WO2007074400A2 - Diode-pumped cavity - Google Patents
Diode-pumped cavity Download PDFInfo
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- WO2007074400A2 WO2007074400A2 PCT/IB2006/003942 IB2006003942W WO2007074400A2 WO 2007074400 A2 WO2007074400 A2 WO 2007074400A2 IB 2006003942 W IB2006003942 W IB 2006003942W WO 2007074400 A2 WO2007074400 A2 WO 2007074400A2
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- rod
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- diode
- pump
- pumped
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/09—Processes or apparatus for excitation, e.g. pumping
- H01S3/091—Processes or apparatus for excitation, e.g. pumping using optical pumping
- H01S3/094—Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light
- H01S3/0941—Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light of a laser diode
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/02—Constructional details
- H01S3/04—Arrangements for thermal management
- H01S3/0405—Conductive cooling, e.g. by heat sinks or thermo-electric elements
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/05—Construction or shape of optical resonators; Accommodation of active medium therein; Shape of active medium
- H01S3/06—Construction or shape of active medium
- H01S3/0602—Crystal lasers or glass lasers
- H01S3/061—Crystal lasers or glass lasers with elliptical or circular cross-section and elongated shape, e.g. rod
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S3/00—Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
- H01S3/09—Processes or apparatus for excitation, e.g. pumping
- H01S3/091—Processes or apparatus for excitation, e.g. pumping using optical pumping
- H01S3/094—Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light
- H01S3/094084—Processes or apparatus for excitation, e.g. pumping using optical pumping by coherent light with pump light recycling, i.e. with reinjection of the unused pump light, e.g. by reflectors or circulators
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S5/00—Semiconductor lasers
- H01S5/02—Structural details or components not essential to laser action
- H01S5/024—Arrangements for thermal management
- H01S5/02407—Active cooling, e.g. the laser temperature is controlled by a thermo-electric cooler or water cooling
- H01S5/02415—Active cooling, e.g. the laser temperature is controlled by a thermo-electric cooler or water cooling by using a thermo-electric cooler [TEC], e.g. Peltier element
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S5/00—Semiconductor lasers
- H01S5/02—Structural details or components not essential to laser action
- H01S5/024—Arrangements for thermal management
- H01S5/02438—Characterized by cooling of elements other than the laser chip, e.g. an optical element being part of an external cavity or a collimating lens
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01S—DEVICES USING THE PROCESS OF LIGHT AMPLIFICATION BY STIMULATED EMISSION OF RADIATION [LASER] TO AMPLIFY OR GENERATE LIGHT; DEVICES USING STIMULATED EMISSION OF ELECTROMAGNETIC RADIATION IN WAVE RANGES OTHER THAN OPTICAL
- H01S5/00—Semiconductor lasers
- H01S5/40—Arrangement of two or more semiconductor lasers, not provided for in groups H01S5/02 - H01S5/30
- H01S5/4025—Array arrangements, e.g. constituted by discrete laser diodes or laser bar
- H01S5/4031—Edge-emitting structures
Definitions
- the present invention relates to side-pumped, diode-pumped solid-state lasers, and more particularly to a cavity for diode side pumping of solid-state laser rods as oscillators or amplifiers.
- Energetic diode-pumped lasers use laser diodes in various geometries, mostly arranged around the laser rod, performing side pumping perpendicular to the rod axis.
- the light emitted by the laser diodes enters perpendicular to the rod axis.
- the pump light is absorbed by the atoms in the laser rod, exciting the atoms, thus establishing an optical gain in the laser rod.
- the side pumping geometry allows a large excited cross-section of the laser rod as well as long rod pumping, facilitating large pumped volume and large energy storage and high-energy extraction as required.
- the side-pumped, diode-pumped solid-state laser (side-pumped DPSSL) field can be divided into sub-fields based on how the otherwise highly divergent, up to 40°, diode radiation is coupled into the laser rod.
- Some of these sub-fields include: (a) using optics such as a cylindrical lens or elliptical mirror, (b) using an optical waveguide such as a reflective cavity or fiber; and (c) closely coupling the diode(s) to the rod.
- the side-pumped, diode-pumped solid-state laser (side-pumped DPSSL) field can be further divided into sub-fields based on how the heat, resulting from the method used to remove the part of the electric energy introduced into the cavity that is not transferred to laser light is removed.
- Some of these sub-fields include: (a) using liquid, circulating in and out of the cavity, where the excessive heat is convected away, (b) using gas, circulating in and out of the cavity, where the excessive heat is convected away, (c) using a solid-state structure, where the excessive heat is conducted away through the solid structure.
- Heat removal in most prior art arrangements and structures was performed using compressed gas or liquid coolants. Gas or liquid coolants limit the reliability of the laser system, since frequent preventive maintenance activity is required to address leaks of the coolant or degradation of its characteristics.
- Japanese patent publication no. JP 5-259540 discloses a side-pumped DPSSL wherein the rod is disposed within a diffuse reflector or condenser.
- a diode array emits radiation that enters the condenser for absorption by the rod via a narrow slit which guides the diode radiation toward the rod.
- a gel or liquid such as water surrounds the rod filling spacing between the rod and surrounding tube. Some light is absorbed in the liquid, scattered and absorbed by multiple reflections.
- U.S. Patents Nos. 5,521,936, 5,033,058 and 6,026,109 disclose water-cooled solid-state lasers using closely coupled side-pumping diode arrays.
- the pumping laser diodes are disposed close to the rod in order that the rod remains in the path of the substantial portion of the divergent radiation, as it is not contemplated that rays missing the rod on the first pass will be subsequently redirected towards the rod to be absorbed on a second or later pass, the efficiency is reduced.
- U.S. Pat. No. 5,870,421 patent differs in that it discloses the use of side-pumping optical fibers, which add substantial manufacturing cost.
- US Patent No. 6,608,852 describes a liquid-cooled side-pumped laser including an elongated diffuse reflector housing having an elongated cavity defined by a diffusely reflective cavity wall, with a solid-state rod disposed within the cavity and surrounded by a cooling fluid flowing along the rod for cooling the rod.
- This laser has the advantage of uniform pumping, but the liquid cooling is problematic in various environmental conditions (like freezing).
- Another problem is the type of reflector that can be used to pump light, while enabling uniform pumping of the rod cross section.
- Specular reflectors are not able to produce the same level of uniformity of the pump radiation as diffuse reflectors.
- Hanson, et al, citation below disclose a three-bar diode array placed a small distance away from a large opening to a solid-state laser cavity.
