare gas atom and a halogen atom. Excimer complexes dissociate within less than a microsecond and, while they are dissociating, release their binding energy in the form of ultraviolet radiation. The dielectric barrier excimers in general emit in the range of from about 125 nm to about 500 nm, depending upon the excimer gas mixture.




Dielectric barrier discharge excimer lamps (also referred to hereinafter as “excimer lamp”) are described, for example, by U. Kogelschatz, “Silent discharges for the generation of ultraviolet and vacuum ultraviolet excimer radiation.” Pure & Appl. Chem., 62, No. 9, pp. 16671674 (1990); and E. Eliasson and U. Kogelschatz, “UV Excimer Radiation from Dielectric- Barrier Discharges.” Appl. Phys. B. 46, pp. 299-303 (1988). Excimer lamps were developed by ABB Infocom Ltd., Lenzburg, Switzerland, and at the present time are available from Heraeus Noblelight GmbH, Kleinostheim, Germany.




The excimer lamp emits incoherent, pulsed ultraviolet radiation. Such radiation has a relatively narrow bandwidth, i.e., the half width is of the order of approximately 5 to 100 nanometers. Desirably, the radiation will have a half width of the order of approximately 5 to 50 nanometers, and more desirably will have a half width of the order of 5 to 25 nanometers. Most desirably, the half width will be of the order of approximately 5 to 15 nanometers.




The ultraviolet radiation emitted from an excimer lamp can be emitted in a plurality of wavelengths, wherein one or more of the wavelengths within the band are emitted at a maximum intensity. Accordingly, a plot of the wavelengths in the band against the intensity for each wavelength in the band produces a bell curve. The “half width” of the range of ultraviolet radiation emitted by an excimer lamp is defined as the width of the bell curve at 50% of the maximum height of the bell curve.




The emitted radiation of an excimer lamp is incoherent and pulsed, the frequency of the pulses being dependent upon the frequency of the alternating current power supply which typically is in the range of from about 20 to about 300 kHz. An excimer lamp typically is identified or referred to by the wavelength at which the maximum intensity of the radiation occurs, which convention is followed throughout this specification and the claims. Thus, in comparison with most other commercially useful sources of ultraviolet radiation which typically emit over the entire ultraviolet spectrum and even into the visible region, excimer lamp radiation is essentially monochromatic.




Although excimer lamps are highly desirable for use in the present invention, the source of radiation used with the photoinitiators of the present invention may be any radiation source known to those of ordinary skill in the art. In a further embodiment of the present invention, a mercury lamp with a D-bulb, which produces radiation having an emission peak of about 360 nm is used to produce free radicals from the above-described photoinitiators. This radiation source is particularly useful when matched with one or more photoinitiators of the present invention having an absorption maximum of about 360 nanometers, corresponding to the emission peak of the mercury lamp. Other specialty doped lamps, which emit radiation at about 420 nm, may be used with photoinitiators of the present invention which have an absorption maximum at about 420 nm. One lamp, the V-bulb available from Fusion Systems, is another suitable lamp for use in the present invention. In addition, specialty lamps having a specific emission band may be manufactured for use with one or more specific photoinitiators of the present invention. New lamp technology provides the following potential advantages:




(a) substantially single wavelength output;




(b) unique wavelength output;




(c) high intensity; and




(d) absence of radiation trapping.




As a result of the photoinitiators of the present invention absorbing radiation in the range of about 250 to about 390 nanometers, some of the photoinitiators of the present invention will generate one or more reactive species upon exposure to sunlight. Accordingly, these photoinitiators of the present invention provides a method for the generation of reactive species that does not require the presence of a special light source.




The photoinitiators of the present invention enable the production of adhesive and coating compositions that consumers can apply to a desired object and polymerize or cure upon exposure to sunlight. These photoinitiators also enable numerous industry applications wherein polymerizable materials may be polymerized merely upon exposure to sunlight. Therefore, depending upon how the photoinitiator is designed, the photoinitiator of the present invention can eliminate the cost of purchasing and maintaining light sources in numerous industries wherein such light sources are necessary without the photoinitiators of the present invention.




The effective tuning of the photoinitiators of the present invention for a specific wavelength band permits the photoinitiators of the present invention to more efficiently utilize the target radiation in the emission spectrum of the radiating source corresponding to the “tuned” wavelength band, even though the intensity of such radiation may be much lower than, for example, radiation from a narrow band emitter, such as an excimer lamp. For example, it may be desirable to utilize an excimer lamp, or other radiation emission source, that emits radiation having a wavelength of approximately 360 nm or 420 nm with the photoinitiators of the present invention. However, the effectiveness of the photoinitiators of the present invention is not necessarily dependent upon the availability or use of a narrow wavelength band radiation source.




Use of the Above-Described Photoinitiators in an Ink Composition




The above-described photoinitiators of the present invention may be incorporated into ink compositions. In one embodiment of the present invention, one or more of the photoinitiators are incorporated into an ink jet ink composition for use on ink jet ink printers. The ink composition may be used on commercially available ink jet printing machines alone or in combination with a radiation source in series with the ink jet printing machine for instantaneous curing of the ink jet ink composition. Any radiation source known to those of ordinary skill in the art may be used to cure the ink jet ink composition. Desirably, one of the above-described radiation sources is used to cure the ink composition.




