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Laser niedriger und mittlerer Ausgangsleistungen

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Diodengepumpte Festkörperlaser

Part of the book series: Laser in Technik und Forschung ((LASER TECHNIK))

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Zusammenfassung

Die Verwendung von Diodenlasern für die Anregung von Festkörperlasern eröffnet sehr vielfältige Möglichkeiten bei der Konstruktion von diodengepumpten Lasern. Dies zeigt sich besonders im Bereich kleiner und mittlerer Ausgangsleistungen, wo viele verschiedene Laser für eine Vielzahl unterschiedlichster Anwendungen entstanden sind. Ein wichtiges Entwicklungsziel ist dabei immer ein hoher Wirkungsgrad, wodurch sich dann meist auch andere positive Lasereigenschaften wie eine gute Strahlqualität oder auch ein besonders kompakter Laseraufbau leichter erreichen lassen.

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Literatur

  1. D.L. Sipes: Highly efficient neodymium: yttrium aluminum garnet laser end pumped by a semiconductor laser array; Appl. Phys. Lett. 47 (1985) 7

    Google Scholar 

  2. B. Zhou, T.J. Kane, G.J. Dixon, R.L. Byer: Efficient, frequency-stable laser-diode pumped Nd:YAG laser; Opt Lett. 10 (1985) 62

    Google Scholar 

  3. W.J. Kozlovsky, T.Y. Fan, R.L. Byer: Diode-pumped continuous-wave Nd:glass laser; Opt. Lett. 11 (1986) 789

    Google Scholar 

  4. J. Berger, D.F. Welch, D.R Scifres, W. Streifer, P.S. Cross: High power, high efficient neodymium:yttrium aluminum garnet laser end pumped by a laser diode array; Appl. Phys. Lett. 51 (1987) 1213

    Google Scholar 

  5. R.A. Fields, M. Birnbaum, C.L. Fincher: Highly efficient Nd:YVO4 diode-laser end-pumped laser; Appl. Phys. Lett. 51 (1987) 1885

    Google Scholar 

  6. R. Scheps: Efficient laser diode pumped Nd lasers; Appl. Opt. 28 (1989) 89

    Google Scholar 

  7. R.A.Fields, T.S.Rose, M.E.Innocenzi, H.T.Yura, C.L.Fincher: Diode laser end-pumped neodymium lasers: The road to higher powers; OSA Proc on Advanced Solid State Lasers (North Falmouth, 1989), Bd. 5 (1989) 301

    Google Scholar 

  8. N.P. Schmitt, P.Peuser, W. Waidelich: Optisches Pumpen von Nd:YAG-Lasern mit Laserdioden; in: Optoelektronik in der Technik (Laser 89), Hrsg.: W. Waidelich, Springer-Verlag, Berlin, 1990, S. 166

    Google Scholar 

  9. T.Y. Fan, A. Sanchez, W.E. DeFeo: Scalable, end-pumped, diode-laser-pumped laser; Opt. Lett. 14 (1989) 1057

    Google Scholar 

  10. D.W. Hughes, J.R.M. Barr, D.C. Hanna: A high power, high efficiency, laser-diode-pumped, continuous wave miniature Nd:glass laser: Opt. Commun. 84 (1991) 401

    Google Scholar 

  11. D.C. Shannon, R.W. Wallace: High-power Nd:YAG laser end pumped by a cw, 10 mm × 1 μm aperture, 10-W laser-diode bar; Opt. Lett. 16 (1991) 318

    Google Scholar 

  12. S.C. Tidwell, J.F. Seamans, C.E. Hamilton, C.H Muller, D.D. Lowenthal: Efficient, 15-W output power, diode-end-pumped Nd:YAG laser; Opt. Lett. 16 (1991) 584

    Google Scholar 

  13. T.S. Rose, J.S. Swenson, R.A. Fields: High-efficiency longitudinal diode bar pumping of solid-state lasers; OSA Proc. on Advanced Solid-State Lasers (Santa Fe, 1992), Bd. 13 (1992) 186

    Google Scholar 

  14. S. Yamaguchi, H. Imai: Efficient Nd:YAG laser end-pumped by a 1cm aperture laser-diode bar with a GRIN lens array coupling; IEEE J. Quantum Electron. 28 (1992) 1101

    Google Scholar 

  15. L.R. Marshall, A. Kaz, H. Verdun: Cw-diode, end-pumped Nd:YLF laser with an astigmatic resonator; CLEO 93, Tech. Digest, Beitrag CMF5 (1993) 642