- Aj er et al., citation below disclose a closely coupled side-pumping diode array which pumps the rod through a slit-like opening.
- the cavities disclosed by Hanson, et al. and Ajer, et al. include highly reflective inner surfaces, and the intensity distributions of the pumping diode radiation within the rods lack homogeneity.
- the pump light is absorbed by the rod and excites the laser ions.
- the pump-light that transverses the rod without absorption is redirected into it by the diffuse reflector.
- the reflector also has a shaped opening to redirect the pump light coming out at large angle into the rod, and serves as a good heat conductor to the heat sink.
- thermo electric cooler element as a conductive heat pump
- a side-pumped, diode-pumped solid-state laser cavity including a conductively cooled housing having an opening for pump radiation from a diode array in close proximity to a laser rod.
- the pump light is absorbed by the rod and excites the laser ions.
- the cavity includes a thin, diffuse reflector encircling the rod, having a shaped opening for the collection and redirection of the pump light into the rod, and a good heat conductor as the heat sink and heat conductor.
- the cavity can also include a split heat sink that inhibits the flow of heat from the pump diodes into the laser rod, and pre-formed air spacings designed to provide uniform temperature distribution around the laser rod.
- a side-pumped diode-pumped solid-state laser cavity includes a conductively cooled housing, having a solid-state, diffuse reflector surrounding the laser rod.
- the pump light passes through an opening in the diffuse reflector, into the rod in close proximity, and is absorbed by the rod and excites the laser ions.
- the pump-light that transverses the rod without absorption is redirected into the rod by the diffuse reflector.
- the laser rod is preferably conductively cooled.
- the reflector is preferably of diffuse type and placed as close to the rod as possible.
- the pump radiation preferably comes from one source, but still produces a circularly symmetrical intensity distribution inside the rod.
- Fig. 1 is a schematic, cross-sectional view of a side-pumped, diode-pumped solid-state laser cavity.
- Fig. 2 is a schematic, cross-sectional view of the rod surroundings in the side- pumped diode-pumped, solid-state laser cavity
- Fig. 3 is a schematic, cross-sectional view of the rod surroundings of the side- pumped diode-pumped solid-state laser cavity with emphasis on the entrance reflector.
- Fig. 1 there is shown a schematic, cross-sectional view of a side-pumped, diode-pumped solid-state laser cavity.
- a diode laser stack 2 embedded in a heat-conducting cladding 4 emits pump light through a lower opening 6 into a laser rod 8, which can be, e.g., Nd:YAG or any other solid-state crystal-doped with rare earth ions.
- the rare earth ions, e.g., Nd are excited by the pump light and emit their typical radiation when needed.
- the laser rod 8 is surrounded by a ceramic diffuse reflector 10 having three roles. The first role is redirecting the pump light photons that pass through the laser rod 8 without being absorbed, or miss the rod geometrically.
- the second role of the ceramic diffuse reflector 10 is to conduct the heat dissipated into the rod 8 by the pump light 2 into a heat sink part 12, through which the heat is carried out to the external environment 14 via thermo electric cooler (TEC), 16.
- TEC thermo electric cooler
- This heat conduction is performed through a short distance of ceramic in the reflector 10 (e.g., 0.2 to 1 mm of alumina) and a longer path (e.g., 10 to 15 mm) in the heat sink 12, which can be made of a material (e.g., copper), having much higher thermal conductively than alumina.
- the third role of the ceramic diffuse reflector 10 is to redirect light from the stack 2 into the rod 8, as depicted in detail in Fig. 2.
- a copper or good heat- conducting spacer 18 formed as part of the combined rod-pump heat sink.
- the space 18 keeps the mechanical assembly rigid and isolates thermally the diode part, where it provides good optical proximity between the pump diodes 2 and the laser rod 8 while maintaining thermal isolation through a small (few hundred micrometers) spacing or gap 20. This isolation is desirable since most of the heat (about 50% of the input energy) is dissipated in the pump diode stack 2, and only a small portion in the rod 8 (about 10% of the input energy).
- Fig. 2 there is shown a schematic, cross-sectional view of the rod surroundings of the side-pumped diode-pumped, solid-state laser cavity.
- the light rays 26 leaving the lower exit of the diode stack 2 in large angle (which can be up to 40°) are redirected when impinging on the outer slit 22 of the ceramic diffuse reflector 10.
- the redirection is carried out by diffuse reflection at 22. Recalling that the thickness of the ceramic diffuse reflector 10 is 0.2 to 1 mm, the amount of light impinging on 22 is small.
- the gap 28 is empty (e.g., air, nitrogen or vacuum), and thus does not interfere in the optical path, needs no lenses or prisms for redirection and provides a good thermal barrier because only line edges of the ceramic diffuse reflector 10 touch the cladding 4, as depicted in Fig 2. Further tailoring of the temperature profile around the rod 8 is done by cutting (e.g. using wire spark erosion techniques) lines 24, straight or curved, according to heat flow simulations of the heat sink 12 and the rod 8 as a heat source.
- Fig. 3 is a schematic, cross-sectional view of the rod surroundings of the side- pumped diode-pumped solid-state laser cavity with a modified entrance reflector.
- the angle 30 is designed to accommodate the large angle output of the diode, at its external part, leading it mostly into the rod 8 using diffuse reflection of the area 22.
- the angle 30 is preferably less than the divergence angle of the diodes in the air space 28.
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Abstract
A side-pumped, diode-pumped solid-state laser cavity includes a conductively cooled housing having an opening for pump radiation from a diode array in close proximity to a laser rod. The pump light is absorbed by the rod and excites the laser ions. The cavity includes a thin, diffuse reflector encircling the rod, having a shaped opening for the collection and redirection of the pump light into the rod, and a good heat conductor as the heat sink and heat conductor. A split heat sink inhibits the flow of heat from the pump diodes into the laser rod, and pre-formed air spacings are designed to provide uniform temperature distribution around the laser rod.
Description
DIODE-PUMPED CAVITY
FIELD OF THE INVENTION
[0001] The present invention relates to side-pumped, diode-pumped solid-state lasers, and more particularly to a cavity for diode side pumping of solid-state laser rods as oscillators or amplifiers.
BACKGROUND OF THE INVENTION
[0002] Energetic diode-pumped lasers use laser diodes in various geometries, mostly arranged around the laser rod, performing side pumping perpendicular to the rod axis. The light emitted by the laser diodes enters perpendicular to the rod axis. The pump light is absorbed by the atoms in the laser rod, exciting the atoms, thus establishing an optical gain in the laser rod. The side pumping geometry allows a large excited cross-section of the laser rod as well as long rod pumping, facilitating large pumped volume and large energy storage and high-energy extraction as required.
