Claims
- 1. A pumping module for substantially uniformly pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod, the laser diode arrays being approximately equally spaced around the laser crystal rod and being disposed in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that substantially uniformly pumps the laser crystal rod.
- 2. The pumping module according to claim 1, wherein the set of laser diode arrays includes an odd number of laser diode arrays.
- 3. The pumping module according to claim 1, wherein the set of laser diode arrays includes at least five laser diode arrays.
- 4. The pumping module according to claim 1, wherein the set includes a plurality of sets.
- 5. A pumping module for pumping at least two laser crystal rods, each of the laser crystal rods having an optical axis, comprising:
a first set of laser diode arrays disposed around a first laser crystal rod, the laser diode arrays being approximately equally spaced around the first laser crystal rod and being disposed in a first plane that is substantially orthogonal to a first longitudinal axis of the first laser crystal rod, the laser diode arrays of the first set including laser diodes, the laser diodes of the first set emitting light that substantially uniformly pumps the first laser crystal rod; and a second set of laser diode arrays disposed around a second laser crystal rod, the laser diode arrays of the second set being approximately equally spaced around the second laser crystal rod and being disposed in a second plane that is substantially orthogonal to a second longitudinal axis of the second laser crystal rod, the laser diode arrays of the second set including laser diodes, the laser diodes of the second set emitting light that substantially uniformly pumps the second laser crystal rod, wherein the first longitudinal axis and the second longitudinal axis are optically aligned along an optical axis, and wherein the second set of laser diode arrays is disposed at an angle of rotation around the optical axis with respect to the disposition of the first set of laser diode arrays around the optical axis.
- 6. A pumping module for pumping a laser crystal rod, the laser crystal rod having an optical axis, comprising:
a spherical lensing module disposed along the optical axis, the lensing module being adapted to approximately negate thermal spherical lensing effects present in the laser crystal rod during the substantially uniform pumping of the laser crystal rod.
- 7. The pumping module according to claim 6, wherein the spherical lensing module includes a negative lense.
- 8. The pumping module according to claim 6, wherein the spherical lensing module includes a positive lense.
- 9. A pumping module for pumping two substantially identical laser crystal rods, the two substantially identical laser crystal rods being disposed on an optical axis, comprising:
a 90° rotator disposed along the optical path between the two substantially identical laser crystal rods and adapted to substantially cancel out thermally induced birefringence effects present in the laser crystal rods during substantially uniform pumping of the laser crystal rods.
- 10. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod; and a reflecting element disposed in the plane and opposite a respective laser diode array with respect to the laser crystal rod, the reflecting element reflecting, back to the laser crystal rod, light emitted from the respective laser diode array that passes through the laser crystal rod without contributing to the pumping of the laser diode.
- 11. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod, wherein the laser diodes arrays are adapted to match a power level of the laser diode array with a lowest power level in the set.
- 12. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that substantially uniformly pumps the laser crystal rod, wherein the laser diodes arrays are adapted to match the laser diode array with a lowest pumping light intensity.
- 13. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod, wherein each laser diode has a light emitting surface that has a substantially rectangular shape characterized by a long side and a short side, each laser diode being disposed relative to the laser crystal rod such that the short side extends in a substantially parallel direction as the longitudinal axis of the laser crystal rod.
- 14. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod; and cylindrical lenses disposed between the laser diode arrays and the laser crystal rod, the cylindrical lenses being configured to guide the emitted light toward the laser crystal rod, the cylindrical lenses being adapted such that focal points of the lenses are not within the laser crystal rod.
- 15. A pumping module for pumping a laser crystal rod, the laser crystal rod having a longitudinal axis, comprising:
a set of laser diode arrays disposed around the laser crystal rod and in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod; and cylindrical lenses disposed between the laser diode arrays and the laser crystal rod, the cylindrical lenses being configured to guide the emitted light toward the laser crystal rod, the cylindrical lenses being integrally formed with a cladding layer that is disposed around the laser crystal rod.
