IP Library Granted Patent US 8,170,073
Granted Patent B2
US 8,170,073 · App. 12/558,315 · Granted May 1, 2012

Optically-pumped external-cavity surface-emitting semiconductor lasers with front-cooled gain-structures

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Quick Facts
Patent No.
US 8,170,073
App. No.
12/558,315
Granted
May 1, 2012
Kind
B2
Abstract

A semiconductor gain-structure functions as a gain-element in a laser-resonator. The gain-structure is bonded to a diamond heat-spreader that is peripherally cooled by a heat-sink configured to allow access to the gain-structure by laser-radiation circulating in the laser-resonator. In one example, the gain-structure is used as a transmissive gain-structure in a traveling-wave ring-resonator. In another example, the gain-structure surmounts mirror-structure which functions as an end-mirror of a standing-wave laser-resonator.

Claims (15)

1. Laser apparatus comprising,:

a laser-resonator formed by a plurality of resonator mirrors;

an epitaxially grown semiconductor multilayer gain-structure, the gain-structure having first and second surfaces and including a plurality of active layers spaced apart by barrier layers and being located in the laser-resonator, wherein all of the resonator mirrors are spaced from the gain structure;

a diamond heat-spreader having first and second opposite surfaces, the first surface of the diamond heat-spreader being bonded to the second surface of the gain-structure;

an arrangement for delivering optical pump-radiation having a pump-radiation wavelength to the gain-structure such that a portion of the pump-radiation energizes the gain-structure and generates fundamental-wavelength laser-radiation which circulates in the laser-resonator, with a residual portion of the pump-radiation being converted to heat in the gain-structure;

a heat-sink member in thermal contact only with the second surface of the diamond heat-spreader, the heat-sink member including an aperture and being configured such that heat is removed from the gain-structure only via the second surface of the gain-structure and the diamond heat-spreader, while allowing access, via said aperture, to the energized gain-structure by the laser radiation circulating in the laser-resonator; and

wherein there is no arrangement for extracting heat from the gain-structure via the first surface thereof and wherein the gain structure, heat spreader and heat-sink member define a transmissive path to allow the fundamental radiation to circulate in the resonator.

2. The apparatus of claim 1 , wherein the resonator is a traveling-wave ring-resonator.

3. The apparatus of claim 1 further including second multilayer gain structure, a second heat spreader connected to one side of the second gain structure and a second heat-sink connected to the second heat spreader and having an aperture therein, with the second gain structure, second heat spreader and second heat sink being located within the resonator and being transmissive to the fundamental radiation.

4. Laser apparatus comprising:

a laser-resonator formed by a plurality of resonator mirrors;

at least a first epitaxially grown semiconductor multilayer gain-structure, the gain-structure having first and second surfaces and including a plurality of active layers spaced apart by barrier layers and being arranged as a transmissive gain-element in the resonator; and

an arrangement for delivering optical pump-radiation having a pump-radiation wavelength to the gain-structure such that a portion of the pump-radiation energizes the gain-structure and generates fundamental-wavelength laser-radiation which circulates in the laser-resonator through the gain-structure, and wherein the laser-resonator is a traveling wave ring-resonator and the laser-radiation circulates in the laser-resonator unidirectionally through the first gain-structure and further including a second epitaxially grown semiconductor multilayer gain-structure and being arranged as a transmissive gain-element in the resonator, and wherein all of the resonator mirrors are spaced from the gain structures and the gain structures define a transmissive path allowing the laser-radiation to circulate in the laser-resonator unidirectionally through the first and second gain-structures.

5. The apparatus of claim 4 , wherein the gain-structure has first and second opposite surfaces and the apparatus further includes a diamond heat-spreader and a heat-sink arrangement, the diamond heat-spreader having first and second opposite surfaces, the first surface of the diamond heat-spreader being bonded to the second surface of the gain-structure, and the heat-sink arrangement being bonded to the diamond heat sink arrangement and configured to allow access to the gain-structure by the laser-radiation circulating in the laser-resonator.

6. The apparatus of claim 5 , wherein said heat sink arrangement includes an aperture for allow access to the gain-structure by the laser-radiation circulating in the laser-resonator.

Assignments (4)
SECURITY INTEREST Recorded Jul 1, 2022
From: II-VI INCORPORATED; II-VI DELAWARE, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; PHOTOP TECHNOLOGIES, INC.; COHERENT, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 060562/0254 →
PATENT RELEASE AND REASSIGNMENT - RELEASE OF REEL/FRAME 040575/0001 Recorded Jul 1, 2022
From: BARCLAYS BANK PLC, AS COLLATERAL AGENT
To: COHERENT, INC.
Reel/Frame 060562/0650 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Nov 7, 2016
From: COHERENT, INC.
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 040575/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 9, 2009
From: GOVORKOV, SERGEI V.; AUSTIN, R. RUSSEL
To: COHERENT, INC.
Reel/Frame 023353/0980 →