Claims
- 1. A vertical external cavity surface emitting laser having an optical axis and comprising an optical resonator, the laser comprising:a) an amplifying mirror comprising: a multi-layer Bragg reflector having at least 90 percent reflectance, and a homogeneously broadened active gain wavelength region comprising multiple quantum wells positioned on top of the Bragg reflector; b) an external mirror confronting the gain region along an optical axis of the resonator; and c) spacer means for positioning and supporting the external mirror relative to the amplifying mirror at a distance selected to provide discrete tunability to each of a sequence of spaced apart wavelengths by setting an optical path length for the optical resonator.
- 2. The laser of claim 1, wherein said external mirror has a concave face confronting said amplifying mirror.
- 3. The laser of claim 1, wherein said Bragg reflector comprises at least two epitaxially deposited semiconductor layers.
- 4. The laser of claim 1, wherein said Bragg reflector comprises at least two dielectric layers.
- 5. The laser of claim 1 wherein said amplifying mirror further comprises an antireflection region positioned on top of said gain region.
- 6. The laser of claim 1, wherein said quantum wells are positioned as plural pairs of quantum wells, each pair having an associated gain wavelength located at or near a standing wave peak of a laser longitudinal cavity mode present within said gain wavelength region.
- 7. The laser of claim 1, wherein said gain region is optically pumped.
- 8. The laser of claim 6, wherein a beam emitted from the optical pump impinges on said amplifying mirror at an angle corresponding to Brewster's angle, whereby an amplitude of a reflection of said beam from said amplifying mirror is minimized.
- 9. The laser of claim 8, wherein said pump radiation absorption means is positioned to absorb substantially all of said portion of said beam which is reflected from said amplifying mirror.
- 10. The laser of claim 1, wherein said Bragg reflector is bonded to a heat sink.
- 11. The laser of claim 10, wherein a metal layer is positioned between said heat sink and said Bragg reflector, whereby a combined reflectivity of said Bragg reflector and said metal layer is increased.
- 12. The laser of claim 10, wherein a thermoelectric heating/cooling element is in thermal contact with said heat sink, said thermo-electric element having a control input to alter a heat sink temperature, whereby the emission wavelength of said laser is discretely tunable to each of a sequence of spaced apart wavelengths.
- 13. The laser of claim 10, wherein said heat sink is bonded to a piezo-electric element such that said heat sink is between the piezo-electic element and said Bragg reflector, the piezo-electric element having a control input to alter said optical path length of said optical resonator, thereby discretely tuning a laser emission wavelength to each of a sequence of spaced apart wavelengths.
REFERENCE TO RELATED APPLICATIONS
The present application is a continuation-in-part of U.S. patent application Ser. No. 09/738,277 filed Dec. 13, 2000, and is a continuation-in-part of U.S. patent application Ser. No. 09/930,841, filed on Aug. 15, 2001, which is a continuation-in-part of U.S. patent application Ser. No. 09/668,905, filed on Sep. 22, 2000.
US Referenced Citations (3)
Continuation in Parts (3)
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Number |
Date |
Country |
Parent |
09/930841 |
Aug 2001 |
US |
Child |
10/104347 |
|
US |
Parent |
09/738277 |
Dec 2000 |
US |
Child |
09/930841 |
|
US |
Parent |
09/668905 |
Sep 2000 |
US |
Child |
09/738277 |
|
US |