Use of the Above-Described Photoinitiators in Other Radiation-Drying Printing Process




A further use of the above-described photoinitiators of the present invention involves the incorporation of one or more of the photoinitiators into an ink composition for use on a radiation-drying printing press. As discussed above, “radiation-drying printing” refers to any printing method which utilizes radiation as a drying means. Radiation-drying printing includes, for example, off-set printing operations, such as on a Heidelberg press, flexographic printing, and flat-bed printing.




The photoinitiators of the present invention enable increased press output due to the photoreactivity of the photoinitiators. Further, the increased output may be obtained while using a minimal amount of photoinitiator and a low energy light source. In one embodiment of the present invention, complete curing at an output rate of 10,000 printed sheets per hour may be obtained using a 50 W cold lamp as the light source.




Any of the above-described photoinitiators may be used in the printing processes disclosed herein. Desirably, the amount of photoinitiator added to the ink composition, adhesive composition or resin is less than about 4.0 wt % of the total weight of the composition. More desirably, the amount of photoinitiator added to the composition is from about 0.25 to about 3.0 wt % of the total weight of the composition. Most desirably, the amount of photoinitiator added to the composition is from about 0.25 to about 2.0 wt % of the total weight of the composition.




A major advantage of the photoinitiators of the present invention is that they enable rapid curing times of ink compositions, adhesive compositions and/or resins in comparison to the curing times of prior art photoinitiators. Ink compositions containing the photoinitiators of the present invention possess rapid curing times from 5-10 times faster than the curing times of ink compositions containing the best known photoinitiators. The use of the photoinitiators of the present invention in ink compositions, adhesive compositions or resins for printing presses enables print speeds, which were at one time thought to be unobtainable. For example, in an open air printing process using a Heidelberg print press and a 50 W excimer cold lamp for photocuring, desirably the printed sheet output is greater than 6,000 sheets per hour. More desirably, the printed sheet output is greater than 8,000 sheets per hour. Most desirably, the printed sheet output is greater than 10,000 sheets per hour.











The present invention is further described by the examples which follow. Such examples, however, are not to be construed as limiting in any way either the spirit or the scope of the present invention. In the examples, all parts are by weight, unless stated otherwise.




EXAMPLE 1




Method of Forming a 1-(p-fluorophenyl)-2-bromo-propan-1-one Intermediate to a Photoinitiator of the Present Invention




The following reaction was carried out as detailed below:











Into a three-necked round-bottom flask was placed 10.0 g (0.07 mole) of K


2


CO


3


in 150 ml of carbon tetrachloride with stirrer bar. The mixture was cooled to about 0° C. Into the flask was added 40.0 g (0.28 mole) of 1-(p-fluorophenyl)propan-1-one. Bromine was slowly added to the mixture over a period of about 30 minutes. The temperature of the mixture was allowed to rise to room temperature over a period of about 60 minutes.




The reaction mixture was filtered and the solvent was removed under reduced pressure on a rotovaporator. The final product was used without further purification.




EXAMPLE 2




Method of Forming a 1-(p-fluorophenyl)-2-bromo-2-methyl-propan-1-one Intermediate to a Photoinitiator of the Present Invention




The following reaction was carried out as detailed below:











Into a three-necked round-bottom flask was placed 200 ml of acetonitrile with stirrer bar. Into the flask was added 50.0 g (0.22 mole) of 1-(p-fluorophenyl)-2-bromo-propan-1-one from Example 1 and 31.2 g (0.22 mole) of methyl iodine while stirring at room temperature. The mixture was stirred for about 12 hours. The solvent was reduced by half and 17.6 g (0.44 mole) of NaOH was added to the mixture. The mixture was heated to a range of about 50 to 60° C. for a period of about 30 minutes. After cooling, 200 ml. of water was added to the mixture. The mixture was then extracted with ether (2×70 ml.), dried over MgSO


4


, and filtered. The solvent was then removed to yield a product, which was used without further purification.




EXAMPLE 3




Method of Forming a 1-(p-fluorophenyl)-2-amino-2-methyl-propan-1-one Intermediate to a Photoinitiator of the Present Invention




The following reaction was carried out as detailed below:











Into a three-necked round-bottom flask was placed 200 ml of ether with stirrer bar. Into the flask was added 45.0 g (0.19 mole) of 1-(p-fluorophenyl)-2-bromo-2-methyl-propan-1-one from Example 2. The mixture was cooled to about 0° C. Into the flask was bubbled ammonia gas for 2 hours, aster which was bubbled argon gas to flush away any excess ammonia. The solvent was then removed on the rotovaporator. The resulting product was used without further purification.




EXAMPLE 4




Method of Forming a Morpholino-Containing Intermediate to a Photoinitiator of the Present Invention




The following reaction was carried out as detailed below:











Into a 1-liter, three-necked round-bottom flask was placed 25.0 g (0.144 mole) of 1-(p-fluorophenyl)-2-amino-2-methyl-propan-1-one from Example 3, 12.5 g (0.144 mole) of morpholine, and 20.0 g (0.15 mole) of K


2


CO


3


in 100 ml. of dimethylsulfoxide (DMSO). The mixture was flushed with argon and heated to reflux (160° C.) for about 12 hours under an argon atmosphere. The reaction mixture was cooled and filtered. The solvent was mixed with about 200 g of ice and extracted with dichloromethane. The organic layer was washed with 50 ml of a saturated salt solution, dried over MgSO


4


, and then filtered. The solvent was removed by vacuum to yield 24.2 g of product (actual yield 68%).




