Disc-shaped Patents (Class 372/67)
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Patent number: 12142893Abstract: In some implementations, a thermally-controlled photonic structure may include a suspended region that is suspended over a substrate; a plurality of bridge elements connected to the suspended region and configured to suspend the suspended region over the substrate, where a plurality of openings are defined between the plurality of bridge elements; and at least one heater element having a modulated width disposed on the suspended region. The at least one heater element having the modulated width may include at least one section of a greater width and at least one section of a lesser width. The at least one section of the greater width may be in alignment with an opening of the plurality of openings and the at least one section of the lesser width may be in alignment with a bridge element of the plurality of bridge elements.Type: GrantFiled: November 14, 2022Date of Patent: November 12, 2024Assignee: Lumentum Operations LLCInventors: Shibnath Pathak, Duanhua Kong, Michael C. Larson, Amit Mizrahi
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Patent number: 11973304Abstract: A method, apparatus, and system for adjusting the phase noise of a laser.Type: GrantFiled: September 10, 2020Date of Patent: April 30, 2024Assignee: Acacia Communications, Inc.Inventors: Xue Huang, Christopher Doerr
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Patent number: 11881677Abstract: A laser light source includes: a resonance unit with a light emitter; and an optical negative feedback unit. The resonance unit includes: a first waveguide; a first reflector to input the reflected light to the first waveguide; a second waveguide; a second reflector connected to the second waveguide; and a ring resonator between the first waveguide and the second waveguide. The light from the first reflector is blocked from the ring resonator and partially transmitted to a first end of the first waveguide opposite to a second end connected to the light emitter and the first reflector. The optical negative feedback unit includes: a third waveguide to which the light transmitted to the first end of the first waveguide is inputted; and a third reflector connected to the third waveguide. The light from the third reflector is inputted to the first waveguide via the third waveguide.Type: GrantFiled: March 11, 2021Date of Patent: January 23, 2024Assignees: DENSO CORPORATION, TOHOKU UNIVERSITY, WASEDA UNIVERSITYInventors: Taku Suzuki, Masashige Sato, Hiroshi Yasaka, Nobuhide Yokota, Tomohiro Kita
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Patent number: 11594858Abstract: A high Q whispering gallery mode resonator with ion-implanted voids is described. A resonator device includes a resonator disk formed of an electrooptic material. The resonator disk includes a top surface, a bottom surface substantially parallel to the top surface, and a side structure between the top surface and the bottom surface. The side structure includes an axial surface along a perimeter of the resonator disk, where a midplane passes through the axial surface dividing the axial surface into symmetrical halves. The whispering gallery mode resonator disk includes voids localized at a particular depth from the top surface. At least one of the voids localized at the particular depth from the top surface is located at an outer extremity towards the perimeter of the resonator disk. The resonator device can further include a first electrode on the top surface and a second electrode on the bottom surface.Type: GrantFiled: June 30, 2021Date of Patent: February 28, 2023Assignee: GM CRUISE HOLDINGS LLCInventors: Scott Singer, Lutfollah Maleki, Ivan Grudinin, Sergio Alvarez, Vladimir Ilchenko
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Patent number: 10407340Abstract: A glass composition includes, as expressed by mol % in terms of oxide, from 15 to 40% of PbO, from 25 to 50% of MoO3, from 5 to 25% of P2O5 and from 7 to 15% of ZnO. A glass powder includes the glass composition. The glass powder has D50 of from 0.3 to 2.0 ?m, where D50 is a 50% particle diameter in a volume-based cumulative particle size distribution.Type: GrantFiled: November 7, 2018Date of Patent: September 10, 2019Assignee: AGC Inc.Inventor: Yosuke Nakakita
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Patent number: 9893486Abstract: An injection-seeded whispering gallery mode optical amplifier. The amplifier includes a micro or nanoscale whispering gallery mode resonator configured to amplify a whispering gallery mode therein via a gain medium separated from the whispering gallery mode resonator but within the evanescent field of the whispering gallery mode resonator. A pump stimulates the whispering gallery mode. A plasmonic surface couples power into the whispering gallery mode resonator.Type: GrantFiled: December 18, 2014Date of Patent: February 13, 2018Assignee: The Board of Trustees of the University of IllinoisInventors: J. Gary Eden, Manas Ranjan Gartia, Gang Logan Liu
