Claims
- 1. An optical system, comprising:
a high reflector and an output coupler defining a resonator cavity with an optical axis; a slab gain medium positioned in the resonator cavity, the slab gain medium being configured to provide propagation of an optical laser beam along the optical axis through the slab medium; a first diode pump source producing a first pump beam incident on the slab gain medium in a direction perpendicular to the optical axis; and a cooling member coupled to the slab gain medium and providing cooling in a direction perpendicular to the optical axis and to the direction of the first pump beam.
- 2. The system of claim 1, wherein the cooling member includes first and second cooling elements positioned to provide conduction cooling of the gain medium from two opposing sides.
- 3. The system of claim 2, further comprising:
first and second thermal interface layers positioned between the gain medium and the first and second cooling elements.
- 4. The optical system of claim 2, wherein the first and second cooling members are positioned to provide a temperature gradient in the gain medium that is perpendicular to a plane of propagation of the pump beam in the gain medium.
- 5. The system of claim 1, wherein the first diode pump source is a diode array stack.
- 6. The system of claim 1, further comprising:
at least one collimating optical element positioned between the first diode pump source and the slab gain medium.
- 7. The system of claim 1, further comprising:
at least one optical element positioned between the first diode pump source and the slab gain medium to collimate the first pump beam.
- 8. The system of claim 6, wherein the collimating optical element includes a cylindrical lens.
- 9. The system of claim 5, wherein the diode array stack is configured to provide a collimated pump incident on the slab gain medium.
- 10. The system of claim 9, wherein the diode array stack is a multiplicity of diode bars arrayed horizontally.
- 11. The system of claim 10, wherein the emission wavelength of the diode bars are individually adjusted.
- 12. The system of claim 10, wherein each bar in the stack is individually collimated using a cylindrical optical element.
- 13. The system of claim 1, wherein the first diode pump source is a fiber coupled array configured to pump along a longest dimension of the slab gain medium.
- 14. The system of claim 1 wherein the emission wavelength of the first diode pump source is adjusted to obtain uniform absorption profile across the slab in the direction of the optical pump beam.
- 15. The system of claim 1, wherein an aspect ratio of the optical laser beam is substantially equally to an aspect ratio of a cross section of the slab gain medium.
- 16. The system of claim 1, wherein the resonator cavity is a hybrid resonator that is stable in a first direction and unstable in a second orthogonal direction.
- 17. The system of claim 16, wherein the hybrid resonator cavity produces an output beam with a M2 of less than 2 in both stable and unstable directions.
- 18. The system of claim 1, wherein the resonator cavity produces an output beam with a power that is greater than 100 W.
- 19. The system of claim 1, further comprising:
at least one optical element coupled to the slab gain medium and configured to produce a spatially symmetrized beam.
- 20. The system of claim 1, wherein the slab gain medium is a composite slab configured to guide a signal laser beam through an active layer.
- 21. The system of claim 1, wherein the slab gain medium is a composite designed and configured to guide the pump light so as to affect multiple passes through an absorbing active layer.
- 22. The system of claim 20, wherein the slab composite is formed from one or more materials, forming a central absorbing section sandwiched between two nonabsorbing layers
- 23. The system of claim 20, wherein the composite slab is a central active layer positioned between first d second dielectric members each having a lower index of refraction than the index of refraction of the active layer.
- 24. The system according to claim 15.1, wherein the composite
slab is several layers configured as a planar double clad structure.
- 25. The system of claim 1, wherein the resonator cavity includes a Q-switch.
- 26. The system of claim 24, wherein the Q-switch is an acousto-optic modulator.
- 27. The system of claim 24, wherein the Q-switch is an electro-optic modulator.
- 28. The system of claim 25, wherein the resonator cavity produces a pulsed output beam with a power greater than 100W.
- 29. The system of claim 16, wherein the hybrid resonator cavity includes a modulator.
- 30. The system of claim 29, wherein the modulator is a Q-switch
- 31. The system of claim 29, wherein the modulator is a mode locker.
- 32. The system of claim 1, further comprising:
a coating on a surface of the slab gain medium, wherein the coating is selected to provide back reflections of the first pump beam.
- 33. The system of claim 1, further comprising:
a second diode pump source that produces a second pump beam incident on the slab gain medium in a direction opposing a direction of the first pump beam.
- 34. A laser structure, comprising:
a high reflector and an output coupler defining a resonator cavity with an optical axis; a slab gain medium positioned in the resonator cavity and having an aspect ratio greater than 5, the slab medium being configured to provide propagation of an optical laser beam along the optical axis through the slab medium; a cooling member coupled to the slab gain medium; and a first diode pump source producing a first pump beam incident on the slab gain medium in a direction perpendicular to the optical axis.
- 35. The structure of claim 34, wherein the slab gain medium includes top and bottom surfaces, first and second side surfaces and first and second end faces, and the cooling member is coupled to the top and bottom surfaces.