The resulting product was found to have a λ


max


(CH


3


CN) value of 314 nm, which indicated the presence of the 1-(morpholino)-2-amino-2-methyl-propan-1-one compound.




EXAMPLE 5




Method of Forming a Zn-complex Photoinitiator of the Present Invention




The following reaction was carried out as detailed below:




Into a 250 ml, three-necked round-bottom flask was placed











2.0 g (8.3 mmole) of zinctetrafluoroborate (Strem Chemical Company, Newburyport, MA), 4.1 g (16.6 mmole) of the morpholino-containing product of Example 4, 30 ml of water, and 30 ml of 1,4-dioxane. The mixture was stirred and heated to reflux. The color of the mixture changed from bright yellow to dull yellow after about 50 minutes. HPLC indicated that all of the starting materials converted to product. The starting material had an UV value, λ


max


(CH


3


CN), of 314 nm, while the product had an UV value, λ


max


(CH


3


CN), of 356 nm.




The solvent was removed and pumped under a vacuum (0.01 mm Hg) for about 16 hours at room temperature. The yield of the final product was 4.1 g of product (68%).




EXAMPLE 6




Testing of Zn-Containing Photoinitiator of the Present Invention in a Red Flexographic Resin




A sample containing 2 wt % of the photoinitiator produced in Example 5 and 98 wt % of a red flexographic resin was prepared by mixing the components at about 50° C. in an aluminum pan. A drop of the resin sample was drawn down on a white panel using a zero-draw down bar. The thin film was exposed to a SOW excimer lamp (308 nm). The resin fully cured after 3 flashes (0.05 seconds/flash).




While the specification has been described in detail with respect to specific embodiments thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing, may readily conceive of alterations to, variations of, and equivalents to these embodiments. Accordingly, the scope of the present invention should be assessed as that of the appended claims and any equivalents thereto.



Claims
  • 1. A photoinitiator having the general formula: wherein Z each independently represents wherein R1, R2, R3 and R4 each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R5, R6, R7 and R8 each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R9 represents (R10)2O or (R10)3N; wherein R10 represents H or an alkyl group having from one to eight carbon atoms; and wherein R11, represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group.
  • 2. The photoinitiator of claim 1, wherein the photoinitiator comprises:
  • 3. The photoinitiator of claim 1, wherein the photoinitiator is associated with one or more counterions.
  • 4. The photoinitiator of claim 1, wherein the one or more counterions comprise tetraphenylboron, tetrachloroboron, tetrafluoroboron, hexafluorophosphate, perchlorate, or a combination thereof.
  • 5. The photoinitiator of claim 4, wherein the one or more counterions comprise tetraphenylboron or tetrafluoroboron.
  • 6. The photoinitiator of claim 3, wherein the photoinitiator and the one or more counterions comprise
  • 7. A method of generating a reactive species, comprising:irradiating the photoinitiator of claim 1 with radiation.
  • 8. A method of polymerizing a polymerizable material, comprising:irradiating an admixture of a polymerizable material and the photoinitiator of claim 1.
  • 9. A method of generating a reactive species, comprising:irradiating a photoinitiator with radiation, wherein at least one cationic free radical and at least one nitrogen radical species are generated.
  • 10. The method of generating a reactive species of claim 9, wherein the photoinitiator has the general formula: wherein Z each independently represent wherein R1, R2, R3 and R4 each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R5, R6, R7 and R8 each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R9 represents (R10)2O or (R10)3N; wherein R10 represents H or an alkyl group having from one to eight carbon atoms; and wherein R11, represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group.
  • 11. The method of generating a reactive species of claim 10, wherein the photoinitiator comprises:
  • 12. The method of generating a reactive species of claim 10, wherein the photoinitiator is associated with one or more counterions.
  • 13. The method of generating a reactive species of claim 12, wherein the one or more counterions comprise tetraphenylboron, tetrachloroboron, tetrafluoroboron, hexafluorophosphate, perchlorate, or a combination thereof.
  • 14. The method of generating a reactive species of claim 13, wherein the one or more counterions comprise tetraphenylboron or tetrafluoroboron.
  • 15. The method of generating a reactive species of claim 12, wherein the photoinitiator and the one or more counterions comprise
  • 16. A photoreactive composition comprising at least one photoinitiator and at least one counterion, wherein the composition is capable of generating at least one cationic free radical and at least one nitrogen radical species.
  • 17. The photoreactive composition of claim 16, wherein the photoinitiator having the general formula: wherein Z each independently represent wherein R1, R2, R3 and R4 each independently represent hydrogen, an alkyl group having from one to six carbon atoms, an alkoxy group having from one to six carbon atoms, or a halogen-substituted alkyl group; R5, R6, R7 and R8 each independently represent an alkyl group having from one to six carbon atoms, an aryl group, or a halogen-substituted alkyl group having from one to six carbon atoms; wherein R9 represents (R10)2O or (R10)3N; wherein R10 represents H or an alkyl group having from one to eight carbon atoms; and wherein R11 represents H, an alkyl group having from one to eight carbon atoms, a benzyl group or an aralkyl group.
  • 18. The photoreactive composition of claim 16, wherein the photoinitiator comprises:
  • 19. The photoreactive composition of claim 16, wherein the at least one counterion comprises tetraphenylboron, tetrachloroboron, tetrafluoroboron, hexafluorophosphate, perchlorate, or a combination thereof.
  • 20. The photoreactive composition of claim 16, wherein the composition comprises
PRIOR RELATED U.S. APPLICATION DATA

This application claims priority to U.S. provisional application Ser. No. 60/212,428, filed Jun. 19, 2000.