[0003] The side-pumped, diode-pumped solid-state laser (side-pumped DPSSL) field , can be divided into sub-fields based on how the otherwise highly divergent, up to 40°, diode radiation is coupled into the laser rod. Some of these sub-fields include: (a) using optics such as a cylindrical lens or elliptical mirror, (b) using an optical waveguide such as a reflective cavity or fiber; and (c) closely coupling the diode(s) to the rod.
[0004] The side-pumped, diode-pumped solid-state laser (side-pumped DPSSL) field can be further divided into sub-fields based on how the heat, resulting from the method used to remove the part of the electric energy introduced into the cavity that is not transferred to laser light is removed. Some of these sub-fields include: (a) using liquid, circulating in and out of the cavity, where the excessive heat is convected away, (b) using gas, circulating in and out of the cavity, where the excessive heat is convected away, (c) using a solid-state structure, where the excessive heat is conducted away through the solid structure. Heat removal in most prior art arrangements and structures was performed using compressed gas or liquid coolants. Gas or liquid coolants limit the reliability of the laser system, since frequent preventive maintenance activity is required to address leaks of the coolant or degradation of its characteristics.
[0005] Japanese patent publication no. JP 5-259540 discloses a side-pumped DPSSL wherein the rod is disposed within a diffuse reflector or condenser. A diode array emits
radiation that enters the condenser for absorption by the rod via a narrow slit which guides the diode radiation toward the rod. A gel or liquid such as water surrounds the rod filling spacing between the rod and surrounding tube. Some light is absorbed in the liquid, scattered and absorbed by multiple reflections.
[0006] U.S. Patents Nos. 5,521,936, 5,033,058 and 6,026,109 disclose water-cooled solid-state lasers using closely coupled side-pumping diode arrays. The pumping laser diodes are disposed close to the rod in order that the rod remains in the path of the substantial portion of the divergent radiation, as it is not contemplated that rays missing the rod on the first pass will be subsequently redirected towards the rod to be absorbed on a second or later pass, the efficiency is reduced. U.S. Pat. No. 5,870,421 patent differs in that it discloses the use of side-pumping optical fibers, which add substantial manufacturing cost.
[0007] In addition, the alternative configurations described in U.S. Patents Nos. 5,521,936, 5,033,058 and 6,026,109 include a rod which is cooled with a water jacket enclosed a flow tube, with the diodes and reflector disposed outside the flow tube, similarly to JP 5-259540. Here, a disadvantage is that the wall thickness of the flow tube adds significant distance between the rod and reflector. In configurations using a diffuse reflector, this leads to increased losses of the pump light, resulting in reduced efficiency.
[0008] US Patent No. 6,608,852 describes a liquid-cooled side-pumped laser including an elongated diffuse reflector housing having an elongated cavity defined by a diffusely reflective cavity wall, with a solid-state rod disposed within the cavity and surrounded by a cooling fluid flowing along the rod for cooling the rod. This laser has the advantage of uniform pumping, but the liquid cooling is problematic in various environmental conditions (like freezing).
[0009] In the close-coupled arrangement described in U.S. Patent No. 5,774,488, the rod is enclosed in a heat-conducting specular reflector, and the pump radiation is introduced through a narrow slit in the reflector. This arrangement produces specular reflection, that causes non-uniform pumping of the rod cross section, and is complex to manufactures. Additionally, the specular reflector enhances the ASE (Amplified Spontaneous Emission) from the rod by providing parasitic laser paths. Additionally, any difference in thermal expansion of the rod and reflector may cause mechanical stress. Also, pump radiation from the diode must pass through a long narrow slit (channel) in the metal reflector, thus suffering multiple reflections and therefore extra losses.
[00010] Another problem is the type of reflector that can be used to pump light, while enabling uniform pumping of the rod cross section. Specular reflectors are not able to produce the same level of uniformity of the pump radiation as diffuse reflectors. For example, Hanson, et al, citation below, disclose a three-bar diode array placed a small distance away from a large opening to a solid-state laser cavity. Aj er et al., citation below, disclose a closely coupled side-pumping diode array which pumps the rod through a slit-like opening. The cavities disclosed by Hanson, et al. and Ajer, et al. include highly reflective inner surfaces, and the intensity distributions of the pumping diode radiation within the rods lack homogeneity.
[00011] Generally, pumping with a diode array from one direction can lead to a cylindrical intensity distribution (as shown, for example, in the paper by Hanson, et al.). This gives rise to a cylindrical thermal lens in the rod, which, in turn, results in an astigmatic output beam of the laser. To improve circularity, some of the mentioned references describe alternative arrangements which use pumping radiation from several (two or more) directions. The problem with this approach, however, is that laser diodes tend to age differently, which destroys the intensity balance over the lifetime of diodes.
[00012] In U.S. Patents Nos. 5,317,585 and 5,781,580, a transparent heat conductor is used, since the heat conductor of these designs has to be optically transparent to allow the diode light to enter the laser rod and at the same time conductively cool the rod. High optical transparency and high thermal conductivity properties are not readily found in one material (except in diamond which is extremely expensive and cannot be machined to the needed shapes), and thus the solution is not optimized for any of the parameters.
[00013] Other references are:
Walter Koechner, "Solid-state Laser Engineering", pp. 127-140, 709 (Springer series in optical sciences, v.l, Springer- Verlag, Berlin, Heidelberg, New York, 1996).
Frank Hanson and Delmar Haddock, "Laser diode side pumping of neodymium laser rods", Applied Optics, vol. 27, no. 1, 1988, pp. 80-83.
H. Ajer, et al., "Efficient diode-laser side-pumped TEMOO-mode Nd: YAG laser", Optics Letters, vol. 17, no. 24, 1992, pp. 1785-1787.
Jeffrey J. Kasinski, et al., "One Joule Output From a Diode Array Pumped Nd:YAG Laser with Side-pumped Rod Geometry", J. of Quantum Electronics, Vol. 28, No. 4 (April 1992).
D. Golla, et al., "300-W cw Diode Laser Side-pumped Nd: YAG Rod Laser", Optics Letters, Vol. 20, No. 10 (May 15, 1995).
Japanese Patent No. JP 5-259540.