    Google Scholar 

  16. J. Berger, D.F. Welch, W. Streifer, D.R. Scifres, N.J. Hoffinan, J.J. Smith, D. Radecki: Fiber-bundle coupled, diode end-pumped Nd.YAG laser; Opt. Lett. 13 (1988) 306

    Google Scholar 

  17. K. Wallmeroth, P. Peuser: Single-frequency TEM00 diode-pumped Nd:YAG emits 0.5 W; Laser Focus World, April 1989, S. 38

    Google Scholar 

  18. N.P. Schmitt: Untersuchungen zum effizienten Pumpen von Festkörperlasern mit Halbleiter-Laserdioden; Diplomarbeit, Ludwig-Maximilians-Universität München, 1989

    Google Scholar 

  19. Y. Kaneda, Oka, H. Masuda, S. Kubota: 7.6W of continuous-wave radiation in a TEM00 mode from a laser-diode end-pumped Nd:YAG laser; Opt. Lett. 17 (1992) 1003

    Google Scholar 

  20. P. Zeller, K. Altmann, Th. Halldorsson, S. Heinemann, A. Mehnert, G. Reithmeier, P. Steinbach, P. Peuser: Diodengepumpte Festkörperlaser: Praktische Lösungsansätze für das longitudinale und transversale Pumpen im Dauerstrichbetrieb; in: Laser in der Technik (Laser 93), Hrsg.: W. Waidelich, Springer-Verlag, Berlin, 1994, S. 90

    Google Scholar 

  21. T.Y. Fan, P.A. Schulz: Aperture guiding in cw, quasi-three-level Yb:YAG lasers; CLEO 93, Tech. Digest, Beitrag CFM2 (1993) 640

    Google Scholar 

  22. G. Thompson: The effect of thermally induced gain gradients in solid state lasers; IEEE J. Quantum Electron. 29 (1993) 2225

    Google Scholar 

  23. T.M. Baer, M.S. Keirstead: Modeling of end-pumped solid-state lasers; CLEO 93, Tech. Digest, Beitrag CFM1 (1993) 638

    Google Scholar 

  24. S.C. Tidwell, J.F. Seamans, M. S. Bowers: Highly efficient 60-W TEM00 cw diode-end-pumped Nd:YAG laser; Opt. Lett. 18 (1993) 116

    Google Scholar 

  25. S. Tidwell, J. Seamans, M. Bowers, A. Cousins: Scaling cw diode-end-pumped Nd:YAG lasers to high average powers; IEEE J. Quantum Electron. 28 (1992) 997

    Google Scholar 

  26. U.O. Farrukh, A.M. Buoncristiani, C.E. Byvik: An analysis of the temperature distribution in finite solid-state laser rods; IEEE J. Quantum Electron. 24 (1988) 2253

    Google Scholar 

  27. J. Frauchiger, P. Albers, H.P. Weber: Modeling of thermal lensing and higher order ring mode oscillation in end-pumped cw Nd:YAG lasers; IEEE J. Quantum Electron. 28 (1992) 1046

    Google Scholar 

  28. A.K. Cousins: Temperature and thermal stress scaling in finite-length end-pumped laser rods; IEEE J. Quantum Electron. 28 (1992) 1057

    Google Scholar 

  29. S.B. Sutton, G.F. Albrecht: Optical distortion in end-pumped solid-state rod lasers; Appl. Opt. 32 (1993) 5256

    Google Scholar 

  30. D. Golla, A. Berndt, W. Schöne, I. Kröpke, H. Schmidt: Mit Diodenlasern transversal angeregte Slab-Laser; Laser und Optoelektronik 25(1) (1993) 61

    Google Scholar 

  31. D. Golla, H. Zellmer, W. Schöne, I. Freitag, I. Kröpke, H. Welling: 15-W single-frequency operation of a cw, diode laser-pumped Nd:YAG ring laser; CLEO 93, Tech. Digest, Beitrag CthR1 (1993) 480

    Google Scholar 

  32. U.J. Greiner, H.H. Klingenberg, D.R Walker, C.J. Flood, H.M. van Driel: Diode-pumped Nd:YAG laser using reflective pump optics; Appl. Phys. B 58 (1994) 393

    Google Scholar 

  33. T.M. Baer, D.F. Head, P. Gooding, G.J. Kintz, S. Hutchinson: Performance of diode-pumped Nd:YAG and Nd:YLF lasers in a tightly folded resonator configuration; IEEE J. Quantum Electron. 28 (1992) 1131