US Referenced Citations (327)
Number Name Date Kind
28789 Chang Apr 1860 A
28225 Heseltine et al. Nov 1860 A
1013544 Fuerth Jan 1912 A
1325971 Akashi Dec 1919 A
1364406 Olsen Jan 1921 A
1880572 Wendt et al. Oct 1932 A
1880573 Wendt et al. Oct 1932 A
1916350 Wendt et al. Jul 1933 A
1916779 Wendt et al. Jul 1933 A
1955898 Wendt et al. Apr 1934 A
2049005 Gaspar Jul 1936 A
2054390 Rust et al. Sep 1936 A
2062304 Gaspar Dec 1936 A
2097119 Eggert Oct 1937 A
2125015 Gaspar Jul 1938 A
2130572 Wendt Sep 1938 A
2132154 Gaspar Oct 1938 A
2145960 Wheatley et al. Feb 1939 A
2159280 Mannes et al. May 1939 A
2220178 Schneider Nov 1940 A
2230590 Eggert et al. Feb 1941 A
2268324 Polgar Dec 1941 A
2281895 van Poser et al. May 1942 A
2312751 Cohen Mar 1943 A
2328166 Polgar et al. Aug 1943 A
2346090 Staehle Apr 1944 A
2416145 Biro Feb 1947 A
2647080 Joyce Jul 1953 A
2732301 Robertson et al. Jan 1956 A
2757090 Meugebauer et al. Jul 1956 A
2763550 Lovick Sep 1956 A
2936241 Sharp et al. May 1960 A
2940853 Sagura et al. Jun 1960 A
2992198 Funahashi et al. Jul 1961 A
3030208 Schellenberg et al. Apr 1962 A
3104973 Sprague et al. Sep 1963 A
3114634 Brown et al. Dec 1963 A
3121632 Sprague et al. Feb 1964 A
3123647 Duennenberger et al. Mar 1964 A
3140949 Sprague et al. Jul 1964 A
3154416 Fidelman Oct 1964 A
3155509 Roscow Nov 1964 A
3175905 Wiesbaden Mar 1965 A
3178285 Anderau et al. Apr 1965 A
3284205 Sprague et al. Nov 1966 A
3300314 Rauner et al. Jan 1967 A
3305361 Gaynor et al. Feb 1967 A
3330659 Wainer Jul 1967 A
3341492 Champ et al. Sep 1967 A
3359109 Harder et al. Dec 1967 A
3385700 Willems et al. May 1968 A
3397984 Williams et al. Aug 1968 A
3418118 Thommes et al. Dec 1968 A
3445234 Cescon et al. May 1969 A
3479185 Chambers Nov 1969 A
3488269 Allen et al. Jan 1970 A
3502476 Kohei et al. Mar 1970 A
3503744 Itano et al. Mar 1970 A
3514597 Haes et al. May 1970 A
3547646 Hori et al. Dec 1970 A
3549367 Chang et al. Dec 1970 A
3574624 Reynolds et al. Apr 1971 A
3595655 Robinson et al. Jul 1971 A
3595657 Robinson et al. Jul 1971 A
3595658 Gerlach et al. Jul 1971 A
3595659 Gerlach et al. Jul 1971 A
3607639 Krefeld et al. Sep 1971 A
3607693 Heine et al. Sep 1971 A
3607863 Dosch Sep 1971 A
3615562 Harrison et al. Oct 1971 A
3617288 Hartman et al. Nov 1971 A
3642472 Mayo Feb 1972 A
3647467 Grubb Mar 1972 A
3667954 Itano et al. Jun 1972 A
3671096 Mackin Jun 1972 A
3671251 Houle et al. Jun 1972 A
3689565 Hoffmann et al. Sep 1972 A
3694241 Guthrie et al. Sep 1972 A
3695879 Laming et al. Oct 1972 A
3697280 Strilko Oct 1972 A
3705043 Zablak Dec 1972 A
3707371 Files Dec 1972 A
3729313 Smith Apr 1973 A
3765896 Fox Oct 1973 A
3775130 Enomoto et al. Nov 1973 A
3788849 Taguchi et al. Jan 1974 A
3794497 Pratt et al. Feb 1974 A
3801329 Sandner et al. Apr 1974 A
3817752 Laridon et al. Jun 1974 A
3870524 Watanabe et al. Mar 1975 A
3873500 Kato et al. Mar 1975 A
3887450 Gilano et al. Jun 1975 A
3895949 Akamatsu Jul 1975 A
3901779 Mani Aug 1975 A
3914165 Gaske Oct 1975 A
3914166 Rudolph et al. Oct 1975 A
3915824 McGinniss Oct 1975 A
3926641 Rosen Dec 1975 A
3933682 Bean Jan 1976 A
3960685 Sano et al. Jun 1976 A
3984248 Sturmer Oct 1976 A
3988154 Sturmer Oct 1976 A
4004998 Rosen Jan 1977 A
4012256 Levinos Mar 1977 A
4017652 Gruber Apr 1977 A
4022674 Rosen May 1977 A
4024324 Sparks May 1977 A
4043819 Baumann Aug 1977 A
4048034 Martan Sep 1977 A
4054719 Cordes, III Oct 1977 A
4058400 Crivello Nov 1977 A
4071424 Dart et al. Jan 1978 A
4073968 Miyamoto et al. Feb 1978 A
4079183 Green Mar 1978 A
4090877 Streeper May 1978 A
4100047 McCarty Jul 1978 A
4107733 Schickedanz Aug 1978 A