U.S. Patents Nos. 5,774,488, 5,521,936, 5,033,058, 6,026,109, 5,870,421, 5,117,436, 5,572,541, 5,140,607, 4,945,544, 4,969,155, 5,875,206, 5,590,147, 3,683,296, 3,684,980, 3,821,663, 5,084,886, 5,661,738, 5,867,324, 5,963,363, 5,978,407, 5,661,738, 4,794,615, 5,623,510, 5,623,510, 3,222,615, 3,140,451, 3,663,893, 4,756,002, 4,755,002, 4,794,615, 4,872,177, 5,050,173, 5,317,585, 5,349,600, 5,455,838, 5,488,626, 5,521,932, 5,590,147, 5,627,848, 5,627,850, 5,638,388, 5,651,020, 5,838,712, 5,875,206, 5,677,920, 5,781,580, 5,905,745, 5,909,306, 5,930,030, 5,987,049, 5,995,523, 6,009,114, and 6,002,695.
German Patent No. DE 689 15 421 T2.
Canadian Patent No. 1,303,198.
French Patents Nos. 1,379,289 and 2,592,530.
Fujikawa, et al., "High-Power High-Efficient Diode-Side-Pumped Nd: YAG Laser", Trends in Optics and Photonics, TOPS Volume X, Advanced Solid-state Lasers, Pollock and Bosenberg, eds., (Topical Meeting, Orlando, FIa., Jan. 27-29, 1997).
R. V. Pole, IBM Technical Disclosure Bulletin, "Active Optical Imaging System", Vol. 7, No. 12 (May 1965).
Devlin, et al., "Composite Rod Optical Masers", Applied Optics, Vol. 1, No. 1 (January 1962).
Goldberg et al., "V-groove side-pumped 1.5 urn fibre amplifier," Electronics Letters, Vol. 33, No. 25, Dec. 4, 1997).
Welford, et al., "Efficient TEMOO -mode operation of a laser diode side-pumped Nd:YAG laser, Optics Letters, Vol. 16, No. 23 (Dec. 1, 1991).
Welford, et al., "Observation of Enhanced Thermal Lensing Due to Near-Gaussian Pump Energy Deposition in a Laser Diode Side-Pumped Nd: YAG Laser," IEEE Journal of Quantum Electronics, Vol. 28, No. 4 (Apr. 4, 1992).
Walker, et al., "Efficient continuous-wave TEMOO operation of a transversely diode- pumped Nd: YAG laser," Optics Letters, Vol. 19, No. 14 (JuI. 15, 1994).
Comaskey et al., "24-W average power at 0.537 um from an externally frequency- doubled Q-switched diode-pumped ND:YOS laser oscillator," Applied Optics, Vol. 33, No. 27 (Sep. 20, 1994).
[00014] Novel solutions allowing efficient side pumping, uniform pump distribution across the rod, pumping with a single source and one side and good conductive cooling are needed and are presented in this invention. The optimization of the mentioned parameters results in smaller volumes and weight as well.
SUMMARY OF THE INVENTION
[00015] It is therefore a broad object of the present invention to provide a side- pumped, diode-pumped solid-state laser cavity including a conductively cooled housing, having an opening for the pump radiation emerging from a diode array in close proximity and having a solid-state, diffuse reflector surrounding the laser rod. The pump light is absorbed by the rod and excites the laser ions. The pump-light that transverses the rod without absorption is redirected into it by the diffuse reflector.
[00016] It is a further object of the present invention to provide a side-pumped diode- pumped solid-state laser cavity where the rod is encircled by a thin, diffuse reflector that functions to redirect the pump-light that transverses the rod without absorption back into the rod. The reflector also has a shaped opening to redirect the pump light coming out at large angle into the rod, and serves as a good heat conductor to the heat sink.
[00017] It is still a further object of the present invention to provide a side-pumped, diode-pumped solid-state laser cavity including a split heat sink which significantly reduces the flow of heat from the pump diodes into the laser rod through either the diode itself or the common heat sink.
[00018] It is still a further object of the present invention to provide a side-pumped, diode-pumped solid-state laser cavity including a thermo electric cooler element as a conductive heat pump.
[00019] It is still a further object of the present invention to provide a side-pumped, diode-pumped solid-state laser cavity is including a pre-formed air spacing designed to provide uniform temperature distribution around the laser rod.
[00020] It is still a further object of the present invention to provide a diode pumping cavity for a laser system which efficiently couples the diode light into the laser rod directly, without using focusing lenses, prisms or windows, using only free air transmission and side redirection of large-angle pump beams.
[00021] It is still a further object of the present invention to provide very efficient conductive cooling of the laser rod. Conductive cooling is carried out through a thin ceramic heat conductor, into a very good metallic heat conductor. The ceramic heat conductor is positioned opposite the diode array, and is also used as a light redirector. The unabsorbed diode light is redirected by the ceramic material back into the laser rod.
[00022] It is still a further object of the present invention to provide enhancement of the radially symmetrical heat dissipation from the laser rod by adjusting the shape of the thermal conductor and using machined air spacings to control heat conduction.
[00023] It is still a further object of the present invention to provide optical proximity between pump diodes and a laser rod while maintaining thermal isolation, since most of the heat (about 50% of the input energy) is dissipated in the pump diode stack, and only a small portion in the rod (about 10% of the input energy).
[00024] A side-pumped, diode-pumped solid-state laser cavity is provided including a conductively cooled housing having an opening for pump radiation from a diode array in close proximity to a laser rod. The pump light is absorbed by the rod and excites the laser ions. The cavity includes a thin, diffuse reflector encircling the rod, having a shaped opening for the collection and redirection of the pump light into the rod, and a good heat conductor as the heat sink and heat conductor.
[00025] The cavity can also include a split heat sink that inhibits the flow of heat from the pump diodes into the laser rod, and pre-formed air spacings designed to provide uniform temperature distribution around the laser rod.
[00026] In one embodiment, a side-pumped diode-pumped solid-state laser cavity includes a conductively cooled housing, having a solid-state, diffuse reflector surrounding the laser rod. The pump light passes through an opening in the diffuse reflector, into the rod in close proximity, and is absorbed by the rod and excites the laser ions. The pump-light that transverses the rod without absorption is redirected into the rod by the diffuse reflector.
[00027] The laser rod is preferably conductively cooled. The reflector is preferably of diffuse type and placed as close to the rod as possible. The pump radiation preferably comes from one source, but still produces a circularly symmetrical intensity distribution inside the rod.