    Google Scholar 

  34. R. Scheps, J.F. Myers: Efficient, scalable, internally folded Nd:YAG laser end-pumped by laser diodes; IEEE J. Quantum Electron. 29 (1993) 1515

    Google Scholar 

  35. J.D. Cao, B.M. Laliberte, R.A. Minns. HPo, R.F. Robinson, B.H Rockney, R.R Tricca, Y.H Zhang: Five watt single transverse mode neodymium-doped fiber laser; CLEO 93, Tech. Digest, Beitrag CFJ3 (1993) 622

    Google Scholar 

  36. W.M. Grossman, M. Gifford, R.W. Wallace: Short-pulse Q-switched 1.3- and 1-μm diode-pumped lasers; Opt. Lett. 15 (1990) 622

    Google Scholar 

  37. H. Plaessman, F. Stahr, W.M. Grossman: Reducing pulse durations in diode pumped Q-switched solid-state lasers; IEEE Phot. Tech. Lett. 3 (1991) 885

    Google Scholar 

  38. J.J. Zayhowski, C. Dill: Diode-pumped microchip lasers electro-optically Q-switched at high pulse repetition rates; Opt. Lett. 17 (1992) 1201

    Google Scholar 

  39. M.S. Keirstead, T.M. Baer, S.H. Hutchinson, J. Hobbs: High repetition-rate, diode-bar pumped, Q-switched Nd:YVO4 laser; CLEO 93, Tech. Digest, Beitrag CFM4 (1993) 642

    Google Scholar 

  40. S.E. Sverchkov, B.I. Denker, V.V. Osiko, Yu.E. Sverchkov, A.P. Fefelov, S.I. Khomenko: Effective eyesafe frustrated total internal reflection Q-switched erbium glass lasers; SPIE Bd. 1627, Solid State Lasers III (1992) 42

    Google Scholar 

  41. B.I. Denker, A.A. Korchagin, V.V. Osiko, S.E. Sverchkov, T.H Allik, J.A. Hutchinson: Diode-pumped and FTIR Q-switched laser performance of novel Yb-Er glass; OSA Conf. on Advanced Solid-State Lasers (Salt Lake City, 1994), Tech. Digest, Beitrag AThB1 (1994) 320

    Google Scholar 

  42. M. Kokta; Union Carbide Corp., private Mitteilung, 1991

    Google Scholar 

  43. D.M. Andrauskas, C. Kennedy: Tetravalent chromium solid-state passive Q-switch for Nd:YAG laser systems; OSA Proc. on Advanced Solid-State Lasers (Hilton Head, 1991), Bd. 10 (1991) 393

    Google Scholar 

  44. I.V. Klimov, M. Yu. Nikol’skii, V.B. Tsvetkov, I.A. Shcherbakov: Passive Q-switching of pulsed Nd3+ lasers using YSGG:Cr4+ crystal switches exhibiting phototropic properties; Sov. J. Quantum Electron. 22 (1992) 603

    Google Scholar 

  45. I.V. Klimov, L.Leininger, G. Phillipps, V.B. Tsvetkov, I.A. Shcherbakov: Passive Q-switching of Nd-lasers with Cr4+: YSGG-crystals; Festkörperlaser-Institut Berlin GmbH, Interner Bericht, Aug. 1993

    Google Scholar 

  46. M.I. Demchuk, V.P. Mikhailov, N.I. Zhavoronkov, N.V. Kuleshov, P.V. Prokoshin, K.V. Yumashev, M.G. Livshits, B.I. Minkov: Chromium-doped forsterite as a solid-state saturable absorber; Opt. lett. 17 (1992) 929

    Google Scholar 

  47. A. Pfeiffer, S. Heinemann, A. Mehnert, N.P. Schmitt, P. Peuser: Passive Q-switching of diode-pumped solid-state lasers with Cr4+: YAG crystals; in: Laser in der Technik (Laser 93), Hrsg.: W. Waidelich, Springer-Verlag, Berlin, 1994, S. 94

    Google Scholar 

  48. S. Zhou, K.K. Lee. Y.C. Chen, S. Li: Monolithic self-Q-switched Cr,Nd:YAG laser; Opt. Lett. 18 (1993) 511

    Google Scholar 

  49. Y.C. Chen, S. Li, K.K. Lee, S. Zhou: Self-stabilized single-longitudinal-mode operation in a self-Q-switched Cr,Nd:YAG laser; Opt. Lett. 18 (1993) 1418