4110112 Roman et al. Aug 1978 A
4111699 Krueger Sep 1978 A
4141807 Via Feb 1979 A
4144156 Kuesters et al. Mar 1979 A
4148658 Kondoh et al. Apr 1979 A
4162162 Dueber Jul 1979 A
4171977 Hasegawa et al. Oct 1979 A
4179577 Green Dec 1979 A
4181807 Green Jan 1980 A
4197080 Mee Apr 1980 A
4199420 Photis Apr 1980 A
4232106 Iwasaki et al. Nov 1980 A
4239850 Kita et al. Dec 1980 A
4245033 Eida et al. Jan 1981 A
4250096 Kvita et al. Feb 1981 A
4251622 Kimoto et al. Feb 1981 A
4251662 Ozawa et al. Feb 1981 A
4258123 Nagashima et al. Mar 1981 A
4259432 Kondoh et al. Mar 1981 A
4268667 Anderson May 1981 A
4279982 Iwasaki et al. Jul 1981 A
4279985 Nonogaki et al. Jul 1981 A
4284485 Berner Aug 1981 A
4289844 Specht et al. Sep 1981 A
4290870 Kondoh et al. Sep 1981 A
4306014 Kunikane et al. Dec 1981 A
4307182 Dalzell et al. Dec 1981 A
4308400 Felder et al. Dec 1981 A
4315807 Felder et al. Feb 1982 A
4318791 Felder et al. Mar 1982 A
4321118 Felder et al. Mar 1982 A
4335054 Blaser et al. Jun 1982 A
4343891 Aasen et al. Aug 1982 A
4345011 Drexhage Aug 1982 A
4347111 Gehlhaus et al. Aug 1982 A
4350753 Shelnut et al. Sep 1982 A
4351893 Anderson Sep 1982 A
4356247 Aotani et al. Oct 1982 A
4356255 Tachikawa et al. Oct 1982 A
4359524 Masuda et al. Nov 1982 A
4362806 Whitmore Dec 1982 A
4367280 Kondo et al. Jan 1983 A
4369283 Altschuler Jan 1983 A
4370401 Winslow et al. Jan 1983 A
4372582 Geisler Feb 1983 A
4373017 Masukawa et al. Feb 1983 A
4374984 Eichler et al. Feb 1983 A
4383835 Preuss et al. May 1983 A
4390616 Sato et al. Jun 1983 A
4391867 Derick et al. Jul 1983 A
4416961 Drexhage Nov 1983 A
4424325 Tsunoda et al. Jan 1984 A
4425424 Altland et al. Jan 1984 A
4434035 Eichler et al. Feb 1984 A
4447521 Tiers et al. May 1984 A
4450227 Holmes et al. May 1984 A
4475999 Via Oct 1984 A
4477681 Gehlhaus et al. Oct 1984 A
4489334 Owatari Dec 1984 A
4495041 Goldstein Jan 1985 A
4496447 Eichler et al. Jan 1985 A
4500355 Shimada et al. Feb 1985 A
4508570 Fugii et al. Apr 1985 A
4510392 Litt et al. Apr 1985 A
4534838 Lin et al. Aug 1985 A
4548896 Sabongi et al. Oct 1985 A
4555474 Kawamura Nov 1985 A
4559371 Hiisler et al. Dec 1985 A
4565769 Dueber et al. Jan 1986 A
4571377 McGinniss et al. Feb 1986 A
4582862 Berner et al. Apr 1986 A
4595745 Nakano et al. Jun 1986 A
4604344 Irving et al. Aug 1986 A
4605442 Kawashita et al. Aug 1986 A
4620875 Shimada et al. Nov 1986 A
4620876 Fugii et al. Nov 1986 A
4622286 Sheets Nov 1986 A
4631085 Kawanishi et al. Dec 1986 A
4632891 Banks et al. Dec 1986 A
4632895 Patel et al. Dec 1986 A
4634644 Irving et al. Jan 1987 A
4638340 Iiyama et al. Jan 1987 A
4647310 Shimada et al. Mar 1987 A
4655783 Reinert et al. Apr 1987 A
4663275 West et al. May 1987 A
4663641 Iiyama et al. May 1987 A
4698291 Koibuchi et al. Oct 1987 A
4701402 Patel et al. Oct 1987 A
4702996 Griffing et al. Oct 1987 A
4707430 Ozawa et al. Nov 1987 A
4711668 Shimada et al. Dec 1987 A
4711802 Tannenbaum Dec 1987 A
4713113 Shimada et al. Dec 1987 A
4720450 Ellis Jan 1988 A
4721734 Gehlhaus et al. Jan 1988 A
4724021 Martin et al. Feb 1988 A
4724201 Okazaki et al. Feb 1988 A
4725527 Robillard Feb 1988 A
4732615 Kawashita et al. Mar 1988 A
4737190 Shimada et al. Apr 1988 A
4737438 Ito et al. Apr 1988 A
4740451 Kohara Apr 1988 A
4745042 Sasago et al. May 1988 A
4755450 Sanders et al. Jul 1988 A
4766050 Jerry Aug 1988 A
4766055 Kawabata et al. Aug 1988 A
4772541 Gottschalk Sep 1988 A
4786586 Lee et al. Nov 1988 A
4800149 Gottschalk Jan 1989 A
4837106 Ishikawa et al. Jun 1989 A
4839269 Okazaki et al. Jun 1989 A
4849320 Irving et al. Jul 1989 A