- 16. A system for amplifying high power and high intensity laser light propagating along an optical path, comprising:
a first reflector including sapphire or diamond materials; a second reflector including sapphire or diamond materials; and a multiple-pass amplifying module disposed optically between the first reflector and the second reflector.
- 17. A multiple pass optical amplifier with an optical path, comprising:
a laser crystal rod having a longitudinal axis aligned with the optical path; a cladding layer disposed around the longitudinal axis of the laser crystal rod, the cladding layer having a substantially same refractive index as the refractive index of the laser crystal rod.
- 18. A four-pass optical amplifier with an optical path, comprising:
an amplifying module including two substantially similar laser crystal rods that are substantially uniformly pumped; a mirror downstream of the amplifying module; and a Faraday rotator disposed between the mirror and the amplifying module, the Faraday rotator being adapted to substantially cancel thermally induced birefringence of the amplifying module over two passes.
- 19. A multiple pass optical amplifier with an optical path, comprising:
a plurality of laser crystal rods, each laser crystal rod having a longitudinal axis that is aligned with the optical path, each laser crystal rod being formed from a same boule, wherein each laser crystal rod is formed from a same transverse slice of the same boule.
- 20. The multiple pass optical amplifier according to claim 18, wherein each laser crystal rod is oriented with respect to the other laser crystal rods to reduce birefringent effects.
- 21. A pumping module for amplifying light that propagates along an optical path, comprising:
a laser crystal rod having a longitudinal axis, the longitudinal axis being disposed along the optical path; a set of laser diode arrays disposed around the laser crystal rod, the laser diode arrays being approximately equally spaced around the laser crystal rod and being disposed in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod; a lensing module disposed along the optical path, the lensing module being adapted to approximately negate thermal lensing effects present in the laser crystal rod during the pumping of the laser crystal rod; and a rotator disposed along the optical path, the rotator being adapted to approximately cancel thermally induced birefringence effects present in the laser crystal rod during the pumping of the laser crystal rod.
- 22. The pumping module according to claim 21, further comprising:
a cooling system including a housing that houses a cooling fluid, the housing being disposed around at least a portion of the laser crystal rod, the cooling fluid removing heat from the laser crystal rod.
- 23. The pumping module according to claim 21, further comprising:
a respective cylindrical lense disposed between each laser diode array and the laser crystal rod, the cylindrical lense being configured to guide the emitted light toward the laser crystal rod.
- 24. The pumping module according to claim 23, wherein the cylindrical lenses are mounted on a housing of a cooling system, the housing containing a cooling fluid and being disposed around at least a portion of the laser crystal rod, the cooling fluid removing heat from the laser crystal rod.
- 25. The pumping module according to claim 23, wherein the cylindrical lenses are formed integrally with a housing of a cooling system by shaping a portion of the housing into a lense, the housing containing a cooling fluid and being disposed around at least a portion of the laser crystal rod, the cooling fluid removing heat from the laser crystal rod.
- 26. The pumping module according to claim 23, wherein the cylindrical lenses are disposed such that focal points of the cylindrical lenses are not within the laser crystal rod.
- 27. The pumping module according to claim 23, further comprising:
a reflector corresponding to each laser diode array, wherein the cylindrical lense focuses a slow axis of the light emitted by the corresponding laser diode array, the reflector reflecting a fast axis of the light emitted by the corresponding laser diode array.
- 28. The pumping module according to claim 21, wherein each laser diode has a light emitting surface that has a substantially rectangular shape characterized by a long side and a short side, each laser diode being disposed relative to the laser crystal rod such that the short side extends in a substantially same direction as the longitudinal axis of the laser crystal rod.
- 29. The pumping module according to claim 28,
wherein the laser diodes are disposed such that the emitted light from approximately adjacent laser diodes substantially overlaps in pumping coverage of the laser crystal rod, and wherein the pumping coverage is substantially overlapping such that if a particular laser diode fails then other laser diodes compensate for the failed laser diode.