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Patent number: 9698457Abstract: A WDM transmitter and/or receiver optoelectronic integrated circuit includes a plurality of microresonators and corresponding waveguides and couplers that are integrally formed on a substrate. For the WDM transmitter, the microresonators and waveguides are configured to generate a plurality of optical signals at different wavelengths. Each coupler includes a resonant cavity waveguide that is configured to transmit one optical signal from one waveguide to the output waveguide such that the plurality of optical signals are multiplexed on the output waveguide. For the WDM receiver, an input waveguide is configured to provide for propagation of a plurality of optical signals at different wavelengths. Each coupler includes a resonant cavity waveguide that is configured to transmit at least one optical signal from the input waveguide to one waveguide.Type: GrantFiled: July 28, 2014Date of Patent: July 4, 2017Assignees: THE UNIVERSITY OF CONNECTICUT, Opel Solar, Inc.Inventor: Geoff W. Taylor
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Patent number: 8897332Abstract: A laser cavity structure is disclosed which pertains to laser resonator geometries possessing circular symmetry, such as in the case of disk or spherical lasers. The disclosed invention utilizes a very-high finesse Bragg reflector (VHF-BR) thin film reflectors of many layer pairs of very small refractive index difference, the VHF-BR deposited on a surface of revolution, thereby forming an optical cavity. These dielectric reflectors are disposed in such a way as to allow selection of preferred low order modes and suppression of parasitic modes while allowing a high cavity Q factor for preferred modes. The invention disclosed, in its preferred embodiments, is seen as particularly useful in applications requiring high efficiency in the production and coupling of coherent radiation. This is accomplished in a cavity design that is relatively compact and economical.Type: GrantFiled: March 14, 2011Date of Patent: November 25, 2014Inventor: Donald B Hilliard
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Patent number: 8896915Abstract: The various laser architectures described herein provide increased gain of optical energy as well as compensation of optical phase distortions in a thin disk gain medium. An optical amplifier presented herein provides for scalable high energy extraction and gains based on a number of passes of the signal beam through a gain medium. Multiple, spatially separate, optical paths may also be passed through the same gain region to provide gain clearing by splitting off a small percentage of an output pulse and sending it back through the amplifier along a slightly different path. By clearing out the residual gain, uniform signal amplitudes can be obtained.Type: GrantFiled: November 24, 2010Date of Patent: November 25, 2014Assignee: Applied EnergeticsInventors: Paul B. Lundquist, Samvel Sarkisyan, Eric A. Wilson
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Patent number: 8891575Abstract: An optical resonator can include an optical feedback structure disposed on a substrate, and a composite including a matrix including a chromophore. The composite disposed on the substrate and in optical communication with the optical feedback structure. The chromophore can be a semiconductor nanocrystal. The resonator can provide laser emission when excited.Type: GrantFiled: November 29, 2005Date of Patent: November 18, 2014Assignee: Massachusetts Institute of TechnologyInventors: Preston T. Snee, Yin Thai Chan, Daniel G. Nocera, Moungi G. Bawendi
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Patent number: 8824522Abstract: A pump light assembly (6) for a disc laser (1), comprising: a focusing device, in particular a concave mirror (11), having a reflecting surface (10) for focusing a pump light beam (8) onto a laser-active medium (2), and a deflecting assembly for deflecting the pump light beam (8) between reflecting regions formed on the reflecting surface (10) and disposed in different angular regions about a central axis (12) of the reflecting surface (10). The deflecting device is configured to produce a deflection of the pump light beam (8) between in each case two of the reflecting regions with an optical path length (2 f+2 d1; 2 f+2 d2) that is greater than the optical path length (2f) in the case of telecentric imaging in order to compensate for a beam expansion of the pump light beam (8), caused by aberrations of the focusing device (11), in successive focusings onto the laser-active medium (2). The invention also relates to a disc laser (1) and to a method for pumping a laser-active medium (2).Type: GrantFiled: February 9, 2012Date of Patent: September 2, 2014Assignee: TRUMPF Laser GmbH + Co. KGInventors: Sven Schad, Alexander Killi
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Patent number: 8824521Abstract: A solid laser apparatus which includes: two reflection elements for forming an oscillator; a plate-shaped gain medium being disposed between the two reflection elements, thereby augmenting a stimulated emission light in a thickness-wise direction; a doughnut- or deformed-doughnut-type planar waveguide being disposed so as to make an inner peripheral face thereof come in contact with an outer peripheral face of the plate-shaped gain medium; and a plurality of excited-light sources being directed in five or more directions, the excited-light sources being coupled to an outer peripheral face of the doughnut- or deformed-doughnut-type planar waveguide so as to make excited lights propagate from the outer peripheral face of the doughnut- or deformed-doughnut-type planar waveguide to the plate-shaped gain medium.Type: GrantFiled: August 1, 2012Date of Patent: September 2, 2014Assignee: Inter-University Research Institute Corporation National Institutes of Natural SciencesInventors: Takunori Taira, Weipeng Kong