4853037 Johnson et al. Aug 1989 A
4857438 Loerzer et al. Aug 1989 A
4861916 Kohler et al. Aug 1989 A
4865942 Gottschalk et al. Sep 1989 A
4886774 Doi Dec 1989 A
4895880 Gottschalk Jan 1990 A
4902725 Moore Feb 1990 A
4925770 Ichiura et al. May 1990 A
4937161 Kita et al. Jun 1990 A
4942113 Trundle Jul 1990 A
4952478 Miyagawa et al. Aug 1990 A
4954416 Wright et al. Sep 1990 A
4956254 Washizu et al. Sep 1990 A
4965294 Ohngemach et al. Oct 1990 A
4987056 Imahashi et al. Jan 1991 A
4997745 Kawamura et al. Mar 1991 A
5002853 Aoai et al. Mar 1991 A
5002993 West et al. Mar 1991 A
5003142 Fuller Mar 1991 A
5026425 Hindagolla et al. Jun 1991 A
5028792 Mullis Jul 1991 A
5034526 Bonham et al. Jul 1991 A
5045435 Adams et al. Sep 1991 A
5045573 Kohler et al. Sep 1991 A
5047556 Kohler et al. Sep 1991 A
5053320 Robbillard Oct 1991 A
5055579 Pawlowski et al. Oct 1991 A
5070001 Stahlhofen Dec 1991 A
5077402 Desobry et al. Dec 1991 A
5087550 Blum et al. Feb 1992 A
5089374 Saeva Feb 1992 A
5096489 Laver Mar 1992 A
5098806 Robillard Mar 1992 A
5106723 West et al. Apr 1992 A
5108874 Griffing et al. Apr 1992 A
5110706 Yumoto et al. May 1992 A
5110709 Aoai et al. May 1992 A
5114832 Zertani et al. May 1992 A
5130227 Wade et al. Jul 1992 A
5147901 Rutsch et al. Sep 1992 A
5153104 Rossman et al. Oct 1992 A
5153105 Sher et al. Oct 1992 A
5166041 Murofushi et al. Nov 1992 A
5176984 Hipps, Sr. et al. Jan 1993 A
5180652 Yamaguchi et al. Jan 1993 A
5185236 Shiba et al. Feb 1993 A
5187045 Bonham et al. Feb 1993 A
5187049 Sher et al. Feb 1993 A
5190845 Hashimoto et al. Mar 1993 A
5196295 Davis Mar 1993 A
5202221 Imai et al. Apr 1993 A
5208136 Zanoni et al. May 1993 A
5219703 Bugner et al. Jun 1993 A
5224197 Zanoni et al. Jun 1993 A
5226957 Wickramanayake et al. Jul 1993 A
5230982 Davis et al. Jul 1993 A
5254429 Gracia et al. Oct 1993 A
5258274 Helland et al. Nov 1993 A
5262276 Kawamura Nov 1993 A
5275646 Marshall et al. Jan 1994 A
5279652 Kaufmann et al. Jan 1994 A
5284734 Blum et al. Feb 1994 A
5296275 Goman et al. Mar 1994 A
5300403 Angelopolus et al. Apr 1994 A
5312713 Yokoyama et al. May 1994 A
5312721 Gesign May 1994 A
5330860 Grot et al. Jul 1994 A
5334455 Noren et al. Aug 1994 A
5340631 Matsuzawa et al. Aug 1994 A
5340854 Martic et al. Aug 1994 A
5344483 Hinton Sep 1994 A
5362592 Murofushi et al. Nov 1994 A
5362916 Edwards et al. Nov 1994 A
5366947 Muller et al. Nov 1994 A
5376503 Audett et al. Dec 1994 A
5383961 Bauer et al. Jan 1995 A
5393580 Ma et al. Feb 1995 A
5415976 Ali May 1995 A
5426164 Babb et al. Jun 1995 A
5431720 Nagai et al. Jul 1995 A
5455074 Nohr et al. Oct 1995 A
5455143 Ali Oct 1995 A
5459014 Nishijima et al. Oct 1995 A
5466283 Kondo et al. Nov 1995 A
5476540 Shields et al. Dec 1995 A
5503664 Sano et al. Apr 1996 A
5532112 Kohler et al. Jul 1996 A
5597405 Grigoryan et al. Jan 1997 A
5685754 Nohr et al. Nov 1997 A
5709955 Nohr et al. Jan 1998 A
5721287 Nohr et al. Feb 1998 A
5739175 Nohr et al. Apr 1998 A
5747550 Nohr et al. May 1998 A
5795985 Husler et al. Aug 1998 A
5798015 Nohr et al. Aug 1998 A
5811199 MacDonald et al. Sep 1998 A
5849411 Nohr et al. Dec 1998 A
6022906 Ohwa et al. Feb 2000 A
Foreign Referenced Citations (92)
Number Date Country
103085 Apr 1937 AU
1262488 Sep 1988 AU
458808 Dec 1936 CA
461082 Nov 1949 CA
571792 Mar 1959 CA
779239 Feb 1968 CA
93103 Jul 1973 CA
2053094 Apr 1992 CA
603767 Aug 1978 CH
197808 May 1988 CH
1047787 Dec 1957 DE
1039835 Sep 1958 DE
1040562 Oct 1958 DE
1045414 Dec 1958 DE
1047013 Dec 1958 DE
1154069 Sep 1963 DE
2052 198 Oct 1970 DE
2432563 Feb 1975 DE
2437380 Feb 1975 DE
2444520 Mar 1975 DE
