Claims
- 1. A solid-state laser comprising an excitation light source, a lens system for focusing an excitation light produced from said light source, and a laser resonator which is laser-oscillated in response to the focused excitation light, wherein said resonator includes only a gain medium and a solid-state medium having dispersion of a wavelength dependence opposite to that of said gain medium, and surfaces of said gain medium and said solid-state medium, which are respectively at opposite sides of opposing surfaces of said gain medium and said solid-state medium, are reflectively coated and act as mirror surfaces, at least one of the other surfaces of said gain medium and said solid-state medium, which are positioned inside said resonator and are opposite to each other, being polished to a curved surface, and said gain medium being excited by said focused excitation light so that the laser oscillation is made in said resonator.
- 2. A solid-state laser according to claim 1, wherein said gain medium is made of any of Cr:YAG, Ti:Al2O3, Cr:LiSrAlF6, Cr:Mg2SiO4, Yb:YAG and Yb:Ca4GdO(BO3)3 crystals, Yb:glass, and Nd:glass.
- 3. A solid-state laser according to claim 1, wherein if a diameter at a place where the intensity is 1/e2 of that on an optical axis of a resonator mode is defined as a diameter of a beam, a minimum diameter of the beam in said gain medium is smaller than or equal to 0.1 mm.
- 4. A solid-state laser according to claim 1, wherein said excitation light source is any of a laser diode, a gas laser and a solid-state laser.
- 5. A solid-state laser according claim 1, wherein said solid-state medium having dispersion of the wavelength dependence opposite to that of said gain medium is any of fused silica, glass, MgF2 and CaF2.
- 6. A solid-state laser according to claim 1, wherein a surface which is not polished to a curved surface, of two surfaces of said gain medium and said solid-state medium, which are positioned inside said resonator and are opposite to each other, is polished to a Brewster angle to the oscillation light.
- 7. A solid-state laser according to claim 1, wherein a surface which is not polished to a curved surface, of two surfaces of said gain medium and said solid-state medium, which are positioned inside said resonator and are opposite to each other, is polished perpendicularly to a propagating direction of the oscillation light and is coated antireflectively.
- 8. A solid-state laser according to claim 1, wherein a surface which is not polished to a curved surface, of two surfaces of said gain medium and said solid-state medium, which are positioned inside said resonator and are opposite to each other, is polished so that an incident angle of the oscillation light from the outside of said gain medium or said solid-state medium, to said surface which is not polished to the curved surface is larger than or equal to 0 degree and smaller than 90 degrees and is coated antireflectively.
- 9. A solid-state laser according to claim 1, wherein an output light of said resonator is any one or both of light transmitted from said mirror surfaces of said gain medium and said solid-state medium, which are not opposite to each other, and light reflected from a surface which is not polished to a curved surface, of two surfaces of said gain medium and said solid-state medium, which are positioned inside said resonator and are opposite to each other.
- 10. A solid-state laser according to claim 1, wherein an incident angle of the oscillation light from the outside of said gain medium or said solid-state medium, to said surface which is polished to the curved surface, of said gain medium or said solid-state medium is larger than or equal to 0 degree and smaller than 90 degrees.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2000-107973 |
Apr 2000 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] This is a continuation of U.S. application Ser. No. 09/665,619, filed Sep. 19, 2000, the subject matter of which is incorporated by reference herein.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09665619 |
Sep 2000 |
US |
Child |
10420902 |
Apr 2003 |
US |