- 36. The structure of claim 35, wherein the first pump beam is incident on the first side surface of the slab gain medium.
- 37. The structure of claim 35, wherein the first pump beam propagates in a direction parallel to the first and second end faces.
- 38. The system of claim 34, wherein the resonator cavity is a hybrid resonator that is stable in a first direction and unstable in a second orthogonal direction.
- 39. The system of claim 38, wherein the hybrid resonator cavity produces an output beam with an M2 of less than 2.
- 40. The system of claim 34, wherein the resonator cavity produces an output beam with a power greater than 100 W.
- 41. The system of claim 34, wherein the resonator cavity produces an output beam with a power greater than 300 W.
- 42. The system of claim 36, further comprising:
a second diode pump source that produces a second pump beam incident on the slab gain medium in a direction opposing a direction of the first pump beam.
- 43. The system of claim 36, further comprising:
a coating on a second side surface of the slab gain medium, wherein the coating is selected to provide back reflections of light.
- 44. The structure of claim 34, further comprising:
a modulator coupled to the resonator.
- 45. The structure of claim 44, wherein the modulator is a Q-switch.
- 46. The system of claim 45, wherein the Q-switch is an acousto-optic modulator.
- 47. The system of claim 46, wherein the Q-switch is an electro-optic modulator.
- 48. The system of claim 34, wherein the slab gain medium has an aspect ratio of less than about 40.
- 49. A laser structure, comprising:
a high reflector and an output coupler defining a resonator cavity with an optical axis; a slab gain medium positioned in the resonator cavity, the slab gain medium including top and bottom surfaces, first and second side surfaces and first and second end faces; a cooling member coupled to the top and bottom surfaces; a first diode pump source producing a first pump beam incident on a full face of at least one of the first and second side surfaces; and wherein an optical beam propagates in the slab gain medium in a plane that is parallel to at least one of the top and bottom surfaces.
- 50. The structure of claim 49, wherein the slab gain medium has an aspect ratio greater than 5.
- 51. The structure of claim 49, wherein the slab gain medium has an aspect ratio less than about 40.
- 52. The structure of claim 49, wherein the cooling member is configured to provide cooling in a direction perpendicular to the optical axis and the direction of the first pump beam.
- 53. The structure of claim 49, wherein the first pump beam propagates in a direction parallel to the first and second end faces.
- 54. The structure of claim 49, further comprising:
at least a second diode pump source that produces a second pump beam that is incident on the second side surface of the slab gain medium, and wherein the first pump beam is incident on the first side surface of the slab gain medium.
- 55. The structure of claim 49, wherein the resonator is a hybrid resonator
- 56. The structure of claim 55, wherein the resonator produces a high quality optical laser beam with an M2 no greater than 3 in any two orthogonal directions.
- 57. The structure of claim 55, further comprising:
one or more optical elements positioned at an exterior of the resonator to circularize an output beam of the resonator.
- 58. The structure of claim 49, wherein the optical laser beam has a power of at least 100 W.
- 59. The structure of claim 49, wherein the optical laser beam has a power of at least 300 W.
- 60. The structure of claim 49, further comprising:
a modulator coupled to the resonator.
- 61. The structure of claim 60, wherein the modulator is a Q-switch.
- 62. The structure of claim 49, wherein the slab gain medium has a rectangular geometry.
- 63. The system of claim 49, further comprising:
a coating on the second side surface of the slab gain medium, the second side surface wherein the first side surface is a pump side surface and the coating is selected to provide back reflections of light.
- 64. The system of claim 49, wherein the slab gain medium is a composite slab configured to guide a signal laser beam through an active layer.
- 65. The system of claim 49, wherein the slab gain medium is a composite designed and configured to guide the pump light so as to affect multiple passes through an absorbing active layer.
- 66. The system of claim 65, wherein the slab composite is formed from one or more materials, forming a central absorbing section sandwiched between two nonabsorbing layer
- 67. The system of claim 65, wherein the composite slab is a central active layer positioned between first and second dielectric members each having a lower index of refraction than the index of refraction of the active layer.
- 68. The system according to claim 65, wherein the composite slab is several layers configured as a planar double clad structure.
- 69. A optical system, comprising:
a high reflector and an output coupler defining a resonator cavity with an optical axis; a slab gain medium positioned in the resonator cavity and having an aspect ratio less than 50, the slab medium being configured to provide propagation of an optical laser beam along the optical axis through the slab medium; a cooling member coupled to the slab gain medium; and a first diode pump source producing a first pump beam incident on the slab gain medium in a direction perpendicular to the optical axis.
- 70. The system of claim 69, wherein the slab gain medium guides the optical laser beam in the slab gain medium to provide low order modes.
- 71. The system of claim 69, wherein the slab gain medium is a composite slab configured to guide a signal laser beam through an active layer.