    Google Scholar 

  50. A. Cordova-Plaza, M.J.F. Digonnet, H.J. Shaw: Miniature cw and active internally Q-switched Nd:MgO:LiNbO3 laser; IEEE J. Quantum Electron. QE-23 (1987) 262

    Google Scholar 

  51. J.A. Morris, C.R. Pollock: Passive Q-switching of a diode-pumped Nd:YAG laser with a saturable absorber; Opt. Lett. 15 (1990) 440

    Google Scholar 

  52. R. Beach, J. Davin, S. Mitchell, W. Benett, B. Freitas, R. Solarz: Passively Q-switched transverse-diode-pumped Nd3+.YLF laser oscillator; Opt. Lett. 17 (1992) 124

    Google Scholar 

  53. Y. Tsou, E. Garmire, W. Chen, M. Birnbaum, R. Asthana: Passive Q-switching of Nd:YAG lasers by use of bulk semiconductors; Opt. Lett. 18 (1993) 1514

    Google Scholar 

  54. K.L.Vodopyanov, A.V. Lukashev, C.C. Phillips, I.T. Ferguson: Passive mode locking and Q-switching of an erbium 3 μm laser using thin InAs epilayers grown by molecular beam epitaxy; Appl. Phys. Lett. 59 (1991) 1658

    Google Scholar 

  55. K.L.Vodopyanov, A.V Lukashev, C.C. Phillips: Nano- and picosecond 3μm Er:YSGG lasers using InAs as passive Q-switchers and mode-lockers; Opt. Commun. 95 (1993) 87

    Google Scholar 

  56. F. Könz, M. Frenz, V. Romano, M. Forrer, H.P. Weber: Active and passive Q-switching of a 2.79 um Er:Cr:YSGG laser; Opt. Commun. 103 (1993) 398

    Google Scholar 

  57. S. Basu, R.L. Byer: Continuous-wave mode-locked Nd:glass laser pumped by a laser diode; Opt. Lett. 13 (1988) 458

    Google Scholar 

  58. G.T. Maker, S.J. Keen, A.I. Ferguson: Mode-locked and Q-switched operation of a diode laser pumped Nd:YAG laser operating at 1.064 urn; Appl. Phys. Lett. 53 (1988) 1675

    Google Scholar 

  59. S.J. Keen, A.I. Ferguson: Subpicosecond pulse generation from an all solid-state laser; Appl Phys. Lett. 55 (1989) 2164

    Google Scholar 

  60. G.T. Maker, A.I. Ferguson: Frequency-modulation mode-locking of a diode-pumped Nd:YAG laser; Opt. Lett. 14 (1989) 788

    Google Scholar 

  61. K.J. Weingarten, D.C. Shannon, R.W. Wallace, U. Keller: Two-gigahertz repetiton-rate diode-pumped, mode-locked Nd:YLF laser; Opt. Lett. 15 (1990) 962

    Google Scholar 

  62. G.T. Maker, A.I. Ferguson: Frequency modulation mode-locking and Q-switching of a diode-laser-pumped Nd:YLF laser; Electron. Lett. 25 (1989) 1025

    Google Scholar 

  63. G.P.A. Malcolm, M. Ebrahimzadeh, A.I. Ferguson: Efficient frequency conversion of mode-locked diode-pumped lasers and tunable all-solid-state laser sources; IEEE J. Quantum Electron. 28 (1992) 1172

    Google Scholar 

  64. J. Goodberlet, J. Jacobson, J.G. Fujimoto, P.A. Schulz, T.Y. Fan: Self-starting additive mode-locked diode-pumped Nd:YAG laser; Opt Lett. 15 (1990) 504

    Google Scholar 

  65. G.P.A. Malcom, P.F. Curley, A.I. Ferguson: Additive-pulse mode-locking of a diode-pumped Nd:YLF laser; Opt. Lett. 15 (1990) 1303

    Google Scholar 

  66. M.J. McCarthy, G.T. Maker, D.C. Hanna: Efficient frequency doubling of a self-starting additive-pulse mode-locked diode pumped Nd:YAG laser; Opt. Commun. 82 (1991) 327

    Google Scholar 

  67. D.W. Hughes, J.R.M. Barr: Laser diode pumped solid state lasers; J. Phys. D: Appl. Phys. 25 (1992) 563

    Google Scholar 

  68. M.H. Ober, E. Sorokin, I. Sorokina, F. Krausz, E. Wintner, I.A. Shcherbakov: Subpicosecond mode locking of a Nd3+ -doped garnet laser; Opt. Lett. 17 (1992) 1364