[00028] The higher the optical pumping efficiency of the laser rod, the less the thermal loading of the laser rod, resulting in a higher optical quality of the rod and a better output
beam quality. In addition, high-efficiency pumping reduces the number of diode arrays required to obtain a specified laser energy output, reducing further the size and the cost of the laser system. Smaller size, less input power and better laser output quality can be achieved.
[00029] High pumping efficiency is achieved by good optical coupling of the diode light into the laser rod and adequate absorption of the diode light in the laser rod. The angular divergence of the diode light in the transverse plane is about 40°, and thus, a substantial fraction of the light will miss the laser rod. In addition, another fraction of the light will be lost due to Fresnel reflections caused by the high index of refraction and small diameter of the laser rod. Any focusing lenses which can be used to focus the diode light into the laser rod will cause light losses, due to limited lens aperture and optical lens coatings. For example, in U.S. Patent Nos. 4,755,002 and 4,969,155, due to the mentioned problems of coupling linear diode arrays into the laser rod, focusing lenses were utilized perceptively, reducing the optical coupling efficiency.
BRIEF DESCRIPTION OF THE DRAWINGS
[00030] The invention will now be described in connection with certain preferred embodiments and with reference to the following illustrative figures so that it may be more fully understood. The particulars shown are by way of example and for purposes of illustrative discussion of the preferred embodiments of the present invention only, and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of the invention. In this regard, no attempt is made to show structural details of the invention in more detail than is necessary for a fundamental understanding of the invention, the description taken with the drawings making apparent to those skilled in the art how the several forms of the invention may be embodied in practice.
In the drawings:
[00031] Fig. 1 is a schematic, cross-sectional view of a side-pumped, diode-pumped solid-state laser cavity.
[00032] Fig. 2 is a schematic, cross-sectional view of the rod surroundings in the side- pumped diode-pumped, solid-state laser cavity
[00033] Fig. 3 is a schematic, cross-sectional view of the rod surroundings of the side- pumped diode-pumped solid-state laser cavity with emphasis on the entrance reflector.
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[00034] Referring now to Fig. 1, there is shown a schematic, cross-sectional view of a side-pumped, diode-pumped solid-state laser cavity. A diode laser stack 2 embedded in a heat-conducting cladding 4 emits pump light through a lower opening 6 into a laser rod 8, which can be, e.g., Nd:YAG or any other solid-state crystal-doped with rare earth ions. The rare earth ions, e.g., Nd, are excited by the pump light and emit their typical radiation when needed. The laser rod 8 is surrounded by a ceramic diffuse reflector 10 having three roles. The first role is redirecting the pump light photons that pass through the laser rod 8 without being absorbed, or miss the rod geometrically. These photons are redirected in a diffuse way and go back and forth until absorbed in the rod 8. Regular ceramics like alumina (Al oxide) or Zr oxide have very high reflection coefficients, (higher than metal coatings such as gold or silver) and are very efficient in preserving the photons inside the rod volume. The second role of the ceramic diffuse reflector 10 is to conduct the heat dissipated into the rod 8 by the pump light 2 into a heat sink part 12, through which the heat is carried out to the external environment 14 via thermo electric cooler (TEC), 16. This heat conduction is performed through a short distance of ceramic in the reflector 10 (e.g., 0.2 to 1 mm of alumina) and a longer path (e.g., 10 to 15 mm) in the heat sink 12, which can be made of a material (e.g., copper), having much higher thermal conductively than alumina. The third role of the ceramic diffuse reflector 10 is to redirect light from the stack 2 into the rod 8, as depicted in detail in Fig. 2. Between the diode cladding 4 and the TEC 16 is a copper or good heat- conducting spacer 18 formed as part of the combined rod-pump heat sink. The space 18 keeps the mechanical assembly rigid and isolates thermally the diode part, where it provides good optical proximity between the pump diodes 2 and the laser rod 8 while maintaining thermal isolation through a small (few hundred micrometers) spacing or gap 20. This isolation is desirable since most of the heat (about 50% of the input energy) is dissipated in the pump diode stack 2, and only a small portion in the rod 8 (about 10% of the input energy).
[00035] In Fig. 2, there is shown a schematic, cross-sectional view of the rod surroundings of the side-pumped diode-pumped, solid-state laser cavity. Here the light rays 26 leaving the lower exit of the diode stack 2 in large angle (which can be up to 40°) are redirected when impinging on the outer slit 22 of the ceramic diffuse reflector 10. The redirection is carried out by diffuse reflection at 22. Recalling that the thickness of the ceramic diffuse reflector 10 is 0.2 to 1 mm, the amount of light impinging on 22 is small. The gap 28 is empty (e.g., air, nitrogen or vacuum), and thus does not interfere in the optical path,
needs no lenses or prisms for redirection and provides a good thermal barrier because only line edges of the ceramic diffuse reflector 10 touch the cladding 4, as depicted in Fig 2. Further tailoring of the temperature profile around the rod 8 is done by cutting (e.g. using wire spark erosion techniques) lines 24, straight or curved, according to heat flow simulations of the heat sink 12 and the rod 8 as a heat source.
[00036] Fig. 3 is a schematic, cross-sectional view of the rod surroundings of the side- pumped diode-pumped solid-state laser cavity with a modified entrance reflector. Here the angle 30 is designed to accommodate the large angle output of the diode, at its external part, leading it mostly into the rod 8 using diffuse reflection of the area 22. The angle 30 is preferably less than the divergence angle of the diodes in the air space 28.
[00037] It will be evident to those skilled in the art that the invention is not limited to the details of the foregoing described and illustrated embodiments and that the present invention may be embodied in other specific forms without departing from the spirit or essential attributes thereof. The present embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all changes, which come within the meaning and range of equivalency of the claims, are therefore intended to be embraced therein.
Claims
1. A side-pumped, diode-pumped solid-state laser cavity comprising at least one pump laser diode, a laser rod, a conductively cooled housing, having an opening for pump radiation from said pump laser diode, and a solid-state, diffuse reflector surrounding the laser rod.
2. A side-pumped diode-pumped solid-state laser cavity as in claim 1, where the rod is encircled by a thin, diffuse reflector for redirecting the pump-light that transverses the rod without absorption back into the rod, redirecting the pump light coming out of the pump laser diode at a large angle into the rod, and serving as a good heat conductor to a heat sink.
3. A side-pumped, diode-pumped solid-state laser cavity as in claim 1, including a split heat sink which inhibits the flow of heat from the pump laser diode into the laser rod.
4. A side-pumped, diode-pumped solid-state laser cavity as in claim 1, including a thermo electric cooler element as a conductive heat pump.