2416259 Oct 1975 DE
2722264 Nov 1978 DE
3126433 Jan 1983 DE
3415033 Oct 1984 DE
3833437 Apr 1990 DE
3833438 Apr 1990 DE
4132288 Apr 1992 DE
0127574 Dec 1984 EP
0 209 831 Jan 1987 EP
0223587 May 1987 EP
0308274 Mar 1989 EP
0373662 Jun 1990 EP
0375160 Jun 1990 EP
0390439 Oct 1990 EP
0468465 Jan 1992 EP
0 475 075 Mar 1992 EP
0542286 May 1993 EP
0755984 Jan 1997 EP
0 805 152 Nov 1997 EP
0 861 880 Sep 1998 EP
355686 Aug 1931 GB
441085 Jan 1936 GB
463515 Apr 1937 GB
492711 Sep 1938 GB
518612 Mar 1940 GB
539912 Sep 1941 GB
626727 Jul 1947 GB
600451 Apr 1948 GB
616362 Jan 1949 GB
618616 Feb 1949 GB
779389 Jul 1957 GB
1150987 May 1969 GB
49-8909 Feb 1974 JP
5065592 Jun 1975 JP
51-17802 Feb 1976 JP
55-62059 May 1980 JP
55-90506 Jul 1980 JP
0014233 Feb 1981 JP
5761055 Apr 1982 JP
58-125770 Jul 1983 JP
5989360 May 1984 JP
60239739 Nov 1985 JP
60239740 Nov 1985 JP
60239741 Nov 1985 JP
60239743 Nov 1985 JP
613781 Jan 1986 JP
61-247703 Nov 1986 JP
627703 Jan 1987 JP
62127281 Jun 1987 JP
1-128063 May 1989 JP
2-58573 Feb 1990 JP
2179642 Jul 1990 JP
3-206439 Sep 1991 JP
4023884 Jan 1992 JP
4023885 Jan 1992 JP
04356087 Dec 1992 JP
543806 Feb 1993 JP
5080506 Apr 1993 JP
05119506 May 1993 JP
5263067 Oct 1993 JP
6214339 Aug 1994 JP
6256494 Sep 1994 JP
6256633 Sep 1994 JP
7113828 Apr 1972 NL
1310767 May 1987 RU
WO 9211295 Jul 1992 WO
WO 9401503 Jan 1994 WO
WO 9600740 Jan 1996 WO
WO 9619502 Jun 1996 WO
WO 9622335 Jul 1996 WO
WO 9624636 Aug 1996 WO
WO 9735933 Oct 1997 WO
Non-Patent Literature Citations (55)
Entry
Noguchi, H. UV Curable, Aqueous Ink Jet Ink: Material Design and Performance for Digital Printing 1998 International Conf. on Digital Printing Technologiespp. 107-110 Dec. 31, 1998.
ESP@CENE T databse JP 10324836 (Omron Corp.), Dec. 8, 1998. abstract Dec. 8, 1998.
Derwent World Patents EP 659039 (Canon KK) Jun. 21, 1995. abstract Jun. 21, 1995.
Maki, Y. et al. “A novel heterocyclic N-oxide, pyrimido[5,4-g]pteridinetetrone 5-oxide, with multifunctional photooxidative properties” Chemical Abstracts vol. 122 p. 925 Jan. 1, 1995.
Abstract of patent, JP 06-43573 (Iku Meji) (Feb. 18, 1994).
Derwent World Patents JP 5186725 (Seiko Epson Corp.), Jul. 27, 1993. abstract.
Derwent Publications Ltd., London, JP 5-132638 (Mitsubishi Kasei Corp), May 28, 1993.
Derwent Publications Ltd., London, JP 5-125318 (Mitsubishi Kasei Corp), May 21, 1993.
Duxbury “The Photochemistry and Photophysics of Triphenylmethane Dyes in Solid Liquid Media” Chemical Review vol. 93 pp. 381-433 Jan. 1, 1993.
Derwent Publications Ltd., London, JP 4-189877 (Seiko Epson Corp), Jul. 8, 1992. (Abstract) Jul. 8, 1992.
Derwent Publications Ltd., London, JP 3167270 (Mitsubishi Kasei Corp), Jul. 19, 1991.
Derwent World Patents EP 435536 (Canon KK) Jul. 3, 1991. abstract Jul. 3, 1991.
Kogelschatz, “New Excimer UV Sources for Industrial Applications” ABB Review vol. 391 pp. 1-10 Mar. 1, 1991.
Braithwaite, M., et al. “Formulation” Chemistry & Technology of UV & EB Formulation for Coatings, Inks & Paints vol. IV pp. 11-12 Jan. 1, 1991.
Scientific Polymer Products, Inc. Brochure pp. 24-31 Jan. 1, 1991.
Dietliker, K. “Photoiniators for Free Radical and Cationic Polymerisation” Chem & Tech of UV & EB Formulation for Coatings, Inks & Paints vol. III pp. 61, 63, 229-23 Jan. 1, 1991.
“Coloring/Decoloring Agent for Tonor Use Developed” Japan Chemical Week Jan. 1, 1991.
Derwent Publications Ltd., London, JP 2091166 (Canon KK), Mar. 30, 1990. (Abstract).
Pappas, S.P. “Photocrosslinking” Comph. Pol. Sci. vol. 6 pp. 135-148 Jan. 1, 1989.
Pappas, S.P. “Photoinitiated Polymerization” Comph. Pol. Sci. vol. 4 pp. 337-355 Jan. 1, 1989.