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Patent number: 8749880Abstract: The various laser architectures described herein provide increased gain of optical energy as well as compensation of optical phase distortions in a thin disk gain medium. An optical amplifier presented herein provides for scalable high energy extraction and gains based on a number of passes of the signal beam through a gain medium. Multiple, spatially separate, optical paths may also be passed through the same gain region to provide gain clearing by splitting off a small percentage of an output pulse and sending it back through the amplifier along a slightly different path. By clearing out the residual gain, uniform signal amplitudes can be obtained.Type: GrantFiled: November 24, 2010Date of Patent: June 10, 2014Assignee: Applied EnergeticsInventors: Samvel Sarkisyan, Paul B. Lundquist, Eric A. Wilson
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Patent number: 8660155Abstract: A laser system having a cooling apparatus is disclosed. The laser system includes a resonator, a gain medium and multiple heat-absorbing discs. The resonator is formed by a first mirror and a second mirror. The gain medium, which is contained within the resonator, is collectively formed by a group of gain medium segments. Each of the gain medium segments is preferably in the shape of a cylindrical disc. The heat-absorbing discs are interleavely disposed among the gain medium segments to provide face cooling for the gain medium segments during the operation of the laser system.Type: GrantFiled: February 3, 2006Date of Patent: February 25, 2014Assignee: BAE Systems Information and Electronics Systems Integration Inc.Inventor: Peter A. Ketteridge
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Patent number: 8559472Abstract: A solid state-gain medium is in the form of a thin disk backed by a reflective coating. A laser resonator is formed by the reflective coating and another mirror. Optical pump radiation is directed into the thin-disk gain-medium for energizing the gain-medium and generating a standing wave of fundamental-wavelength radiation in the resonator. The pump-radiation is directed into the gain-medium at an angle to the resonator axis and pump-radiation fringes are formed by interference between incident and reflected pump-radiation. The pump-radiation angle is selected such that the pump-radiation fringes are aligned with antinodes of the fundamental-wavelength standing wave.Type: GrantFiled: March 2, 2011Date of Patent: October 15, 2013Assignee: Coherent, Inc.Inventor: Andrea Caprara
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Patent number: 8514901Abstract: Embodiments of silicon-based thermal energy transfer apparatus for gain medium crystal of a laser system are provided. For a disk-shaped crystal, the apparatus includes a silicon-based manifold and a silicon-based cover element. For a rectangular cuboid-shaped gain medium crystal, the apparatus includes a first silicon-based manifold, a second silicon-based manifold, and first and second conduit elements coupled between the first and second manifolds. For a right circular cylinder-shaped gain medium crystal, the apparatus includes a first silicon-based manifold, a second silicon-based manifold, and first and second conduit elements coupled between the first and second manifolds.Type: GrantFiled: November 1, 2011Date of Patent: August 20, 2013Inventor: Gerald Ho Kim
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Patent number: 8509281Abstract: The different advantageous embodiments provide an apparatus and method comprising a substrate configured to increase an intensity of light at a desired wavelength. The substrate has a front side, a back side, and an outer edge. The substrate is configured to reflect the light received on the front side of the substrate. The substrate comprises ceramic. The substrate comprises a plurality of sections. The method and apparatus also comprise a material configured to attenuate the light passing between the plurality of sections. The material surrounds an edge of each section of the plurality of sections. The apparatus and method also comprise a cooling system configured to allow liquid nitrogen to be transmitted through the cooling system and receive heat generated in the substrate from the back side of the substrate.Type: GrantFiled: December 10, 2010Date of Patent: August 13, 2013Assignee: The Boeing CompanyInventors: D. Anthony Galasso, David A. Whelan, Alan Zachary Ullman, Dennis George Harris