- 30. The pumping module according to claim 29, further comprising:
a control unit coupled to a corresponding laser diode array of the set, the control unit increasing the power output of working laser diodes of the corresponding laser diode array when a particular laser diode of the corresponding laser diode array fails.
- 31. The pumping module according to claim 29, wherein the other laser diodes include the approximately adjacent laser diodes.
- 32. The pumping module according to claim 29, further comprising:
a cladding layer disposed around the laser crystal rod.
- 33. The pumping module according to claim 32, wherein the cladding layer includes a particular material that is similar to a material in the laser crystal rod, but the particular material is undoped.
- 34. The pumping module according to claim 32, wherein the cladding layer does not amplify the light propagating along the optical path.
- 35. The pumping module according to claim 32, wherein the cladding layer includes a particular material that has substantially identical refractive index as the material of the laser crystal rod.
- 36. The pumping module according to claim 32, wherein the cladding layer includes means for reducing diffraction patterns of light exiting an end of the laser crystal rod.
- 37. The pumping module according to claim 23, wherein the cylindrical lenses are formed integrally with a cladding that is disposed around the laser crystal rod.
- 38. The pumping module according to claim 21, wherein each laser diode has a light emitting surface that has a substantially rectangular shape characterized by a long side and a short side, each laser diode being disposed relative to the laser crystal rod such that the short side extends in a substantially parallel direction as the longitudinal axis of the laser crystal rod.
- 39. The pumping module according to the claim 38, wherein emitted light from approximately adjacent diodes substantially overlaps in pumping coverage due to a substantial angular dispersion in directions parallel to the short sides of the laser diodes.
- 40. The pumping module according to claim 21, wherein the laser diode arrays are selected to have substantially identical optical and electrical characteristics.
- 41. The pumping module according to claim 21, wherein the laser diode arrays are electrically connected in series.
- 42. The pumping module according to claim 21, further comprising:
a control unit coupled to a respective laser diode array, wherein, if the respective laser diode array has a power output that is greater than the power output of a least powerful laser diode array, then the control unit adjusts the power output of the respective laser diode array to the power output of the least powerful laser diode array.
- 43. The pumping module according to claim 42, wherein the control unit includes an electrical load disposed in electrical parallel with the respective laser diode array, the electrical load being adapted to remove a portion of the power from the respective laser diode array.
- 44. The pumping module according to claim 42, wherein the control unit includes feedback circuitry and a computer control system, the control unit automatically making power adjustments.
- 45. The pumping module according to claim 21, wherein the laser diodes are selected for equal power output and peak output wavelength.
- 46. The pumping module according to claim 21, wherein the laser diodes in a particular array are electrically connected in series.
- 47. The pumping module according to claim 21, further comprising:
a control module coupled to a respective laser diode, wherein, if the respective laser diode has a power output that is greater than the power output of a least powerful laser diode, then the control module adjusts the power output of the respective laser diode to the power output of the least powerful laser diode.
- 48. The pumping module according to claim 47, wherein the control module includes an electrical load disposed in electrical parallel with the respective laser diode, the electrical load being adapted to remove a portion of the power of the respective laser diode.
- 49. The pumping module according to claim 48, wherein the control module includes a computer control system, the computer control system automatically adjusting the power output of the respective laser diode.
- 50. The pumping module according to claim 21, further comprising:
a reflecting element disposed in the plane and opposite a respective laser diode array with respect to the laser crystal rod, the reflecting element reflecting, back to the laser crystal rod, light emitted from the respective laser diode array that passes through the laser crystal rod without contributing to the pumping of the laser diode.
- 51. The pumping module according to claim 50, wherein the reflecting element is mounted on a housing of a cooling system, the housing being disposed around at least a portion of the laser crystal rod and containing a cooling fluid that removes heat from the laser crystal rod.
- 52. The pumping module according to claim 50, wherein the reflecting element is made integral with a housing of a cooling system, the housing being disposed around at least a portion of the laser crystal rod and containing a cooling fluid that removes heat from the laser crystal rod.
- 53. The pumping module according to claim 50, wherein the reflecting element is disposed between two adjacent laser diode arrays.
