The invention concerns laser apparatus. More particularly, the invention concerns diode pumped solid state (“DPSS”) lasers and design of laser elements to achieve independent crystal phasing, spacing and output coupler alignment.
Diode pumped solid state lasers are used in industry to provide an inexpensive yet powerful laser source. In applications, it is often desirable to convert the wavelength of the laser light produced by the laser diode to a different wavelength. This traditionally entails the use of one or more crystals and an output coupler aligned for phasing and cavity tuning i.e., rotation and spacing relative to the laser diode.
For example, in one DPSS laser system, it is desirable to convert a laser diode output at 808 nm to a 532 nm green laser. This may be done by passing the output light through first a Nd:YVO4 crystal to convert the light to 1064 nm, and then passing it through a KTP crystal to convert to the desired 532 nm laser, which then would exit through an output coupler. In order to maintain acceptable output quality and intensity, it is advantageous to optimize the phasing or “rotation” and distance of the Nd:YVO4 crystal with respect to the laser diode, as well as that of the KTP crystal with respect to the Nd:YVO4 crystal and the output coupler with respect to the KTP and Nd:YVO4 crystals. It would also be useful to provide for pitch and yaw control of the KTP and output coupler as well.
In a traditional arrangement, the Nd:YVO4 and KTP crystals are typically packaged in mounts which are fixed into optimal positions in rotation and distance using shunts and glue. This approach has several drawbacks. For example, if the positioning of the shunts is shifted, such as by a shock to the device in which the laser is mounted, laser output can be adversely affected and a repair would require dismantling and replacing the shunts, which may further damage the device.
Also, in traditional lasers, the crystals and other elements typically cannot be independently aligned for crystal rotation, pitch and yaw adjustment and X-Y-Z orthogonal adjustments.
It is thus desirable to provide a physical design of a DPSS laser where the elements can be provided in a small compact package that incorporates precision techniques for aligning all electro-optic elements, to include crystal rotation, pitch and yaw adjustments and X-Y-Z orthogonal adjustments.
An aspect of the invention provides a laser apparatus including a laser diode, an Nd:YVO4 crystal, a KTP crystal, and an output coupler. The laser diode, Nd:YVO4 crystal, KTP crystal, and output coupler are aligned in order in an assembly to provide an optical path.
In an aspect of the invention, the Nd:YVO4 crystal is held at a predetermined distance from the laser diode on an adjustable rotating mount, the predetermined distance maintained by a spacer. The adjustable rotating mount and spacer together form an Nd:YVO4 assembly. The the Nd:YVO4 crystal is optimally rotated to a position to maximize output of the laser diode through the Nd:YVO4 crystal to produce 1064 nm radiation, the position fixed by a plurality of adjustment screws attached to the adjustable rotating mount.
In another aspect of the invention, the laser apparatus further provides for the KTP crystal to be held at a second predetermined distance from the Nd:YVO4 crystal on a second rotating mount. The second predetermined distance is maintained by a second spacer, the second rotating mount and second spacer having a plurality of rods and nuts fastened thereto for adjusting the pitch and yaw of the KTP crystal. In one embodiment, the second spacer includes a plurality of spring loaded adjustment screws for adjusting the second predetermined distance.
In various embodiments of the invention, the Nd:YVO4 crystal and KTP crystal may each be mounted in a one or two part mount.
Another aspect of the invention provides that the laser apparatus includes an output coupler held by an output coupler assembly. The output coupler assembly holds the output coupler at a third predetermined distance from the KTP crystal on a third pitch and yaw and Z adjustment mount, the third predetermined distance maintained by a third spacer. The third rotating mount and third spacer have rods and nuts fastened thereto for adjusting the pitch and yaw of the output coupler.
It is also provided that spring loaded adjustment screws may be used to provide for adjustment and locking into position of any or all of the Nd:YVO4 crystal, KTP crystal and/or output coupler.
Other forms of adjustable attachment, such as, but not limited to clips, slides, pins, and the like are also envisioned.