5. A side-pumped, diode-pumped solid-state laser cavity as in claim 1, including a pre-formed empty space designed to provide uniform temperature distribution around the laser rod.
6. A side-pumped, diode-pumped solid-state laser cavity as in claim 1, where efficient coupling of light from the pump laser diode into the laser rod is done directly, without using focusing lenses, prisms or windows, using only free space transmission and side, angled, diffuse or specular, redirection of large angle pump beams.
7 A side-pumped diode-pumped solid-state laser cavity as in claim 1, where very efficient conductive cooling is carried out through a thin ceramic thermal conductor, into a metallic heat conductor.
8. A side-pumped, diode-pumped solid-state laser cavity as in claim 7, where enhancement of the radially symmetrical heat dissipation from the laser rod is done by adjusting the shape of the thermal conductor and using machined air spacings to control heat conduction.
9. A side-pumped diode-pumped solid-state laser cavity as in claim 1, having optical proximity between pump diodes and laser rod while maintaining thermal isolation.
10. A method for diode side pumping of solid-state laser rods, comprising side pumping light from at least one pump laser diode into a laser rod, and redirecting pump-light that traverses said rod without absorption back into said rod with a diffuse reflector
11. The method of claim 10 which includes redirecting the pump light coming out of the pump laser diode at a large angle into the rod.
12. The method of claim 10 which includes inhibiting the flow of heat from the pump laser diode into the laser rod.
13. The method of claim 10 which includes a thermo electric cooler element as a conductive heat pump.
14. The method of claim 10 which includes providing uniform temperature distribution around the laser rod.
15. The method of claim 10 wherein efficient coupling of light from the pump laser diode into the laser rod is done directly, without using focusing lenses, prisms or windows, using only free space transmission and side, angled, diffuse or specular, redirection of large angle pump beams.
16 The method of claim 10 which includes conductive cooling carried out through a thin ceramic thermal conductor, into a metallic heat conductor.
17. The method of claim 16 which includes adjusting the shape of the thermal conductor to enhance the radially symmetrical heat dissipation from the laser rod.
18. The method of claim 10 which includes having optical proximity between pump diodes and laser rod while maintaining thermal isolation.
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
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EP06842370A EP1974424B1 (en) | 2005-12-28 | 2006-12-20 | Diode pumped cavity |
US12/159,412 US20090304040A1 (en) | 2005-12-28 | 2006-12-20 | Diode-pumped cavity |
US13/353,828 US8270443B2 (en) | 2005-12-28 | 2012-01-19 | Diode-pumped cavity |
Applications Claiming Priority (2)
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US75437105P | 2005-12-28 | 2005-12-28 | |
US60/754,371 | 2005-12-28 |
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US12/159,412 A-371-Of-International US20090304040A1 (en) | 2005-12-28 | 2006-12-20 | Diode-pumped cavity |
US13/353,828 Continuation US8270443B2 (en) | 2005-12-28 | 2012-01-19 | Diode-pumped cavity |
Publications (2)
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WO2007074400A2 true WO2007074400A2 (en) | 2007-07-05 |
WO2007074400A3 WO2007074400A3 (en) | 2009-04-16 |
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PCT/IB2006/003942 WO2007074400A2 (en) | 2005-12-28 | 2006-12-20 | Diode-pumped cavity |
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US (2) | US20090304040A1 (en) |
EP (1) | EP1974424B1 (en) |
WO (1) | WO2007074400A2 (en) |
Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
FR2936109A1 (en) * | 2008-09-17 | 2010-03-19 | Thales Sa | OPTICAL PUMPING STRUCTURE. |
WO2010145855A1 (en) * | 2009-06-15 | 2010-12-23 | Pantec Biosolutions Ag | Monolithic, side pumped solid-state laser and method for operating the same |
WO2010145802A1 (en) * | 2009-06-15 | 2010-12-23 | Pantec Biosolutions Ag | A monolithic, side pumped solid-state laser and applications thereof |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20110134946A1 (en) * | 2005-03-01 | 2011-06-09 | Elbit Systems Electro-Optics Elop Ltd. | Lengthening the path of a laser beam in a monolothic solid state laser apparatus |
US20110134945A1 (en) * | 2005-03-01 | 2011-06-09 | Elbit Systems Electro-Optics Elop Ltd. | Lengthening the path of a pump beam in a monolothic solid state laser apparatus |
DE102007058360B3 (en) * | 2007-12-03 | 2009-04-30 | Heraeus Quarzglas Gmbh & Co. Kg | Method of making a raised mark on a glass article |
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Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
FR1379289A (en) | 1962-12-28 | 1964-11-20 | Ass Elect Ind | High power laser |
FR2592530A1 (en) | 1985-12-28 | 1987-07-03 | Schott Glaswerke | HIGH POWER SOLID BODY LASER BARS |
CA1303198C (en) | 1988-03-29 | 1992-06-09 | Haruo Tanaka | Solid-state laser |
JPH05259540A (en) | 1992-03-10 | 1993-10-08 | Mitsubishi Electric Corp | Light excitation solid-state laser |
DE68915421T2 (en) | 1989-01-04 | 1994-09-01 | Laserdot | Optically pumped rod laser with narrow pump source emission area. |
Family Cites Families (60)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3140451A (en) * | 1960-10-25 | 1964-07-07 | Bell Telephone Labor Inc | Optical maser device |