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Publication number: 20130163625Abstract: The different advantageous embodiments provide an apparatus and method comprising a substrate configured to increase an intensity of light at a desired wavelength. The substrate has a front side, a back side, and an outer edge. The substrate is configured to reflect the light received on the front side of the substrate. The substrate comprises ceramic. The substrate comprises a plurality of sections. The method and apparatus also comprise a material configured to attenuate the light passing between the plurality of sections. The material surrounds an edge of each section of the plurality of sections. The apparatus and method also comprise a cooling system configured to allow liquid nitrogen to be transmitted through the cooling system and receive heat generated in the substrate from the back side of the substrate.Type: ApplicationFiled: December 10, 2010Publication date: June 27, 2013Applicant: The Boeing CompanyInventors: D. Anthony Galasso, David A. Whelan, Alan Zachary Ullman, Dennis George Harris
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Patent number: 8442088Abstract: Optical resonators and optical devices based on optical resonators that implement diffractive couplers for coupling light with the optical resonators.Type: GrantFiled: April 18, 2011Date of Patent: May 14, 2013Assignee: OEwaves, Inc.Inventors: Vladimir Ilchenko, Anatoliy Savchenkov, Lutfollah Maleki
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Patent number: 8422529Abstract: A tunable laser light source having emission wavelengths in a visible or an adjoining spectral region includes a rotationally disposed laser substrate having more than one emission wavelength, a drive unit coupled to the laser substrate, a pulsed light source having a pulse transmitter, a trigger device, and a signal-delay unit. The trigger device, the signal-delay unit and the pulse transmitter are sequentially connected downstream of the drive unit.Type: GrantFiled: August 19, 2010Date of Patent: April 16, 2013Assignee: Karlsruher Institut Fuer TechnologieInventors: Thomas Woggon, Soenke Klinkhammer, Sebastian Valouch, Johannes Bach, Uli Lemmer
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Patent number: 8326098Abstract: The invention concerns a gallery mode microdisc system for an electrically pumped optical source, the microdisc (1) being formed on one face of a substrate (2), the lower part of the microdisc being provided with an electrical contact referred to as the lower contact (4), the upper part of the microdisc being provided with an electrical contact referred to as the upper contact (6), the upper part of the microdisc being covered with a protective layer (3) of electrically insulating material, the central part (5) of the microdisc being electrically neutralized in order to prevent the passage of an electric current in said central part.Type: GrantFiled: March 9, 2009Date of Patent: December 4, 2012Assignees: Commissariat a l'Energie Atomique, Centre National de la Recherche Scientifique, Ecole Centrale de LyonInventors: Fabien Mandorlo, Jean-Marc Fedeli, Pedro Rojo-Romeo
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Publication number: 20120224595Abstract: A solid state-gain medium is in the form of a thin disk backed by a reflective coating. A laser resonator is formed by the reflective coating and another mirror. Optical pump radiation is directed into the thin-disk gain-medium for energizing the gain-medium and generating a standing wave of fundamental-wavelength radiation in the resonator. The pump-radiation is directed into the gain-medium at an angle to the resonator axis and pump-radiation fringes are formed by interference between incident and reflected pump-radiation. The pump-radiation angle is selected such that the pump-radiation fringes are aligned with antinodes of the fundamental-wavelength standing wave.Type: ApplicationFiled: March 2, 2011Publication date: September 6, 2012Applicant: Coherent, Inc.Inventor: Andrea CAPRARA
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Patent number: 8213471Abstract: A thermal management apparatus and method for a thin disk laser system enabling the laser system to have near isothermal temperatures across and throughout a thin disk comprising a mechanically controlled oscillating heat pipe having effective thermal conductivity of 10-20,000 W/m*K that promotes near isothermal conditions in lasing of the thin disk, a thin disk lasing crystal or ceramic bonded to the mechanically controlled oscillating heat pipe, and a supporting structure including a surface bonded to the thin disk that matches the CTE (coefficient of thermal expansion) of both materials.Type: GrantFiled: January 24, 2011Date of Patent: July 3, 2012Assignees: Integral Laser Solutions, LLC, The Curators of the University of MissouriInventors: LaVerne Arthur Schlie, Hongbin Ma, Douglas E. Smith, Vitaly Gruzdev
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Patent number: 8165182Abstract: In order to improve a solid-state laser, in particular a solid-state disc laser, comprising a resonator (40) that defines a resonator radiation field (30) and at least one solid-state disc (12) with the resonator radiation field (30) passing through it, in such a manner that the thermal lens effect can be at least substantially compensated, it is proposed that in reflection the resonator radiation field (30) strikes at least one first adaptive mirror unit (50, 70), with which a distortion of the resonator radiation field (30) as a result of a thermal lens effect of the at least one solid-state disc (12) can be substantially compensated. An adaptive mirror unit (50) can be configured by a heated (58a, 58b) glass sheet (54) with an HR layer (52), for example, or by a pressure-induced deformation by means a fluid (78) in a space (76), which is enclosed with the mirror (72, 74).Type: GrantFiled: July 23, 2010Date of Patent: April 24, 2012Assignee: Deutsches Zentrum fuer Luft-und Raumfahrt e.V.Inventors: Adolf Giesen, Gerhard Spindler, Thomas Hall, Jochen Speiser, Jens Mende