- 54. The pumping module according to claim 21, wherein the pumping module is part of a pre-amplifier stage of a high power and high intensity solid state laser amplifying system.
- 55. The pumping module according to claim 21, wherein the pumping module is part of an amplifier stage of a high power and high intensity solid state laser amplifying system.
- 56. The pumping module according to claim 21, wherein the set includes an odd number of laser diode arrays.
- 57. The pumping module according to claim 21, wherein the laser diode arrays are disposed such that a line formed between any two laser diode arrays form does not intersect the longitudinal axis of the laser crystal rod.
- 58. The pumping module according to claim 21, in which either of (A) the lensing module includes a negative lense and the thermal lensing effects include a positive thermal lensing effect, or (B) the lensing module includes a positive lense and the thermal lensing effects include a negative thermal lensing effect.
- 59. The pumping module according to claim 21,
wherein the rotator is adapted to rotate a light polarization by approximately 90°.
- 60. A pumping module for amplifying light that propagates along an optical path, comprising:
a first laser crystal rod having a first longitudinal axis, the first longitudinal axis being disposed along the optical path; a first set of laser diode arrays disposed around the first laser crystal rod, the laser diode arrays of the first set being substantially equally spaced around the first laser crystal rod and being disposed in a first plane that is substantially orthogonal to the first longitudinal axis of the first laser crystal rod, the laser diode arrays of the first set including laser diodes, the laser diodes of the first set emitting light that pumps the first laser crystal rod; a second laser crystal rod having a second longitudinal axis, the second longitudinal axis being disposed along the optical path; a second set of laser diode arrays disposed around the second laser crystal rod, the laser diode arrays of the second set being approximately equally spaced around the second laser crystal rod and being disposed in a second plane that is substantially orthogonal to the second longitudinal axis of the second laser crystal rod, the laser diode arrays of the second set including laser diodes, the laser diodes of the second set emitting light that pumps the second laser crystal rod; a lensing module disposed along the optical path, the lensing module being adapted to approximately negate thermal lensing effects present in the first laser crystal rod and the second laser crystal; a rotator disposed along the optical path and between the first laser crystal rod and the second laser crystal rod, the rotator being adapted to approximately cancel thermally induced birefringence effects present in the first laser crystal rod with the thermally induced birefringence effects of the second laser crystal rod; and a Faraday rotator disposed along the optical path and adapted to approximately cancel cumulative birefringence effects of the first laser crystal rod and the second laser crystal rod.
- 61. The pumping module according to claim 60, wherein the second set of laser diode arrays is disposed at a rotation angle around the second longitudinal axis in the second plane with respect to the disposition of the first set of laser diode arrays around the first longitudinal axis in the first plane.
- 62. The pumping module according to claim 61, wherein the rotation angle is inversely proportional either to the number of laser diode arrays in the first set or to the number of the laser diode arrays in the second set.
- 63. The pumping module according to claim 60, wherein the first set and the second set each include a same odd number of laser diode arrays, the second set being rotated around the second longitudinal axis to a position with respect to the first set such that pumping uniformity is maximized with respect to the first laser crystal rod and the second laser crystal rod.
- 64. The pumping module according to claim 60, wherein the second set is rotated around the second longitudinal axis to a position with respect to the first set such that pumping uniformity is maximized over the first laser crystal rod and the second laser crystal rod.
- 65. The pumping module according to claim 60, wherein the rotator is adapted to rotate by approximately 90° a polarization of light propagating from the first laser crystal rod to the second laser crystal rod.
- 66. The pumping module according to claim 60,
wherein the pumping module is part of an amplifier stage of a high power and high intensity four-pass solid state laser amplifying system, and wherein the Faraday rotator approximately cancels cumulative birefringence effects of the first laser crystal rod and the second laser crystal rod over two passes.