- 72. The system of claim 69, wherein the slab gain medium is a composite designed and configured to guide the pump light so as to affect multiple passes through an absorbing active layer.
- 73. The system of claim 72, wherein the slab composite is formed from one or more materials, forming a central absorbing section sandwiched between two nonabsorbing layer
- 74. The system of claim 72, wherein the composite slab is a central active layer positioned between first d second dielectric members each having a lower index of refraction than the index of refraction of the active layer.
- 75. The system according to claim 72, wherein the composite slab comprises several layers configured as a planar double clad structure.
- 76. The system of claim 69, wherein the slab gain medium is configured to guide the first pump beam an increase a pump absorption length in the slab gain medium.
- 77. An optical system, comprising:
a slab gain medium positioned along an optical axis and having an aspect ratio greater than 5, the slab gain medium being configured to provide propagation of an optical laser beam along the optical axis through the slab medium; a first diode pump source producing a first pump beam incident on the slab gain medium in a direction perpendicular to the optical axis; and a cooling member coupled to the slab gain medium and provide cooling in a direction perpendicular to the optical axis and to the direction of the first pump beam.
- 78. The system of claim 77, further comprising:
input and output mirrors that resonate the optical laser beam.
- 79. The system of claim 77, wherein the optical system is an amplifier configured to provide amplification of an input signal beam.
- 80. A method for producing a high quality beam from a diode pumped solid state laser at high power, comprising:
propagating an optical beam through a slab gain medium; providing an optical system coupled to the slab gain medium that provides pumping, cooling and extraction of an optical beam along axes that are mutually orthogonal; and producing an output beam with a power of at least 80 W.
- 81. The method of claim 80, further comprising:
conductively cooling the slab gain medium.
- 82. The method of claim 80, wherein the optical system is a laser resonator.
- 83. The method of claim 80, wherein the laser resonator includes a modulator.
- 84. The method of claim 80, wherein the pumping is provided by a diode laser array.
- 85. The method of claim 88, wherein the laser diode array is configured as a stack of multiplicity of diode bars horizonatally arrayed along a longer dimension of the slab gain medium.
- 86. The method of claim 88, wherein the pumping radiation is fiber coupled to the slab gain medium.
- 87. The method of claim 80, wherein the optical system is configured as an amplifier.
- 88. A method for producing a high quality beam from a diode pumped solid state laser at high power, comprising:
providing an optical system with a slab gain medium that has a depth, length and a width, wherein the width is selected to maximize absorption from a pumping radiation and the depth is selected to provide a one-dimensional thermal profile; propagating the optical beam through the slab gain medium; and producing a beam with a power of at least 80 W
- 89. The method of claim 88, wherein the width-to-depth aspect ratio is further constrained to be greater than about 5.
- 90. The method of claim 88, wherein the length of the slab gain medium is selected to maximize the pumping radiation power.
- 91. The method of claim 88, wherein the wavelength of the pumping radiation is selected to provide a uniform absorption profile across the width of the slab gain medium.
- 92. The method of claim 88, further comprising:
conductively cooling the slab gain medium.
- 93. The method of claim 88, wherein the optical system is a laser resonator.
- 94. The method of claim 88, wherein the optical system is an amplifier.
- 95. An optical apparatus, comprising:
a slab gain medium positioned in the resonator cavity, the slab gain medium being configured to provide propagation of an optical laser beam along the optical axis through the slab medium; a first diode pump source producing a first pump beam incident on the slab gain medium in a direction perpendicular to the optical axis; and a cooling member coupled to the slab gain medium and providing cooling in a direction perpendicular to the optical axis and to the direction of the first pump beam.
- 96. The laser structure of claim 1, wherein the slab gain medium has a width selected to match a numerical aperture and a lateral dimension of the first pump beam.
- 97. The laser structure of claim 1, wherein the slab gain medium is made of a material that is not dimensioned as a single mode waveguide in any direction.
- 98. The laser structure of claim 1, wherein the output beam is a CW beam.
- 99. The laser structure of claim 1, wherein the output beam is pulsed.
- 100. The laser structure of claim 1, wherein the output beam has an M2 value between 1.5 and 30.
- 101. The laser structure of claim 1, wherein the output coupler has a graded reflectivity profile.
- 102. The laser structure of claim 1, wherein at least a portion of the resonator cavity is a positive branch resonator.
- 103. The laser structure of claim 1, wherein at least a portion of the resonator cavity is a negative branch resonator.
- 104. The laser structure of claim 1, wherein the resonator cavity is an off-axis resonator.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Serial No. 60/332,666, filed Nov. 13, 2001, and is also a continuation-in-part of U.S. Ser. No. 10/035,805, filed Oct. 25, 2001, both of which applications are fully incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60332666 |
Nov 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10035805 |
Oct 2001 |
US |
Child |
10294997 |
Nov 2002 |
US |