Claims
- 1. A wedge-shaped microresonator having first, second and third side surfaces, the wedge-shaped microresonator comprising:an active gain medium having a wedge-shape; a passive Q-switch proximate at least one of the first, second and third side surfaces; and a reflective surface proximate each of the first, second and third side surfaces, wherein at least one of said reflective surfaces is only partially reflective to thereby permit emission of laser signals.
- 2. A wedge-shaped microresonator according to claim 1 wherein said active gain medium is proximate the first and third side surfaces and said passive Q-switch is proximate the second side surface.
- 3. A wedge-shaped microresonator according to claim 1 wherein said partially reflective surface is proximate the same side surface as said passive Q-switch.
- 4. A wedge-shaped microresonator according to claim 1 wherein said passive Q-switch is proximate each of the first, second and third side surfaces.
- 5. A microlaser assembly comprising:a microresonator comprising an active gain medium and a passive Q-switch for emitting laser pulses, wherein said microresonator comprises at least a pair of converging side surfaces that define an acute angle therebetween; and at least one electro-optic component for receiving and modifying the laser pulses emitted by said microresonator, wherein said microresonator includes a partially reflective surface to permit laser pulses to be output to said electro-optic component.
- 6. A microlaser assembly according to claim 5 wherein both said microresonator and said at least one electro-optic component are wedge-shaped and are arranged in a ring-like arrangement.
- 7. A microlaser assembly according to claim 6 further comprising an auxiliary electro-optic component for receiving an output from one of said microresonator and said electro-optic component, said auxiliary electro-optic component being radially offset from the ring-like arrangement of said microresonator and said at least one electro-optic component.
- 8. A microlaser assembly according to claim 5 further comprising a heat sink disposed in thermal communication with said microresonator and said at least one electro-optic component.
- 9. A microlaser assembly according to claim 8 further comprising a pump source for providing pump signals to said microresonator, said pump source also disposed in thermal communication with said heat sink.
- 10. A microlaser assembly according to claim 9 wherein said heat sink is positioned between said pump source and said microresonator and said at least one electro-optic component, wherein said heat sink defines at least one opening therethrough, and wherein said pump source is positioned relative to said heat sink so as provide pump signals through a respective opening to said microresonator.
- 11. A microlaser assembly according to claim 9 wherein said pump source comprises a plurality of pump sources arranged to pump said microresonator in order to establish a triangular pattern of resonation within said microresonator.
- 12. A microlaser assembly according to claim 5 wherein said at least one electro-optic component is selected from the group consisting of an optical parametric oscillator, an optical parametric amplifier, a frequency altering component, a gain switched resonator and another active gain medium.
- 13. A microlaser assembly comprising:a wedge-shaped microresonator comprising an active gain medium and a passive Q-switch for emitting laser pulses; and a plurality of pump sources arranged to pump said microresonator in order to establish a triangular pattern of resonation within said microresonator.
- 14. A microlaser assembly according to claim 13 wherein said microresonator comprises first, second and third side surfaces, and wherein said plurality of pump sources are arranged such that the triangular pattern extends between medial portions of the first, second and third side surfaces.
- 15. A microlaser assembly according to claim 13 further comprising a heat sink disposed in thermal communication with said microresonator and said plurality of pump sources.
- 16. A microlaser assembly according to claim 15 wherein said heat sink is positioned between said plurality of pump sources and said microresonator, wherein said heat sink defines at least one opening therethrough, and wherein said plurality of pump sources are positioned relative to said heat sink so as provide pump signals through respective openings to said microresonator.
- 17. A microlaser assembly according to claim 13 further comprising at least one electro-optic component for receiving and modifying the laser pulses emitted by said microresonator.
- 18. A microlaser assembly according to claim 17 wherein said microresonator and said at least one electro-optic component are arranged in a ring-like arrangement.
- 19. A microlaser assembly according to claim 18 further comprising an auxiliary electro-optic component for receiving an output from one of said microresonator and said electro-optic component, said auxiliary electro-optic component being radially offset from the ring-like arrangement of said microresonator and said at least one electro-optic component.
- 20. A microlaser assembly according to claim 17 wherein said at least one electro-optic component is selected from the group consisting of an optical parametric oscillator, an optical parametric amplifier, a frequency altering component, a gain switched resonator and another active gain medium.
CROSS REFERENCE TO RELATED APPLICATION
The present application claims priority from U.S. Provisional Patent Application Ser. No. 60/224,933 filed Aug. 11, 2000 by Brian Lee Peterson, the contents of which are incorporated herein in their entirety.
US Referenced Citations (9)
Non-Patent Literature Citations (2)
| Entry |
| U.S. patent application Ser. No. 09/337,432, Peterson, filed Jun. 21, 1999. |
| J.J. Zayhowski, et al., Miniature Gain-Switched Lasers, presented at the Advanced Solid State Lasers 2001 conference in Seattle, Washington on Jan. 29-31, 2001. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/224933 |
Aug 2000 |
US |