- 67. A method for substantially uniformly pumping a laser crystal rod, comprising the steps of:
arranging an odd number of laser diode arrays substantially equally spaced around the laser crystal rod, the odd number of laser diode arrays being in a plane that is substantially perpendicular to a longitudinal axis of the laser crystal rod; housing laser diodes within the laser diode arrays, the laser diode having a light emitting surface that is approximately rectangular in shape, the approximately rectangular shape being characterized by a short side and a long side; orienting the laser diodes such that the light emitting surfaces are facing the laser crystal rod and the short sides of the light emitting surfaces extend in an approximately same direction as the longitudinal axis of the laser crystal rod; and emitting light from the light emitting surfaces of the laser diodes toward the laser crystal rod.
- 68. The method according to claim 67, further comprising the step of:
selecting the laser diodes to have approximately identical electrical and optical characteristics.
- 69. The method according to claim 67, further comprising the step of:
adjusting a power output of a particular laser diode such that the power output of the particular laser diode matches a power output of the laser diode with the least power output.
- 70. The method according to claim 67, further comprising the step of:
selecting the laser diode arrays to have approximately identical electrical and optical characteristics.
- 71. The method according to claim 67, further comprising the step of:
adjusting a power output of a particular laser diode array such that the power output of the particular laser diode array matches a power output of the laser diode array with the least power output.
- 72. The method according to claim 71, wherein the step of adjusting includes the steps of placing an electrical load in electrical parallel with the particular laser diode array, draining enough power away from the particular laser diode array via the electrical load such that the power output of the particular laser diode array matches the power output of the laser diode array with the least power output.
- 73. A method for substantially uniformly amplifying light in a laser crystal rod, comprising:
arranging an odd number of laser diode arrays substantially equally spaced around the laser crystal rod, the odd number of laser diode arrays being in a plane that is substantially perpendicular to a longitudinal axis of the laser crystal rod; housing laser diodes within the laser diode arrays, the laser diode having a light emitting surface that is approximately rectangular in shape, the approximately rectangular shape being characterized by a short side and a long side; orienting the laser diodes such that the light emitting surfaces are facing the laser crystal rod and the short sides of the light emitting surfaces extend in an approximately same direction as the longitudinal axis of the laser crystal rod; pumping the laser crystal rod with light emitted from the light emitting surfaces of the laser diodes; reducing thermal lensing effects in the laser crystal rod by directing light exiting the laser crystal rod through a lense module that is adapted to reduce the thermal lensing effects; and homogenizing non-uniformities caused by thermally induced birefringence effects in the laser crystal rod by directing the light exiting the laser crystal rod through a Faraday rotator.
- 74. A method for substantially uniformly amplifying light that propagates along an optical path, comprising:
arranging a first set of laser diode arrays substantially equally spaced around a first laser crystal rod, the first set being disposed in a plane that is substantially perpendicular to a first longitudinal axis of the first laser crystal rod, the first longitudinal axis being disposed along the optical path; arranging a second set of laser diode arrays substantially equally spaced around a second laser crystal rod, the second set being disposed in a plane that is substantially perpendicular to a second longitudinal axis of the second laser crystal rod, the second longitudinal axis being disposed along the optical path; housing laser diodes within the laser diode arrays of the first set and the second set, each laser diode having a light emitting surface that is approximately rectangular in shape, the approximately rectangular shape being characterized by a short side and a long side; orienting the laser diodes in the first set such that the light emitting surfaces in the first set are facing the first laser crystal rod and the short sides of the light emitting surfaces of the first set extend in an approximately same direction as the first longitudinal axis of the first laser crystal rod; orienting the laser diodes in the second set such that the light emitting surfaces in the second set are facing the second laser crystal rod and the short sides of the light emitting surfaces of the second set extend in an approximately same direction as the second longitudinal axis of the second laser crystal rod; pumping the first laser crystal rod with the light emitted from the light emitting surfaces of the laser diodes of the first set; pumping the second laser crystal rod with the light emitted from the light emitting surfaces of the laser diodes of the second set; reducing cumulative effects of thermal lensing in the first laser crystal rod and the second laser crystal rod by directing the light propagating along the optical path through a lensing module, the lensing module being adapted to reduce the thermal lensing effects; and homogenizing cumulative effects of thermally induced birefringence effects in the first laser crystal rod and the second laser crystal rod by directing the light propagating on the optical path through a Faraday rotator that rotates a light polarization.