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Patent number: 7991025Abstract: Techniques and devices that stabilize a laser to a whispering gallery mode optical resonator.Type: GrantFiled: June 13, 2008Date of Patent: August 2, 2011Assignee: OEwaves, Inc.Inventors: Lutfollah Maleki, Vladimir Ilchenko
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Patent number: 7978746Abstract: An unstable laser disk resonator combines the output laser power of multiple laser disks to produce a high power, single transverse mode laser output beam, which is near diffraction limited.Type: GrantFiled: April 25, 2008Date of Patent: July 12, 2011Assignee: The Boeing CompanyInventor: Dale A. Holmes
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Patent number: 7929589Abstract: Optical resonators and optical devices based on optical resonators that implement diffractive couplers for coupling light with the optical resonators.Type: GrantFiled: June 13, 2008Date of Patent: April 19, 2011Assignee: OEwaves, Inc.Inventors: Vladimir Ilchenko, Anatoliy Savchenkov, Lutfollah Maleki
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Publication number: 20110080931Abstract: A semiconductor laser includes a laser resonator (1) having a planar active region (3), a first (2) and a second (6) wave-guide layer that define the active region (3). The resonator (1) has a shape that is defined by a perimeter, along which the first layer (2) radiation guide has a plurality of cuts (4) forming a lattice. The cuts are made as at least two adjacent slits (4a, 4b) and a zone between the slits in which an uncut portion (5a) of wave-guiding layer is present. In the case of a circular semiconductor laser, the number of cuts (4) is a prime number, or an odd number that is a multiple of a prime number, the prime number being greater than or equal to five. This way, it is avoided that resonance modes evolve outside of the zone with the cuts, or in any case with a component that is different from zero of the wave vector in a radial direction, and a pure whispering gallery operating mode is obtained, with maximum of the emitted radiation that evolves in a vertical direction, i.e.Type: ApplicationFiled: November 5, 2010Publication date: April 7, 2011Applicant: SCUOLA NORMALE SUPERIOREInventors: Alessandro TREDICUCCI, Fabio BELTRAM, Lucas MAHLER
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Patent number: 7907655Abstract: A laser cavity structure is disclosed which pertains to laser resonator geometries possessing circular symmetry, such as in the case of disk or spherical lasers. The disclosed invention utilizes a very-high finesse Bragg reflector (VHF-BR) thin film reflectors of many layer pairs of very small refractive index difference, the VHF-BR deposited on a surface of revolution, thereby forming an optical cavity. These dielectric reflectors are disposed in such a way as to allow selection of preferred low order modes and suppression of parasitic modes while allowing a high cavity Q factor for preferred modes. The invention disclosed, in its preferred embodiments, is seen as particularly useful in applications requiring high efficiency in the production and coupling of coherent radiation. This is accomplished in a cavity design that is relatively compact and economical.Type: GrantFiled: April 14, 2008Date of Patent: March 15, 2011Inventor: Donald Bennett Hilliard
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Publication number: 20110044361Abstract: In order to improve a solid-state laser, in particular a solid-state disc laser, comprising a resonator (40) that defines a resonator radiation field (30) and at least one solid-state disc (12) with the resonator radiation field (30) passing through it, in such a manner that the thermal lens effect can be at least substantially compensated, it is proposed that in reflection the resonator radiation field (30) strikes at least one first adaptive mirror unit (50, 70), with which a distortion of the resonator radiation field (30) as a result of a thermal lens effect of the at least one solid-state disc (12) can be substantially compensated. An adaptive mirror unit (50) can be configured by a heated (58a, 58b) glass sheet (54) with an HR layer (52), for example, or by a pressure-induced deformation by means a fluid (78) in a space (76), which is enclosed with the mirror (72, 74).Type: ApplicationFiled: July 23, 2010Publication date: February 24, 2011Applicant: Deutsches Zentrum fuer Luft-und Raumfahrt e.V.Inventors: Adolf Giesen, Gerhard Spindler, Thomas Hall, Jochen Speiser, Jens Mende
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Patent number: 7894496Abstract: A novel method and apparatus for suppressing ASE and/or parasitic oscillation modes in a laser is introduced. By roughening one or more peripheral edges of a solid-state crystal or ceramic laser gain media and by bonding such edges to a predetermined electromagnetic absorbing material arranged adjacent to the entire outer surface of the peripheral edges of the roughened laser gain media, ASE, parasitic oscillation modes and/or residual pump energy can be effectively suppressed.Type: GrantFiled: November 5, 2008Date of Patent: February 22, 2011Assignee: Lawrence Livermore National Security, LLCInventors: Lloyd A. Hackel, Thomas F. Soules, Scott N. Fochs, Mark D. Rotter, Stephan A. Letts