Kirilenko, G.V. et al. “An analog of the vesicular process with amplitude modulation of the incident light beam” Chemical Abstracts vol. 111 pp. 569 Jan. 1, 1989.
Allen, Norman S. Photopolymerisation and Photoimaging Science and Technology pp. 188-19 Jan. 1, 1989.
Patent Abstracts of Japan, JP 63297477 (Fuji Photo Film Co. Ltd.) Dec. 5, 1988, abstract. Dec. 5, 1988.
Abstract of patent, JP 61-77846 Apr. 21, 1988.
Abstract of patent, JP 63-73241 Apr. 2, 1988.
Derwent World Patents JP 62064874 (Dainichiseika Color & Chem Mfg.), Mar. 23, 1987. abstract Mar. 23, 1987.
Abstract of patent, JP 62-32082 Feb. 12, 1987.
Gross et al. “Laser direct-write metallization in thin palladium acetate films” J. App. Phys. vol. 61 (4) pp. 1628-1632 Jan. 1, 1987.
Al-Ismail et al. “Some experimental results on thin polypropylene films loaded with finely-dispersed copper” Journal of Materials Science pp. 415-418 Jan. 1, 1987.
Abstract of patent, JP 61251842 Nov. 8, 1986.
Derwent Publications Ltd., London, DL 0234731 (Karl Marx Univ. Leipzig), Apr. 9, 1986. (Abstract).
Derwent World Patents Index, SU 1219612 (AS USSR NON-AQ SOLN) Mar. 23, 1986.
Dialog, JAPIO, JP 61-034057 (Ciba Geigy AG) Feb. 18, 1986.
Derwent World Patents Index, EP 127574 (Ciba Geigy AG), Dec. 5, 1984.
Derwent Publications Ltd., London, JP 0198187 (Canon KK), Nov. 9, 1984. (Abstract).
van Beek, H.C.A. “Light-Induced Colour Changes in Dyes and Materials” Color Res. and Appl. vol 8 pp. 176-181 Jan. 1983.
Fischer, “Submicroscopic contact imaging with visible light by energy transfer” Appl. Phys. Letter vol. 40(3) Feb. 1, 1982.
Patent Abstracts of Japan, JP 56143274 (Canon Inc.) Nov. 7, 1981, abstract.
Derwent Publications Ltd., London, J,A, 0008135 (Ricoh KK), Jan. 27, 1981. (Abstract)
Komiyama et al. “One-Pot Preparation of 4-Hydroxychalcone β-Cyclodextrin as Catalyst,” Makromol. Chem. vol. 2 pp. 733-734 Jan. 1, 1981.
Derwent Publications Ltd., London, J,A. 0005422 (Fuji Photo Film KK), Jan. 16, 1979.
Drexhage et al. “Photo-bleachable dyes and processes” Research Disclosure pp. 85-87 Jan. 1, 1979.
“Color imaging devices and color filter arrays using photo-bleachable dyes” Research Disclosure pp. 22-23 Jan. 1, 1979.
Jenkins, P.W. et al. “Photobleachable dye material” Research Disclosure p. 18 [No. 12932] Jan. 1, 1975.
Lamberts, R.L. “Recording color grid patterns with lenticules” Research Disclosure pp. 18-19 Jan. 1, 1975.
“Variable Contrast Printing System” Research Disclosure p. 19 [No. 2931] Jan. 1, 1975.
Chang, I.F., et al. “Color Modulated Dye Ink Jet Printer” IBM Technical Disclosure Bulletin vol. 17(5) pp. 1520-1521 Oct. 1, 1974.
“Darocur 1173: Liquid Photoiniator for Ultraviolet Curing of Coatings” Jan. 1, 1974.
Tsuda, K., et al. Vinyl Polymerization. CXLVI. The influence of dibenzoyl disulfide derivatives on radical polymerizations Chemcial Abstract vol. 1966:29198 Jan. 1, 1966.
R.T. Morrison & R.N. Boyd Organic Chemistry p. 174 Jan. 1, 1959.
Chatterjee, S. et al. “Photochemistry of Carbocyanine Alkyltriphenylborate Salts: Intra-Ion-Pair Electron Transfer and the Chemistry of Boranyl Radicals” J. Am. Chem. Soc. vol. 112 pp. 6329-6338.
“Monomers” Scientific Polymer Products Inc.
Yamaguchi, H. et al. “Supersensitization. Aromatic ketones as supersensitizers” Chemical Abstracts vol. 53 p. 107 (d).
Stecher, H. “Ultraviolet-absorptive additives in adhesives, lacquers and plastics” Chemical Abstracts vol. 53 p. 14579 (c).
Derwent Publications Ltd., London, 4 9128022.
Provisional Applications (1)
Number Date Country
60/212428 Jun 2000 US