- 75. An oscillator, comprising:
a pumping source providing pulsed pumping; a resonator cavity including a cavity dumper, a polarizer, a spectral filter, a Q-switch, a mode locker, and a solid state laser crystal rod pumped by the pumping source, wherein the Q-switch opens the resonator cavity at an end of a pump pulse cycle, the mode locker forces modes of the solid state laser crystal rod to form a short light pulse that circulates in the resonator cavity, wherein the spectral filter substantially smoothes out the short light pulse, and wherein, at peak intensity, the cavity dumper rotates a polarization of the short light pulse such that the short light pulse exits the resonator cavity through the polarizer.
- 76. The oscillator according to claim 75, wherein the spectral filter includes at least one comb filter.
- 77. The oscillator according to claim 75, wherein the spectral filter includes a first etalon and a second etalon.
- 78. The oscillator according to claim 77, wherein the first etalon includes an approximately 10 mm etalon.
- 79. The oscillator according to claim 77, wherein the first etalon includes an approximately 15 mm etalon.
- 80. The oscillator according to claim 78, wherein the first etalon and the second etalon smooth out the short light pulse by substantially removing temporal modulations in the short light pulse.
- 81. The oscillator according to claim 75, wherein the short light pulse that exits the resonator cavity through the polarizer is an input beam for a laser amplifying system.
- 82. The master oscillator according to claim 75, wherein the short light pulse that exits the resonator cavity through the polarizer includes approximately 1 mJ to approximately 2 mJ per pulse up to an approximately 1000 Hz repetition rate.
- 83. A process for producing laser crystal rods with similar dopant concentration profiles and substantial compositional uniformity, comprising the steps of:
growing a crystal boule from a melt including dopants; cutting a transverse slice of the crystal boule; and coring the transverse slice.
- 84. The laser crystal rods produced according to the process of claim 83.
- 85. A system for amplifying high power and high intensity laser light propagating along an optical path, comprising:
a master oscillator being structured to generate short light pulses that have been temporally smoothed using intracavity spectral filters, the short light pulses having a particular linear polarization; a first amplifier stage including
a first polarizing beam splitter being structured to pass polarization components parallel to the particular linear polarization and to reflect polarization components substantially orthogonal to the particular linear polarization; a second polarizing beam splitter being structured to pass polarization components parallel to the particular linear polarization and to reflect polarization 15 components substantially orthogonal to the particular linear polarization; a directional polarization rotator disposed between the first polarizing beam splitter and the second polarizing beam splitter, the directional polarization rotator being structured to pass light propagating from the first polarizing beam splitter to the second polarizing beam splitter and to rotate by approximately 90° the polarization of the light propagating from the second polarizing beam splitter to the first polarizing beam splitter;
a pumping module including
a laser crystal rod having a longitudinal axis, the longitudinal axis being disposed along the optical path, a set of laser diode arrays disposed around the laser crystal rod, the laser diode arrays being approximately equally spaced around the laser crystal rod and being disposed in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod, a lensing module disposed along the optical path, the lensing module being adapted to approximately negate thermal lensing effects present in the laser crystal rod during the pumping of the laser crystal rod, and a rotator disposed along the optical path, the rotator being adapted to approximately homogenize thermally induced birefringence effects present in the laser crystal rod during the pumping of the laser crystal rod, a non-directional polarization rotator that includes a Faraday rotator that rotates the polarization of the light by approximately 90° over two passes; a first reflector; and a second reflector, wherein the short light pulse from the master oscillator is directed into the first amplifier stage, wherein the short light pulse passes through the first polarizing beam splitter, the directional polarization rotator and the second polarizing beam splitter without a change in polarization, wherein the second polarizing beam splitter, the first reflector, the second reflector and the non-directional polarization rotator are positioned with respect to the pumping module such that the short pulse is reflected through and amplified by the pumping module four times, wherein the first reflector and the second reflector homogenizes non-uniformities present in the pumping module by inverting the short light pulse on each pass through the pumping module, and wherein the second polarizing beam splitter, the directional polarization rotator and the first polarizing beam splitter are positioned such that the short light pulse which has been amplified at least two times through the pumping module, passes through the second polarizing beam splitter and the directional polarization rotator and is reflected out of the first amplifier stage by the first polarizing beam splitter, the directional polarization rotator rotating the polarization of the amplified short light pulse by approximately 90°.