    Google Scholar 

  69. U. Keller, T.K. Woodward, D.L. Sivco, A.Y. Cho: Coupled-cavity resonant passive mode-locked Nd:yttrium lithium fluoride laser; Opt. Lett. 16 (1991) 391

    Google Scholar 

  70. U. Keller, T.H. Chiu: Resonant passive mode-locked Nd:YLF laser; IEEE J. Quantum Electron. 28 (1992) 1710

    Google Scholar 

  71. A.E. Siegman: Lasers; University Science Books, Mill Valley, Calif, 1986

    Google Scholar 

  72. G.P.A. Malcolm, A.I. Ferguson: Self-mode-locking of a diode-pumped Nd:YLF laser; Opt. Lett. 16 (1991) 1967

    Google Scholar 

  73. K.X. Liu, C.J. Flood, D.R. Walker, H.M. van Driel: Kerr lens mode locking of a diode-pumped Nd:YAG laser; Opt Lett. 17 (1992) 1361

    Google Scholar 

  74. G.P.A Malcolm, A.I. Ferguson: Mode-locking of diode laser-pumped solid-state lasers; Optical and Quantum Electron. 24 (1992) 705

    Google Scholar 

  75. F. Balembois, P. Georges, A Brun: Quasi-continuous-wave and actively mode-locked diode-pumped Cr3+LiSrAIF6 laser; Opt. Lett. 18 (1993) 1730

    Google Scholar 

  76. Deutsches Patent DE 41 01 522

    Google Scholar 

  77. D.W. Anthon, T.J. Pier: Intracavity pumping of solid-state lasers with Nd:YAG; LEOS 91, Conference Digest, Beitrag ELT3.3 (1991) 49

    Google Scholar 

  78. R.C. Stoneman, L. Esterowitz: Intracavity-pumped 2.1-μm Ho3+: YAG laser; OSA Proc. on Advanced Solid-State Lasers (Santa Fe, 1992) Bd. 13 (1992) 114

    Google Scholar 

  79. W.S. Rabinovich, S.R. Bowman, B.J. Feldman, M.J. Winings: Tunable laser pumped 3μm Ho:YAlO3 laser; IEEE J. Quantum Electron. 27 (1991) 895

    Google Scholar 

  80. J.P. Cuthbertson, G.J. Dixon: Pump-resonant excitation of the 946-nm Nd:YAG laser; Opt. Lett. 16 (1991) 396

    Google Scholar 

  81. W.J. Kozlovsky, W.P. Risk: Efficient diode-laser pumped 946-nm Nd:YAG laser with resonantly-enhanced pump absorption; CLEO 91, Tech. Digest, Beitrag CME1 (1991) 34

    Google Scholar 

  82. M.K. Reed, W.J. Kozlovsky, R.L.Byer, G.L.Harnagel, P.S. Cross: Diode-laser-array-pumped neodymium slab oscillators; Opt. Lett. 13 (1988) 204

    Google Scholar 

  83. F. Hanson, D. Haddock: Laser diode side pumping of neodymium laser rods; Appl. Opt. 27 (1988) 80

    Google Scholar 

  84. F. Hanson: Laser-diode side-pumped Nd:YAIO3 laser at 1.08 and 1.34μm; Opt. Lett. 14 (1989) 674

    Google Scholar 

  85. T.H. Allik, W.W. Hovis, D.P.Caffey, V. King: Efficient diode-array-pumped Nd:YAG and Nd:Lu:YAG lasers; Opt. Lett. 14 (1989) 116

    Google Scholar 

  86. D.P.Caffey, R.A. Utano, T.H. Allik: Diode array side-pumped neodymium-doped gadolinium scandium gallium garnet rod and slab lasers; Appl. Phys. Lett. 56 (1990) 808

    Google Scholar 

  87. D. Welford, D.M. Rines, B.J. Dinerman: Efficient TEM00-mode operation of a laser-diode side-pumped Nd:YAG laser; Opt. Lett. 16 (1991) 1850

    Google Scholar 

  88. L.M. Marshall, A. Kaz, R.L. Burnham: Highly efficient TEM00 operation of transversely diode-pumped Nd:YAG lasers; Opt. Lett. 17 (1992) 186

    Google Scholar 

  89. H. Ajer, S. Landro, G. Rustad, K. Stenersen: Efficient diode-laser side-pumped TEM00-mode Nd: YAG laser; Opt. Lett. 17 (1992) 1785

