Claims
- 1. A frequency-stable laser resonator, comprising:
- a resonant lasing cavity;
- an excitor for generating a substantially monochromatic electromagnetic signal in said cavity; and
- a passive frequency stabilizer providing a continuum of differing optical path lengths in exchange for variation in a variable mode parameter, said variable mode parameter being selected from the group consisting of beam direction, direction of linear polarization, and annular wavefront radius,
- wherein the signal follows an optical path that varies along the continuum of optical path lengths together with variation in the variable mode parameter such that said signal has a frequency of oscillation that is substantially determined by a peak of a fluorescence profile and the frequency of oscillation is substantially unaffected by variation in the variable mode parameter,
- thereby producing a frequency-stable resonator.
- 2. The laser resonator of claim 1, wherein said passive frequency stabilizer comprises a biaxial crystal.
- 3. The laser resonator of claim 2, wherein said biaxial crystal has opposing end faces generally perpendicular to an optic axis of said crystal, said end faces forming a wedge angle therebetween, said optic axis of said crystal being generally parallel to a direction of propagation of the electromagnetic signal through said lasing cavity.
- 4. The laser resonator of claim 1, wherein said passive frequency stabilizer comprises a conically shaped refracting element.
- 5. The laser resonator of claim 4, wherein said refracting element comprises an axicon positioned along a longitudinal axis of said resonator, an optic axis of said axicon being parallel to the longitudinal axis of the resonator.
- 6. The laser resonator of claim 1, wherein said passive frequency stabilizer comprises a reflector at an end of said resonator, a surface of said reflector being tilted with respect to a perpendicular to a longitudinal axis of said resonant cavity.
- 7. A laser for generating a frequency-stable output, comprising:
- a lasing medium and excitor for generating a coherent electromagnetic signal having a frequency of oscillation and a direction of linear polarization, said medium having a longitudinal axis along which said signal propagates;
- a coupler coupling said signal out of said lasing medium; and
- an optical device adjacent said lasing medium, said optical device having an optic axis generally parallel to said longitudinal axis of said lasing medium and having end faces generally perpendicular to said optic axis, said end faces forming a wedge angle therebetween, wherein said signal follows an optical path through said optical device which has a one-to-one correspondence to the direction of linear polarization of said signal, and wherein the wedge angle yields a maximum round-trip optical path length change of one wavelength through said optical device with variation in the direction of linear polarization of said electromagnetic signal, said optical device, lasing medium and coupler forming a laser resonator for providing a laser output,
- said optical device providing a continuum of differing optical path lengths of substantially equal loss to provide a frequency-stable laser output in exchange for variation in the direction of linear polarization of said signal in said resonator, the frequency of oscillation of said signal being substantially unaffected by variation of a resonator physical length.
- 8. The laser of claim 7, wherein said lasing medium comprises a helium-neon gas mixture and wherein said optical device comprises a lithium formate crystal.
- 9. A method for stabilizing the frequency at which a laser resonator oscillates, comprising the steps of:
- generating a substantially monochromatic electromagnetic signal in the resonator; and
- providing a continuum of differing optical path lengths in exchange for variation in a variable mode parameter, said variable mode parameter being selected from the group consisting of beam direction, direction of linear polarization, and annular wavefront radius,
- wherein the signal follows an optical path that varies along the continuum of optical path lengths together with variation in the variable mode parameter such that the signal has a frequency of oscillation that is substantially determined by a peak of a fluorescence profile and the frequency of oscillation is substantially unaffected by variation in the variable mode parameter, thereby stabilizing the frequency at which the laser resonator oscillates.
- 10. In a laser resonator having a lasing medium, a method for stabilizing the frequency at which the laser resonator oscillates, comprising the steps of:
- generating an electromagnetic signal in the lasing medium, said signal having a frequency of oscillation and a direction of linear polarization;
- passing said signal through a biaxial crystal in a direction generally parallel to an optical axis of said crystal, said crystal having end faces that form a wedge angle therebetween, wherein said wedge angle yields a maximum round-trip optical path length change of one wavelength through said crystal with variation in the direction of linear polarization of said electromagnetic signal; and
- providing a continuum of optical path lengths through said crystal of substantially equal loss to provide a frequency-stable laser output in exchange for variation in the direction of linear polarization of said signal in said resonator, the frequency of oscillation of said signal being substantially unaffected by variation of a resonator physical length.
Parent Case Info
This is a continuation of copending application Ser. No. 07 102,352 filed on 9/29/87 now abandoned.
US Referenced Citations (11)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0505241 |
Nov 1976 |
SUX |
8400856 |
Mar 1984 |
WOX |
Continuations (1)
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Number |
Date |
Country |
Parent |
102352 |
Sep 1987 |
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