- 86. The system according to claim 85, wherein the first reflector and the second reflector include a material that efficiently dissipates heat.
- 87. The system according to claim 85, wherein at least one of the first reflector and the second reflector includes a sapphire material.
- 88. The system according to claim 85, wherein at least one of the first reflector and the second reflector includes a diamond material.
- 89. The system according to claim 86, wherein at least one of the first reflector and the second reflector is a Porro prism.
- 90. The system according to claim 85, wherein at least one of the first polarizing beam splitter and the second polarizing beam splitter includes a housing on which is applied a polarizing coating.
- 91. The system according to claim 85, wherein at least one of the first polarizing beam splitter and the second polarizing beam splitter includes a housing having an internal polarizing coating layer.
- 92. The system according to claim 85, wherein at least one of the first polarizing beam splitter and the second polarizing beam splitter includes a housing having a polarizing coating layer that does not have a substantial air-coating boundary.
- 93. The system according to claim 85, wherein the short light pulse that is reflected out of the first amplifier stage by the first polarizing beam splitter is used for micromachining.
- 94. The system according to claim 85, wherein the short light pulse that is reflected out of the first amplifier stage by the first polarizing beam splitter is used for cutting or drilling.
- 95. The system according to claim 85, further comprising:
a second amplifier stage coupled to the first amplifier stage, the second amplifier stage receiving and amplifying the short light pulse reflected out of the first amplifier stage by the first polarizing beam splitter of the first amplifier stage.
- 96. The system according to claim 95, wherein the short light pulse amplified by the second amplifier stage is used for cutting or drilling.
- 97. The system according to claim 95, wherein the second amplifier stage is substantially identical to the first amplifier stage.
- 98. The system according to claim 95, wherein the second amplifier stage is similarly structured as the first amplifier stage, at least one second amplifier stage including a plurality of laser crystal rods and a plurality of sets of laser diode arrays.
- 99. The system according to claim 98, wherein each set of laser diode arrays are disposed in a plane that is substantially orthogonal to the optical path, each set being disposed at a rotated angle with respect to a respective adjacent set.
- 100. A sub-micron lithographic system, comprising:
a master oscillator being structured to generate short light pulses that have been temporally smoothed using intracavity spectral filters, the short light pulses having a particular linear polarization; a first amplifier stage including
a first polarizing beam splitter being structured to pass polarization components parallel to the particular linear polarization and to reflect polarization components substantially orthogonal to the particular linear polarization; a second polarizing beam splitter being structured to pass polarization components parallel to the particular linear polarization and to reflect polarization components substantially orthogonal to the particular linear polarization; a directional polarization rotator disposed between the first polarizing beam splitter and the second polarizing beam splitter, the directional polarization rotator being structured to pass light propagating from the first polarizing beam splitter to the second polarizing beam splitter and to rotate by approximately 90° the polarization of the light propagating from the second polarizing beam splitter to the first polarizing beam splitter; a pumping module including
a laser crystal rod having a longitudinal axis, the longitudinal axis being disposed along the optical path, a set of laser diode arrays disposed around the laser crystal rod, the laser diode arrays being approximately equally spaced around the laser crystal rod and being disposed in a plane that is substantially orthogonal to the longitudinal axis of the laser crystal rod, the laser diode arrays including laser diodes, the laser diodes emitting light that pumps the laser crystal rod, a lensing module disposed along the optical path, the lensing module being adapted to approximately negate thermal lensing effects present in the laser crystal rod during the pumping of the laser crystal rod, and a rotator disposed along the optical path, the rotator being adapted to approximately homogenize thermally induced birefringence effects present in the laser crystal rod during the pumping of the laser crystal rod, a non-directional polarization rotator that includes a Faraday rotator that