US3222615A (en) * | 1961-10-10 | 1965-12-07 | Ibm | Cylindrical lasers utilizing internal reflection techniques |
US3663893A (en) * | 1970-07-13 | 1972-05-16 | Bell Telephone Labor Inc | High-efficiency diode-pumped lasers |
US3683296A (en) * | 1970-10-13 | 1972-08-08 | Texas Instruments Inc | High efficiency laser cavity |
US3684980A (en) * | 1970-10-13 | 1972-08-15 | Texas Instruments Inc | High effective absorption coefficient solid state laser rods |
US3821663A (en) * | 1973-01-15 | 1974-06-28 | Motorola Inc | Integral reflecting cavity semiconductor pumped laser |
US4872177A (en) * | 1985-05-01 | 1989-10-03 | Spectra-Physics | Laser diode pumped solid state laser |
GB8528917D0 (en) * | 1985-11-23 | 1986-01-02 | Minnovation Ltd | Mining machine |
US4756002A (en) * | 1986-06-23 | 1988-07-05 | Mcdonnell Douglas Corporation | Laser diode coupler |
US4794615A (en) * | 1987-06-12 | 1988-12-27 | Spectra Diode Laboratories, Inc. | End and side pumped laser |
JP2664392B2 (en) * | 1988-02-10 | 1997-10-15 | 三菱電機株式会社 | Laser device |
GB2215906B (en) * | 1988-02-10 | 1992-09-16 | Mitsubishi Electric Corp | Laser device |
US5050173A (en) * | 1988-05-03 | 1991-09-17 | Phased Array Lasers Pty Ltd. | Looped, phased array laser oscillator |
US4969155A (en) * | 1989-10-10 | 1990-11-06 | Hughes Aircraft Company | Integrating laser diode pumped laser apparatus |
US5159605A (en) * | 1990-01-19 | 1992-10-27 | Mitsubishi Denki Kabushiki Kaisha | Semiconductor-laser-pumped, solid-state laser |
US5117436A (en) * | 1990-03-29 | 1992-05-26 | The United States Of America As Represented By The Secretary Of The Navy | Optics for diode array transverse pumped laser rod |
US5084886A (en) * | 1990-10-01 | 1992-01-28 | Laser Diode, Inc. | Side-pumped laser system with independent heat controls |
US5488626A (en) * | 1991-01-14 | 1996-01-30 | Light Age, Inc. | Method of and apparatus for pumping of transition metal ion containing solid state lasers using diode laser sources |
US5164947A (en) * | 1991-02-28 | 1992-11-17 | Amoco Corporation | Single-frequency, frequency doubled laser |
US5140607A (en) * | 1991-05-23 | 1992-08-18 | Laser Diode, Inc. | Side-pumped laser with angled diode pumps |
US5317585A (en) * | 1992-08-17 | 1994-05-31 | Hughes Aircraft Company | Laser reflecting cavity with ASE suppression and heat removal |
JPH06104515A (en) * | 1992-09-21 | 1994-04-15 | Kokusai Denshin Denwa Co Ltd <Kdd> | Solid state laser |
US5455838A (en) * | 1993-11-15 | 1995-10-03 | Hoya Corporation | Side pumping arrangement |
US5561547A (en) * | 1994-02-04 | 1996-10-01 | Spectra-Physics Lasers, Inc. | Thermal lens of controlled ellipicity |
US5651020A (en) * | 1994-02-04 | 1997-07-22 | Spectra-Physics Lasers, Inc. | Confocal-to-concentric diode pumped laser |
US5638388A (en) * | 1995-02-04 | 1997-06-10 | Spectra-Physics Lasers, Inc. | Diode pumped, multi axial mode intracavity doubled laser |
US5521932A (en) * | 1994-05-03 | 1996-05-28 | Light Solutions Corporation | Scalable side-pumped solid-state laser |
US5774488A (en) * | 1994-06-30 | 1998-06-30 | Lightwave Electronics Corporation | Solid-state laser with trapped pump light |
US5530709A (en) * | 1994-09-06 | 1996-06-25 | Sdl, Inc. | Double-clad upconversion fiber laser |
US5572541A (en) * | 1994-10-13 | 1996-11-05 | Coherent Technologies, Inc. | Laser rod assembly for side pumped lasers |
US5590147A (en) * | 1994-12-19 | 1996-12-31 | The Morgan Curcible Company Plc | Side-pumped lasers |
JPH08181368A (en) * | 1994-12-22 | 1996-07-12 | Mitsubishi Electric Corp | Solid state laser amplifier and solid state laser device |
US5521936A (en) * | 1995-02-01 | 1996-05-28 | Paradigm Lasers, Inc. | Radial laser diode array |
US5627850A (en) * | 1995-03-20 | 1997-05-06 | Paradigm Lasers, Inc. | Laser diode array |
DE19515635C2 (en) * | 1995-04-28 | 1999-01-14 | Jenoptik Jena Gmbh | Laser diode pumped high-performance solid-state laser |
US5623510A (en) * | 1995-05-08 | 1997-04-22 | The United States Of America As Represented By The United States Department Of Energy | Tunable, diode side-pumped Er: YAG laser |
US5627848A (en) * | 1995-09-05 | 1997-05-06 | Imra America, Inc. | Apparatus for producing femtosecond and picosecond pulses from modelocked fiber lasers cladding pumped with broad area diode laser arrays |
US5619522A (en) * | 1995-09-07 | 1997-04-08 | Dube; George | Laser pump cavity |
US5796770A (en) * | 1995-10-11 | 1998-08-18 | Raytheon Company | Compact diode pumped solid state laser |
IL116106A (en) * | 1995-11-23 | 1999-07-14 | Elop Electrooptics Ind Ltd | Diode pumping module |
US5867305A (en) * | 1996-01-19 | 1999-02-02 | Sdl, Inc. | Optical amplifier with high energy levels systems providing high peak powers |
US5909306A (en) * | 1996-02-23 | 1999-06-01 | President And Fellows Of Harvard College | Solid-state spectrally-pure linearly-polarized pulsed fiber amplifier laser system useful for ultraviolet radiation generation |
JPH09260754A (en) | 1996-03-27 | 1997-10-03 | Mitsubishi Electric Corp | Semiconductor laser exciting solid state laser amplifier and semiconductor laser exciting solid state laser |
US6002695A (en) * | 1996-05-31 | 1999-12-14 | Dpss Lasers, Inc. | High efficiency high repetition rate, intra-cavity tripled diode pumped solid state laser |
US5875206A (en) * | 1996-09-10 | 1999-02-23 | Mitsubishi Chemical America, Inc. | Laser diode pumped solid state laser, printer and method using same |
US5790303A (en) * | 1997-01-23 | 1998-08-04 | Positive Light, Inc. | System for amplifying an optical pulse using a diode-pumped, Q-switched, intracavity-doubled laser to pump an optical amplifier |