    Google Scholar 

  90. H. Zbinden, J.E. Balmer: Q-switched Nd:YLF laser end-pumped by a diode-laser bar; Opt. Lett. 15 (1990) 1014

    Google Scholar 

  91. H.R. Verdun, T. Chuang: Efficient TEM00-mode operation of a Nd:YAG laser end-pumped by a three-bar high-power diode-laser array; Opt. Lett. 17 (1992) 1000

    Google Scholar 

  92. C.F. Rae, J.A.C. Terry, B.D. Sinclair, M.H. Dunn, W. Sibbett: Single-frequency, end-pumped Nd:YLF laser excited by a 12-mJ diode-laser array; Opt. Lett. 17 (1992) 1673

    Google Scholar 

  93. A.J.W. Brown, R. Mead, W.R. Bosenberg: High-repetition-rate diode-end-pumped Nd:YLF laser; CLEO 93, Tech. Digest, Beitrag CFM7 (1993) 644

    Google Scholar 

  94. T. Graf, J.E. Balmer: High-power Nd:YLF laser end-pumped by a diode-laser bar; Opt. Lett. 18 (1993) 1317

    Google Scholar 

  95. R. Beach, P. Reichert, W. Benett, B. Freitas, S. Mitchell, A. Velsko, J. Davin, R. Solarz: Scalable diode-end-pumping technology applied to a 100-mJ Q-switched Nd3+:YLF laser oscillator; Opt. Lett. 18 (1993) 1326

    Google Scholar 

  96. C. Larat, M. Schwarz, J.P. Pocholle: High power surface emitting laser diode pumping of Nd:YAG slab; Electron. Lett. 28 (1992) 1630

    Google Scholar 

  97. F. Feugnet, M. Schwarz, C. Larat, J.P. Pocholle, M. Papuchon: TEM00 high efficiency surface emitting laser diode longitudinally pumped Nd:YVO4 laser; OSA Conf. on Advanced Solid-State Lasers (Salt Lake City, 1994), Tech. Digest, Beitrag AWC2 (1994) 233

    Google Scholar 

  98. A. Mehnert, P. Peuser, N.P. Schmitt: New solid state lasers for applications in lidar systems; in: Laser in der Umweltmeßtechnik, Hrsg.: C. Werner, V. Klein, K. Weber; Springer-Verlag, Berlin, 1992, S. 201

    Google Scholar 

  99. W. Krichbaumer, H. Herrmann, E. Nagel, R. Häring, J. Streicher, Ch. Werner, A Mehnert, T. Halldorsson, S. Heinemann, P. Peuser, N.P. Schmitt: A diode-pumped Nd:YAG lidar for airborne cloud measurements; Optics and Laser Technology 25 (1993) 283

    Google Scholar 

  100. J.E. Bernard, A.J. Alcock: High-efficiency diode-pumped Nd:YVO4 slab laser; Opt. Lett. 18 (1993) 968

    Google Scholar 

  101. T. Brand; private Mitteilung, Festkörperlaser-Institut Berlin, März 1994

    Google Scholar 

  102. Y.K. Park, G. Giuliani, R.L. Byer: Single axial mode operation of a Q-switched Nd:YAG oscillator by injection seeding; IEEE J. Quantum Electron. QE-20 (1984) 117

    Google Scholar 

  103. N.P. Barnes, J.C. Barnes: Injection seeding I: Theory; IEEE J. Quantum Electron. 29 (1993) 2670

    Google Scholar 

  104. R.L. Schmitt, L.A. Rahn: Diode-laser-pumped Nd:YAG laser injection seeding system; Appl. Opt. 25 (1986) 629

    Google Scholar 

  105. P. Esherick, A. Owyoung: Polarization feedback stabilization of an injection-seeded Nd:YAG laser for spectroscopic applications; J. Opt. Soc. Am. B 4 (1987) 41

    Google Scholar 

  106. C.J. Norrie, B.D. Sinclair, N. Gallaher, M.H. Dunn, W. Sibbett: Single-frequency operation of diode-laser-array transverse-pumped Q-switched Nd:YAG laser; Electron. Lett. 25 (1989) 1115

    Google Scholar 

  107. T.J. Kane, T.S. Kubo, R.W. Wallace: Diode-pumped, injection-seeded, Q-switched Tm:YAG laser; LEOS 90, Conference Proa, Beitrag SSL1.3/ThL3 (1990) 514

    Google Scholar 

  108. S.W. Henderson, C.P. Hale, J.R. Magee: Injection-seeded operation of a Q-switched Cr,Tm,Ho:YAG laser; OSA Proc. on Advanced Solid-State Lasers (Salt Lake City, 1990), Bd. 6 (1991) 127