rotates the polarization of the light by approximately 90° over two passes; a first reflector; and a second reflector, a particular module including a set of second amplifier stages, the second amplifier stages being placed in parallel to each other; a radiation generator including a target material; and a collimator; wherein the short light pulse from the master oscillator is directed into the first amplifier stage, wherein the short light pulse passes through the first polarizing beam splitter, the directional polarization rotator and the second polarizing beam splitter without a change in polarization, wherein the second polarizing beam splitter, the first reflector, the second reflector and the non-directional polarization rotator are positioned with respect to the pumping module such that the short pulse is reflected through and amplified by the pumping module at least four times, wherein the first reflector and the second reflector homogenizes non-uniformities present in the pumping module by inverting the short light pulse on each pass through the pumping module, wherein the second polarizing beam splitter, the directional polarization rotator and the first polarizing beam splitter are positioned such that the short light pulse which has been amplified at least four times through the pumping module, passes through the second polarizing beam splitter and the directional polarization rotator and is reflected out of the first amplifier stage as output light by the first polarizing beam splitter, the directional polarization rotator rotating the polarization of the amplified short light pulse by approximately 90°, wherein the output light of the first amplifier stage enters the particular module including the set of second amplifier stages in which the output light is split among the second amplifier stages, wherein each second amplifier stage amplifies a portion of the output light, wherein the radiation generator is adapted to focus at least one light output by the particular module on the target material and to create a plasma that generates soft x-ray radiation or extreme ultraviolet radiation, and wherein the collimator is adapted to collimate at least a portion of the soft x-ray radiation or extreme ultraviolet radiation.
- 101. The sub-micron lithographic system according to claim 100, further comprising:
a stepper, wherein the collimator is adapted to collimate at least a portion of the soft x-ray radiation or extreme ultraviolet radiation to the stepper.
- 102. The system according to claim 100, wherein the particular module includes a harmonic generator coupled to each of the second amplifier stages such that, after the portions of the output light of the first amplifier stage have been amplified by the second amplifier stages, the harmonic generator generates harmonic light from light output by the second amplifier stages.
- 103. The system according to claim 102, wherein the radiation generator is adapted to focus at least one harmonic light output by the particular module on the target material and to create a plasma that generates soft x-ray radiation or extreme ultraviolet radiation
- 104. The system according to claim 100, wherein the second amplifier stages are substantially identical to the first amplifier stage.
- 105. The system according to claim 100, wherein the second amplifier stages are similarly structured as the first amplifier stage, at least one second amplifier stage including a plurality of laser crystal rods and a plurality of sets of laser diode arrays.
- 106. A method for producing substantially uniform pumping of a laser crystal rod, comprising the steps of:
pumping, via one or more laser diode arrays, the laser crystal rod without an input beam; viewing light output that is emitted from a longitudinal axis of the laser crystal rod on a visual display; adjusting orientation of the one or more laser diode arrays based on the viewed light output; and adjusting power received by individual laser diode arrays based on the viewed light output.
- 107. The method according to claim 106, further comprising the step of:
analyzing the viewed light of individual laser diode arrays.
Parent Case Info
[0001] This is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/689,539, filed Oct. 12, 2000, entitled “Beam Correcting Laser Amplifier”, which itself is based on U.S. Provisional Patent Application Ser. No. 60/159,521, filed Oct. 15, 1999, entitled “Beam Correcting Laser Amplifier”. Priority is claimed to the above-identified co-pending U.S. Patent Application and to the above-identified U.S. Provisional Patent Application, both of which are incorporated herein by reference in their entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60159521 |
Oct 1999 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09689539 |
Oct 2000 |
US |
Child |
09907154 |
Jul 2001 |
US |