Claims
- 1. A slab-type solid-state laser oscillating device comprising:
a slab-type laser medium for generating at least two laser beams which traverse the laser medium between two end faces in a longitudinal direction, said laser medium being optically pumped in a substantially transverse direction; at least one of the end faces having at least two Brewster surfaces being cut at an angle with respect to the longitudinal direction and intersecting along a line, said angle being equal to a Brewster angle of the laser medium for the laser beams, and an optical cavity formed by a partially reflecting mirror and a high-reflectivity mirror, wherein each of the laser beams passes through a different Brewster surface and the laser beams are simultaneously optically pumped.
- 2. The laser oscillating device of claim 1, wherein at least one high-reflectivity mirror is obliquely disposed and offset from a longitudinal center axis of the slab-type laser medium.
- 3. The laser oscillating device of claim 1, wherein the laser beams passing through the at least two Brewster surface have the same lasing wavelength.
- 4. The laser oscillating device of claim 3, further including a fold prism disposed at the end of the slab-type laser medium opposite the Brewster surfaces, the fold prism retroreflecting the laser beam passing through one of the Brewster surfaces to subsequently pass through another Brewster surface.
- 5. The laser oscillating device of claim 1, wherein the laser beams passing through the at least two Brewster surface have different lasing wavelengths.
- 6. The laser oscillating device of claim 1, wherein the laser medium comprises Nd:YVO4 and the lasing wavelengths are approximately 1.06 μm and 1.34 μm.
- 7. A compact multi-wavelength solid state laser, comprising:
a solid state laser element made of a material capable of lasing at at least two wavelengths, the solid state laser defining a center line and having opposing side faces extending substantially parallel to the center line, with pump radiation coupled to the side faces, the solid state laser element further including end faces, with at least one of the end faces comprising a Brewster dispersing prism with twin exit faces formed on opposite sides of the center line of the solid state laser element, and two laser cavities formed on opposite sides of the center line, with a first cavity including a first mirror having a high reflectivity at a first of the at least two wavelengths, a first output mirror, and a first portion of the solid state laser element with one of the twin faces of the Brewster dispersing prism, and the second cavity including a second mirror having a high reflectivity at a second of the at least two wavelengths, a second output mirror, and a second portion of the solid state laser element with the other twin face of the Brewster dispersing prism.
- 8. The laser of claim 7, further comprising at least one modulator disposed in at least one of the laser cavities.
- 9. The laser of claim 8, wherein the modulator is a Q-switch.
- 10. The laser of claim 7, wherein the laser material is one of Nd:YVO4 and Nd:YAG.
- 11. The laser of claim 7, wherein the lasing wavelengths are approximately 1.06 μm and 1.34 μm.
- 12. The laser of claim 7, wherein the Brewster dispersion prism is formed integrally with the solid state laser element.
- 13. The laser of claim 7, wherein the Brewster dispersion prism is formed as a separate element from the solid state laser element and located proximate to an end face of the solid state laser element.
- 14. The laser of claim 13, further comprising a quarter-wave plate interposed between the Brewster dispersion prism and the end face of the solid state laser element.
- 15. The laser of claim 13, wherein the Brewster dispersion prism is formed of glass.
- 16. The laser of claim 7, wherein both end faces of the solid state laser element comprise a respective Brewster dispersing prism.
- 17. The laser of claim 11, said laser capable of producing RGB laser output beams and further comprising:
a blue output channel producing the blue laser output beam and including
a first harmonic crystal receiving laser radiation from the first laser cavity at a wavelength of 1.34 μm and producing a frequency-doubled wavelength of 671 μn, and a first nonlinear crystal that combines the laser radiation at the wavelength of 1.34 μm with the frequency-doubled wavelength of 671 nm to produce the blue laser output beam with a sum frequency of 447 nm; a red output channel producing the red laser output beam and including
an optical parametric amplifier receiving laser radiation from the second laser cavity at a wavelength of 1.06 μm and producing a wavelength-shifted wavelength of 1.54 μm, and a second nonlinear crystal that combines the laser radiation at the wavelength of 1.34 μm with the wavelength-shifted wavelength of 1.54 μm to produce the red laser output beam with a sum frequency of 628 nm; and a green output channel producing the green laser output beam and including
a second harmonic crystal receiving laser radiation from the second laser cavity at a wavelength of 1.06 μm and producing a frequency-doubled wavelength of 532 nm.
- 18. A compact side-pumped solid state laser, comprising:
a solid state laser element defining a longitudinal center line and having opposing side faces extending substantially parallel to the center line, with pump radiation coupled to the side faces, the solid state laser element further including end faces, with one of the end faces comprising a Brewster dispersing prism with twin exit faces formed on opposite sides of the center line of the solid state laser element, and with the other end face comprising a 180° fold prism, and a laser cavity including a mirror obliquely disposed and offset to one side of the center line and having a high reflectivity, a semitransparent output mirror obliquely disposed and offset to the other side of the center line, and the solid state laser element, wherein the laser beam traverses a first portion of the solid state laser element in a first direction and a second portion of the solid state laser element in a second direction substantially opposite to and parallel to the first direction.
- 19. The laser of claim 18, wherein the laser beam has a lasing wavelength of approximately 1.06 μm laser and is capable of producing RGB laser output beams, the laser further comprising:
a blue (B) output channel producing the blue laser output beam and including
a first optical parametric amplifier receiving the 1.06 μm laser beam and producing a wavelength-shifted wavelength of 1.54 μm, a first harmonic crystal receiving the wavelength-shifted wavelength of 1.54 μm and producing a frequency-doubled wavelength of 767 nm, and a first nonlinear crystal that combines the laser beam at the wavelength of 1.06 μm with the frequency-doubled wavelength of 767 nm to produce the blue laser output beam with a sum frequency of 445 nm; a red (R) output channel producing the red laser output beam and including
a second optical parametric amplifier receiving the 1.06 μm laser beam and producing a wavelength-shifted wavelength of 1.54 μm, and a second nonlinear crystal that combines the laser radiation at the wavelength of 1.34 μm with the wavelength-shifted wavelength of 1.54 μm to produce the red laser output beam with a sum frequency of 628 nm; and a green (G) output channel producing the green laser output beam and including a second harmonic crystal receiving the 1.06 μm laser beam and producing a frequency-doubled wavelength of 532 nm.
Priority Claims (1)
Number |
Date |
Country |
Kind |
PCT/US97/22066 |
Nov 1997 |
US |
|
CROSS-REFERENCE TO OTHER PATENT APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/319,058, filed May 27, 1999, and also claims the benefit of U.S. provisional Application No. 60/226,180, filed Aug. 18, 2000, both of which are incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60226180 |
Aug 2000 |
US |
|
60032269 |
Nov 1996 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09319058 |
May 1999 |
US |
Child |
09933456 |
Aug 2001 |
US |