    Google Scholar 

  109. J. Berger, G. Harnagel, D.F. Welch, D.R. Scifres, W. Streifer: Direct modulation of a Nd:YAG laser by combined side and end laser diode pumping; Appl. Phys. Lett. 53 (1988) 268

    Google Scholar 

  110. S. Seeger, S. Monajembashi, K.-J. Hutter, G. Futterman, J. Wolfrum, K.O. Greulich: Application of laser optical tweezers in immunology and molecular genetics; Cytometry 12 (1991) 497

    Google Scholar 

  111. N.P. Schmitt, S. Heinemann, A. Mehnert, P. Peuser: Diode-pumped miniature solid state lasers; in: Laser in der Technik (Laser 91), Hrsg.: W. Waidelich, Springer-Verlag, Berlin, 1992, S. 599

    Google Scholar 

  112. Fa. Spectra Diode Labs (SDL), San Jose, Calif, USA

    Google Scholar 

  113. “Auf den Punkt gebracht”; LASER, Juni 1993, S. 26; (siehe auch Prospekt der Firma FISBA Optik, St. Gallen, 1993)

    Google Scholar 

  114. L.F. Johnson, A.A. Ballmann: Coherent emission from rare earth ions in electro-optic crystals; J. Appl. Phys. 40 (1969) 297

    Google Scholar 

  115. V.T. Gabrielyan, A.A. Kaminskii, L. Li: Absorption and luminescence spectra and energy levels of Nd3+ and Er3+ ions in LiNbO3 crystals; Phys. Stat. Sol. (a) 3 (1970) K37

    Google Scholar 

  116. S.J. Field, D.C. Hanna, D.P. Sheperd, A.C. Tropper, P.J. Chandler, P.D. Townsend, L. Zhang: Ion implanted Nd:YAG waveguide lasers; IEEE J. Quantum Electron. 27 (1991) 428

    Google Scholar 

  117. E. Lallier, J.P. Pocholle, M. Papuchon, M. de Micheli, M.J. Li, Q. He, D.B. Ostrowsky, C. Grezes-Besset, E. Pelletier: LiNbO3 with rare earth: lasers and amplifiers; SPDE Bd. 1506, Micro-Optics II (1991) 71

    Google Scholar 

  118. E. Lallier, J.P. Pocholle, M. Papuchon, Q. He, M. de Micheli, D.B. Ostrowsky: Nd:MgO:LiNbO3 waveguide laser and amplifier; Opt. Lett. 15 (1990) 682

    Google Scholar 

  119. R. Brinkmann, W. Sohler, H. Suche, C. Wersig: Fluorescence and laser Operation in single-mode Ti-diffused Nd:MgO:LiNbO3 waveguide structures; IEEE J. Quantum Electron. 28 (1992) 466

    Google Scholar 

  120. S. J. Field, D.C. Hanna, A.C. Large, D.P. Sheperd, A.C. Tropper, P.J. Chandler, P.D. Townsend, L. Zhang: Ion implanted Nd:GGG channel waveguide laser; Opt. Lett. 17 (1992) 52

    Google Scholar 

  121. E. Lallier, J.P. Pocholle, M. Papuchon, C. Grezes-Besset, E. Pelletier, M. de Micheli, M.J. Li, Q. He, D.B. Ostrowsky: Laser oscillation of single-mode channel waveguide in Nd:MgO:LiNbO3; Electron. Lett. 25 (1989) 1491

    Google Scholar 

  122. E. Lallier, J.P. Pocholle, M. Papuchon, Q. He, M. de Micheli, D.B. Ostrowsky: Integrated Q-switched Nd:MgO:LiNbO3 waveguide laser; Electron. Lett. 28 (1992) 1428

    Google Scholar 

  123. E. Lallier, J.P. Pocholle, M. Papuchon, Q. He, M. de Micheli, D.B. Ostrowsky, C. Grezes-Besset, E. Pelletier: Integrated Nd:MgO:LiNbO3 mode-locked waveguide laser; Electron. Lett. 27 (1991) 936

    Google Scholar 

  124. L. Figueroa: High-Power Semiconductor Lasers; in: Handbook of Solid-State Lasers; Hrsg.: P.K. Cheo, Marcel Dekker, New York, 1989