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Patent number: 7856046Abstract: A surface emitting laser diode includes a ring-shaped first semiconductor layer including an n-type clad layer, a ring-shaped active layer provided on the first semiconductor layer, and a ring-shaped second semiconductor layer which is provided on the active layer and includes a p-type clad layer and a grating layer including grating units continuously arranged in a circumferential direction, each grating unit including a plurality of regions having different refractive indices and being adjacent to each other in the circumferential direction.Type: GrantFiled: November 6, 2008Date of Patent: December 21, 2010Assignee: Rohm Co., Ltd.Inventor: Soichiro Arimura
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Patent number: 7773641Abstract: An optically pumped disk type solid state laser oscillator includes: a cylindrical shape thin film laser gain medium having a through-hole; a ring mirror whose surface is opposing to a side surface of the thin film laser gain medium; a conical mirror arranged in the through-hole and reflects a light from the ring mirror to a direction perpendicular to the thin film laser gain medium where an output mirror is arranged. The ring mirror, the conical mirror and the output mirror compose a resonator for oscillating a laser beam to be outputted from the output mirror.Type: GrantFiled: December 20, 2007Date of Patent: August 10, 2010Assignee: Mitsubishi Heavy Industries, Ltd.Inventors: Kenji Takeshita, Shinya Ishii
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Patent number: 7769071Abstract: Silica sol gel micro-lasers and methods of fabricating micro-lasers on a chip or a wafer. A silica sol gel micro-laser includes a silica sol gel optical micro-cavity, a substrate, and a support member or pillar that extends between the micro-cavity and the substrate. An outer surface or periphery of the micro-cavity extends beyond a top of the sol gel support member or is overhanging with respect to the underlying support member. Optical energy travels along an inner surface of the silica sol gel micro-cavity. Undoped silica sol gel micro-cavities can be used for Raman lasers. Sol gel micro-cavities can be doped with, for example, erbium, and can be used for erbium-doped micro-lasers that have ultra narrow line widths, for example, less than 100 Hz. Undoped and doped silica sol gel micro-lasers can have Q factors greater than 107.Type: GrantFiled: November 9, 2004Date of Patent: August 3, 2010Assignee: California Institute of TechnologyInventors: Kerry J. Vahala, Lan Yang
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Patent number: 7724800Abstract: A thin disk laser includes a thin disk of a host material incorporating a laser gain medium. The disk has opposite first and second surfaces, at least one of which is non-planar. The first surface is coated with a high reflectivity coating. The second surface has an anti-reflection coating thereon. The shape and mounting of the laser is such that mismatch of the coefficients of thermal expansion between the disk laser and the mount does not affect scaling of the laser to larger size disks for higher power lasers.Type: GrantFiled: June 8, 2007Date of Patent: May 25, 2010Assignee: The Boeing CompanyInventors: David S. Sumida, Hans W. Bruesselbach
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Publication number: 20100002742Abstract: There is provided a rotary disk module to efficiently transfer heat from a rotatable disk to a stationary heat sink. The rotatable disk is in proximity of the heat sink with a small gap that allows the disk to move, and which is filled with a cooling medium. The cooling medium aids in transfer of heat from the rotatable disk to the heat sink by conduction, convection, evaporation and other heat transfer means. The heat may be deposited on a portion of the rotatable disk on which an optical beam is being incident or from which an optical beam is generated or both. The rotary disk may be fabricated from various materials depending on the intended applications of the module, and the heat sink is preferably fabricated from materials with high thermal conductivity. The disk may be mounted on a disk-mounting surface that provides for a gap between the rotatable disk and the heat sink surface. The disk-mounting surface is in turn connected to a mechanism for rotating the disk in a smooth fashion.Type: ApplicationFiled: August 5, 2009Publication date: January 7, 2010Inventor: Santanu Basu
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Patent number: 7609741Abstract: A laser system may include a first portion of laser host material adapted for amplification of laser radiation and a second portion of laser host material surrounding the first portion which may be adapted for suppression of ASE. The first portion of laser host material and the second portion of laser host material may be respectively doped at a different predetermined concentration of laser ions. A heat exchanger may be provided to dissipate heat from the first portion and the second portion.Type: GrantFiled: January 23, 2007Date of Patent: October 27, 2009Assignee: The Boeing CompanyInventor: Jan Vetrovec