US5867324A (en) * | 1997-01-28 | 1999-02-02 | Lightwave Electronics Corp. | Side-pumped laser with shaped laser beam |
US5905745A (en) * | 1997-03-17 | 1999-05-18 | Sdl, Inc. | Noise suppression in cladding pumped fiber lasers |
US5978407A (en) * | 1997-03-31 | 1999-11-02 | United States Enrichment Corporation | Compact and highly efficient laser pump cavity |
US5870421A (en) * | 1997-05-12 | 1999-02-09 | Dahm; Jonathan S. | Short pulsewidth, high pulse repetition frequency laser system |
US5905748A (en) * | 1997-05-27 | 1999-05-18 | Uniphase Corporation | Single mode laser and method suitable for use in frequency multiplied |
US6026109A (en) * | 1998-01-22 | 2000-02-15 | Cutting Edge Optronics, Inc. | High-power, solid-state laser in a cylindrical package |
US6347101B1 (en) * | 1998-04-16 | 2002-02-12 | 3D Systems, Inc. | Laser with absorption optimized pumping of a gain medium |
US5987049A (en) * | 1998-04-24 | 1999-11-16 | Time-Bandwidth Products Ag | Mode locked solid-state laser pumped by a non-diffraction-limited pumping source and method for generating pulsed laser radiation by pumping with a non-diffraction-limited pumping beam |
DE19854004A1 (en) * | 1998-11-18 | 2000-05-31 | Jenoptik Jena Gmbh | Solid-state laser with monolithic pump cavity |
US6608852B2 (en) * | 2000-08-25 | 2003-08-19 | Lameda Physik Ag | Gain module for diode-pumped solid state laser and amplifier |
IL149014A0 (en) * | 2002-04-07 | 2002-11-10 | Israel Atomic Energy Comm | Diamond-cooled solid state lasers |
FR2853146B1 (en) | 2003-03-28 | 2007-06-22 | Thales Sa | OPTICAL PUMPING STRUCTURE OF AN AMPLIFIER MEDIUM |
US7729392B2 (en) * | 2005-01-28 | 2010-06-01 | Scientific Materials Corporation | Monoblock laser with reflective substrate |
US7430231B2 (en) * | 2005-04-29 | 2008-09-30 | Ningyi Luo | Vertical cavity surface emitting laser (VCSEL) arrays pumped solid-state lasers |
-
2006
- 2006-12-20 US US12/159,412 patent/US20090304040A1/en not_active Abandoned
- 2006-12-20 WO PCT/IB2006/003942 patent/WO2007074400A2/en active Application Filing
- 2006-12-20 EP EP06842370A patent/EP1974424B1/en not_active Not-in-force
-
2012
- 2012-01-19 US US13/353,828 patent/US8270443B2/en active Active
Patent Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
FR1379289A (en) | 1962-12-28 | 1964-11-20 | Ass Elect Ind | High power laser |
FR2592530A1 (en) | 1985-12-28 | 1987-07-03 | Schott Glaswerke | HIGH POWER SOLID BODY LASER BARS |
CA1303198C (en) | 1988-03-29 | 1992-06-09 | Haruo Tanaka | Solid-state laser |
DE68915421T2 (en) | 1989-01-04 | 1994-09-01 | Laserdot | Optically pumped rod laser with narrow pump source emission area. |
JPH05259540A (en) | 1992-03-10 | 1993-10-08 | Mitsubishi Electric Corp | Light excitation solid-state laser |
Non-Patent Citations (10)
Title |
---|
COMASKEY ET AL.: "24-W average power at 0.537 um from an externally frequency- doubled Q-switched diode-pumped ND:YOS laser oscillator", APPLIED OPTICS, vol. 33, no. 27, 20 September 1994 (1994-09-20) |
D. GOLLA ET AL.: "300-W cw Diode Laser Side-pumped Nd:YAG Rod Laser", OPTICS LETTERS, vol. 20, no. 10, 15 May 1995 (1995-05-15) |
DEVLIN ET AL.: "Composite Rod Optical Masers", APPLIED OPTICS, vol. 1, no. 1, January 1962 (1962-01-01) |
FUJIKAWA ET AL.: "Trends in Optics and Photonics, TOPS Volume X, Advanced Solid-state Lasers", 27 January 1997, article "High-Power High-Efficient Diode-Side-Pumped Nd: YAG Laser" |
GOLDBERG ET AL.: "V-groove side-pumped 1.5 um fibre amplifier", ELECTRONICS LETTERS, vol. 33, no. 25, 4 December 1997 (1997-12-04) |
R. V. POLE: "Active Optical Imaging System", IBM TECHNICAL DISCLOSURE BULLETIN, vol. 7, no. 12, May 1965 (1965-05-01) |
See also references of EP1974424A4 |
WALKER ET AL.: "Efficient continuous-wave TEMOO operation of a transversely diode-pumped Nd:YAG laser", OPTICS LETTERS, vol. 19, no. 14, 15 July 1994 (1994-07-15) |
WELFORD ET AL.: "Efficient TEMOO -mode operation of a laser diode side-pumped Nd:YAG laser", OPTICS LETTERS, vol. 16, no. 23, 1 December 1991 (1991-12-01) |
WELFORD ET AL.: "Observation of Enhanced Thermal Lensing Due to Near-Gaussian Pump Energy Deposition in a Laser Diode Side-Pumped Nd:YAG Laser", IEEE JOURNAL OF QUANTUM ELECTRONICS, vol. 28, no. 4, 4 April 1992 (1992-04-04) |
Cited By (8)
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FR2936109A1 (en) * | 2008-09-17 | 2010-03-19 | Thales Sa | OPTICAL PUMPING STRUCTURE. |
WO2010031606A1 (en) * | 2008-09-17 | 2010-03-25 | Thales | Optical pumping structure |
JP2012503302A (en) * | 2008-09-17 | 2012-02-02 | テールズ | Optical pumping structure |
US9343866B2 (en) | 2008-09-17 | 2016-05-17 | Thales | Optical pumping structure |
WO2010145855A1 (en) * | 2009-06-15 | 2010-12-23 | Pantec Biosolutions Ag | Monolithic, side pumped solid-state laser and method for operating the same |
WO2010145802A1 (en) * | 2009-06-15 | 2010-12-23 | Pantec Biosolutions Ag | A monolithic, side pumped solid-state laser and applications thereof |
JP2012530364A (en) * | 2009-06-15 | 2012-11-29 | パンテック バイオソリューションズ アクチェンゲゼルシャフト | Side-pumped monolithic solid-state laser and its application |
US9368931B2 (en) | 2009-06-15 | 2016-06-14 | Pantec Biosolutions Ag | Monolithic, side pumped solid-state laser and applications thereof |
Also Published As
Publication number | Publication date |
---|---|
EP1974424B1 (en) | 2013-02-20 |
US20120120975A1 (en) | 2012-05-17 |
WO2007074400A3 (en) | 2009-04-16 |
EP1974424A4 (en) | 2009-12-23 |
US20090304040A1 (en) | 2009-12-10 |
US8270443B2 (en) | 2012-09-18 |
EP1974424A2 (en) | 2008-10-01 |
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