Embodiments will be described with reference to the following drawing figures, in which like numerals represent like items throughout the figures, and in which:
a is a perspective view of an exemplary 3 piece ND:YVO4 assembly that is useful for understanding the present invention.
b is a perspective view of an exemplary 2 piece ND:YVO4 assembly that is useful for understanding the present invention.
a is a perspective view of an exemplary 5 piece KTP assembly that is useful for understanding the present invention.
b is a perspective view of an exemplary 4 piece KTP assembly that is useful for understanding the present invention.
The present invention is described with reference to the attached figures. The figures are not drawn to scale and they are provided merely to illustrate the instant invention. Several aspects of the invention are described below with reference to example applications for illustration. It should be understood that numerous specific details, relationships, and methods are set forth to provide a full understanding of the invention. One having ordinary skill in the relevant art, however, will readily recognize that the invention can be practiced without one or more of the specific details or with other methods. In other instances, well-known structures or operation are not shown in detail to avoid obscuring the invention. The present invention is not limited by the illustrated ordering of acts or events, as some acts may occur in different orders and/or concurrently with other acts or events. Furthermore, not all illustrated acts or events are required to implement a methodology in accordance with the present invention.
The word “exemplary” is used herein to mean serving as an example, instance, or illustration. Any aspect or design described herein as “exemplary” is not necessarily to be construed as preferred or advantageous over other aspects or designs. Rather, use of the word exemplary is intended to present concepts in a concrete fashion. As used in this application, the term “or” is intended to mean an inclusive “or” rather than an exclusive “or”. That is, unless specified otherwise, or clear from context, “X employs A or B” is intended to mean any of the natural inclusive permutations. That is if, X employs A; X employs B; or X employs both A and B, then “X employs A or B” is satisfied under any of the foregoing instances.
The present invention advantageously provides physical designs of a diode pumped solid state (“DPSS”) laser where the elements can be provided in a small compact package that incorporates precision techniques for aligning all electro-optic elements, including crystal rotation, pitch and yaw adjustments and X-Y-Z orthogonal adjustments.
The present invention will be described here with reference to a DPSS 532 nm GREENSTAR(TM) laser by Laser Energetics, Inc. It is envisioned that the apparatus and techniques described herein may be useful in other laser devices.
A typical 532 nm solid state laser consists of the elements identified in
The Laser Energetics, Inc.GreenStar™ II Diode Pumped Solid State (DPSS) laser is constructed using the elements of
The exemplary compact design shown in
As shown in
Attached to the platform 210 is the ND:YVO4 assembly 220, which includes a ND:YVO4 crystal 120 within The ND:YVO4 assembly 220 allows adjustments of distance and phase/rotation of the ND:YVO4 crystal 120 relative to the diode laser.
Attached to the ND:YVO4 assembly 220 is the KTP assembly 230, containing the KTP crystal 130, positioned with screws and springs 256 to allow pitch and yaw adjustment. The KTP assembly 230 allows independent rotation of the KTP crystal relative to the ND:YVO4 assembly 220. In an embodiment of the invention, the spacer 240 positioned above the KTP assembly is locked into position by nuts and rods 260 making its postion independent of the KTP assembly 230. The independent postioning of the spacer 240 allows independent positioning of the coupler (“OC”) assembly 250 relative to the KTP assembly 230. This independence is a critical feature of this invention. The OC assembly 250 preferably includes an output coupler 140 within In one embodiment of the invention, the OC assembly 250 is aligned and set in place using screws and springs 256.
Referring now to
In
Referring now to
The output coupler (OC) which follows the KTP crystal is housed in mount [255
In the design of
A further feature of the GreenStar™ II DPSS Laser is the ease of adjustment of the KTP and OC using springs force 256 and with the ability to lock-down their position for permanent alignment to resist vibration and shock in field use. Lock-down is accomplished by opposing forces of nuts and screws or just screws.
Referring now to
Having thus described the invention of the present application in detail and by reference to illustrative embodiments thereof, it will be apparent that modifications and variations are possible without departing from the scope of the invention defined in the appended claims.
This application claims the priority from U.S. Provisional Patent Application No. 61/561,335 filed on Nov. 18, 2011, by R. Battis, et al. titled “GREENSTAR II™—DPSS OPTO-MECHANICALLY OPTIMIZED GREEN LASER.” This application is incorporated herein by reference in its entirety.
Number | Date | Country | |
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61561355 | Nov 2011 | US |