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Patent number: 7593447Abstract: A rotary disk module, having a rotary disk is interposed between a pair of heat sinks each spaced from the rotary disk by a gap. A motor is installed for driving the rotary disk to rotate. The gaps are filled with cooling medium such as helium, water or liquid nitrogen to remove the heat generated in the rotary disk by conduction, convection or evaporation. The rotary disk may be fabricated from various materials depending on the intended applications of the module, and the heat sink surfaces are preferably fabricated from materials with higher thermal conductivity. The rotation of the rotary disk allows the regions on which an optical pump radiation is delivered to be separated from the regions from which an optical radiation is extracted. In addition to improved heat dissipation effect, the rotation of the optical disk allows multiple directions of pump energy or multiple sources of pump energies and/or multiple beams of optical radiation to be applied and extracted simultaneously.Type: GrantFiled: July 12, 2005Date of Patent: September 22, 2009Inventor: Santanu Basu
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Patent number: 7573930Abstract: A laser system, which is used in material processing to produce a radiation line of small width and uniform high intensity in the longitudinal direction, produces radiation that has different mode numbers M2 perpendicular to the propagation direction.Type: GrantFiled: June 14, 2007Date of Patent: August 11, 2009Assignee: Innovavent GmbHInventors: Günter Hollemann, Peter Heist, Peter Oesterlin, Berthold Burghardt, Hans-Jürgen Kahlert, Klaus Brunwinkel, Henning Schmidt, Thomas Gabler, Ulf Krause
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Patent number: 7545843Abstract: A micro-cavity resonator including a micro-cavity capable of high and ultra-high Q values and a silicon substrate. Portions of the silicon substrate located below a periphery of the micro-cavity are removed to form a pillar, which supports the micro-cavity. Optical energy travels along an inner surface of the micro-cavity.Type: GrantFiled: October 2, 2003Date of Patent: June 9, 2009Assignee: California Institute of TechnologyInventors: Deniz K. Armani, Tobias J. Kippenberg, Sean M. Spillane, Kerry J. Vahala
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Patent number: 7492805Abstract: A spherical laser includes a transparent or semi-transparent outer spherical vessel having an internal cavity, an amplifying medium in the cavity, and means to excite the amplifying medium. The sphere is provided with a partially reflective coating to act as a spherical optical resonator. Excitation of the amplifying medium produces an optical gain. When the gain exceeds cavity losses and threshold conditions are met, lasing is supported. This creates a three-dimensional, spherically radiating emission, emulating a point source. The output is radially diverging, but is harnessed by enclosing the sphere within a mirrored ellipse to image the output to a point, or within a mirrored parabola to columinate the emission. A concentric, reflective inner sphere may be disposed in the cavity, with the amplifying medium lying between the two spheres. A voltage potential is applied between the spheres to excite the medium.Type: GrantFiled: April 11, 2006Date of Patent: February 17, 2009Inventors: Ronald LaComb, Sallie S. Townsend
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Publication number: 20080304534Abstract: A thin disk laser includes a thin disk of a host material incorporating a laser gain medium. The disk has opposite first and second surfaces, at least one of which is non-planar. The first surface is coated with a high reflectivity coating. The second surface has an anti-reflection coating thereon.Type: ApplicationFiled: June 8, 2007Publication date: December 11, 2008Inventors: David S. Sumida, Hans W. Bruesselbach
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Publication number: 20080175288Abstract: A laser system may include a first portion of laser host material adapted for amplification of laser radiation and a second portion of laser host material surrounding the first portion which may be adapted for suppression of ASE. The first portion of laser host material and the second portion of laser host material may be respectively doped at a different predetermined concentration of laser ions. A heat exchanger may be provided to dissipate heat from the first portion and the second portion.Type: ApplicationFiled: January 23, 2007Publication date: July 24, 2008Inventor: Jan Vetrovec
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Publication number: 20080130702Abstract: A laser system and method. The inventive laser includes an annular gain medium; a source of pump energy; and an arrangement for concentrating energy from the source on the gain medium. In a more specific implementation, a mechanism is included for rotating the gain medium to effect extraction of pump energy and cooling. In the illustrative embodiment, the pump source is a diode array. Energy from the array is coupled to the medium via an array of optical fibers. The outputs of the fibers are input to a concentrator that directs the pump energy onto a pump region of the medium. In the best mode, plural disks of gain media are arranged in an offset manner to provide a single resonator architecture. First and second mirrors are added to complete the resonator. In accordance with the inventive teachings, a method for pumping and cooling a laser is taught.Type: ApplicationFiled: December 20, 2007Publication date: June 5, 2008Inventors: Kalin Spariosu, Alexander A. Betin
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Patent number: 7319710Abstract: The present invention relates to a microdisk laser with a unidirectional generation property, and more particularly, to a microdisk laser designed in the form of a triangle, wherein the incident angles of portions of a laser beam at two upper sides of the triangle are greater than a critical angle to cause total reflection, so that the laser beam generates with directionality toward the base of the triangle. To this end, in the microdisk laser with the unidirectional generation property, the laser takes the shape of a triangle with two upper sides and the base and the two upper sides have their lengths greater than or equal to that of the base. Respective vertexes of the triangle or some of the vertexes are curved, and incident angles of portions of a laser beam at the two upper sides of the triangle are greater than a critical angle to cause total reflection, so that the laser beam generates with directionality toward the base of the triangle.Type: GrantFiled: June 30, 2005Date of Patent: January 15, 2008Assignee: Paichai University Industry-Academic Cooperation FoundationInventors: Chil Min Kim, Mikhael Kourdoglian, Soo Young Lee
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Patent number: 7308014Abstract: The present invention relates to a laser including a laser amplifier and a laser resonator. The laser amplifier includes a disk-shaped active medium having a reflector. The active medium rests on a cooling means for cooling said active medium and said reflector. The reflector embodies a mirror of said laser resonator. The laser amplifier includes an optical means for refocusing a pumping light configured for repeatedly deviating said pumping light and refocusing said pumping light onto the active medium for causing a multiple passage of said pumping light through said active medium. Such a thin-disk laser is not prone to thermal lensing. According to the invention, the laser resonator is formed as a ring resonator. Two optical waves can travel around within the ring resonator in different directions. An optical selection means is provided for giving preference to propagation of one of the both optical waves traveling around that can be coupled out as an output laser beam.Type: GrantFiled: August 17, 2004Date of Patent: December 11, 2007Assignee: ELS Elektronik Laser System GmbHInventors: Udo Eisenbarth, Joachim Jonuscheit
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Patent number: 7242705Abstract: A grating-outcoupled microcavity disk resonator has whispering gallery modes existing in a nearly circular resonator. Light is outcoupled by providing a grating region in the plane of the grating-outcoupled microcavity disk resonator. The grating region provides an outcoupling or loss mechanism that symmetrically interacts with the clockwise and counterclockwise whispering gallery modes, thereby making the resonator capable of surface emission.Type: GrantFiled: December 17, 2003Date of Patent: July 10, 2007Assignee: Palo Alto Research Center, IncorporatedInventors: Michael A. Kneissl, Noble M. Johnson, David K. Biegelsen
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Patent number: 7218662Abstract: Coupled opto-electronic oscillators with a whispering-gallery-mode (WGM) optical resonator inside the laser cavity to produce oscillation signals out of the optical spectral range, e.g., RF or microwave frequencies.Type: GrantFiled: February 14, 2005Date of Patent: May 15, 2007Assignee: OEWaves, Inc.Inventors: Vladimir Ilchenko, Ismail Tolga Yilmaz, Nikolai Morozov, Dmitri A. Kossakovski, Danny Eliyahu, Mark Henderson
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Patent number: 7200160Abstract: A laser beam source has a laser element provided with a thin crystal disk as a laser active medium. The laser beam source has improved mechanical stability and improved thermal contact with respect to a cooling element on the flat side of the crystal disk that is disposed opposite the cooling element. A cooling disk is disposed between the crystal disk and the cooling element.Type: GrantFiled: October 27, 2004Date of Patent: April 3, 2007Assignee: Rofin-Sinar Laser GmbHInventor: Klaus Ludewigt
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Patent number: 7126974Abstract: Systems, configurations and methods of using laser diodes in ring-shaped arrays placed a distance away from thin disk solid-state laser gain media, which provide uniformly absorbed pump power distribution with high absorption efficiency. This results in major improvements in the scalability and ruggedness of such lasers and disk laser amplifiers. Use of the diode laser pump configurations of the invention results in compact, robust and scalable lasers that produce high quality, high power outputs.Type: GrantFiled: April 7, 2004Date of Patent: October 24, 2006Assignee: University of Central Florida Research Foundation, Inc.Inventors: Jun Dong, Michael Bass