    Google Scholar 

  125. P. Greve: Optische Probleme diodengepumpter Festkörperlaser; Laser Magazin 6/1988, S. 35

    Google Scholar 

  126. A. Naqwi, F. Durst: Focusing of diode laser beams: a simple mathematical model; App. Opt. 29 (1990) 1780

    Google Scholar 

  127. T.M. Baer, D.F. Head, M. Sakamoto: High efficiency diode-bar pumped solid state lasers using a tightly folded resonator; CLEO 89, Tech. Digest, Beitrag FJ5 (1989) 416

    Google Scholar 

  128. H. Buczek, Centre Suisse d’électronique et de microélèctronique S. A; Mitteilung vom 20.8.1987

    Google Scholar 

  129. S. Houde-Walter: Lens designers: Gradient-index optics are in your future; Laser Focus World, April 1989, S. 151

    Google Scholar 

  130. The theory and design of the selfoc lens; Nippon Sheet Glass Co., Ltd., Tokyo 105, Japan

    Google Scholar 

  131. K. Sono, T. Yamasaki, T. Kishimoto: Graded-index rod lenses; in: The theory and design of the selfoc lens, Nippon Sheet Glass Co., Ltd., Tokyo 105, Japan

    Google Scholar 

  132. J. Zehetner, Ch. Speilmann, T. Krausz, E. Wintner: Mode-locked diode-pumped Nd:YLF laser using an elliptic mode cavity; OSA Proc. on Advanced Solid State Lasers (Santa Fe, 1992), Bd. 13 (1992) 215

    Google Scholar 

  133. C. Chang-Hasnin, D. P. Worland, D. R. Scifres: High-intensity fibre-coupled diode laser array; Electron. Lett. 22 (1986) 65

    Google Scholar 

  134. P. Reichert, K. Moore, R. Beach, J. Davin, S. Velsko, P. Thelin, W. Benett, B. Freitas, S. Mitchell, R. Solarz: Microlens conditioned two-dimensional diode array and energy concentrating optic for high-power density applications; CLEO 93, Tech. Digest. Beitrag CWJ 57 (1993) 328

    Google Scholar 

  135. R. Beach, J. Davin, S. Velsko, W. Benett, B. Freitas, P. Reichert, S. Mitchell, R. Solarz: 100-mJ, Q-switched, diode-end-pumped Nd3+: YLF laser oscillator, CLEO 93, Tech. Digest, Beitrag CFM6 (1993) 644

    Google Scholar 

  136. W.F. Krupke, L.L. Chase: Ground state depleted (GSD) solid state lasers: principles, characteristics and scaling; SPIE Bd. 1040, High Power and Solid State Lasers II (1989) 68

    Google Scholar 

  137. Konstruieren mit faseroptischen Bauteilen; Schott Glaswerke Wiesbaden, S. 13

    Google Scholar 

  138. D. Evans: private Mitteilung; Spectra Diode Labs, San Jose, USA, 1989

    Google Scholar 

  139. P.J. Morris, W. Lüthy, H.P. Weber: High-intensity rectangular fiber-coupled diode laser array for solid-state laser pumping; Appl. Opt. 32 (1993) 5274

    Google Scholar 

  140. Laser diode farfield shaping study; CSEM final presentation at ESTEC, contract 7725/88/NL/DG, 16. Februar 1990

    Google Scholar 

Literatur

  1. J. Plorin; Festkörperlaser-Institut Berlin

    Google Scholar 

  2. J. Plorin: Aufbau eines Laserdioden-gepumpten Nd:YAG-Lasers mit hoher Frequenzstabilität; Diplomarbeit, Technische Universität München, Feb. 1991

    Google Scholar 

  3. S.C. Tidwell, J.F. Seamans, M.S. Bowers: Efficient diode-pumped cw Nd:YAG laser with 60 W near-diffrartion-limited output; OSA Conf. on Advanced Solid-State Lasers (New Orleans, 1993), Tech. Digest, Beitrag AMA5 (1993) 14

    Google Scholar 

  4. H. Klingenberg, DLR Stuttgart, 1994

    Google Scholar 

  5. T.M. Baer, D.F. Head: High efficiency diode-bar pumped solid state laser using a tightly folded resonator; CLEO 89, Tech. Digest, Beitrag FJ5 (1989) 416

    Google Scholar 

  6. nach G.P.A Malcolm, AI. Ferguson: Mode-locking of diode laser-pumped solid-state lasers; Optical and Quantum Electron. 24 (1992) 705

    Google Scholar 

  7. A. Pfeiffer: Passives Güteschalten miniaturisierter diodengepumpter Festkörperlaser mit Cr4+:YAG; Diplomarbeit, Ludwig-Maximilians-Universität München, 1994

    Google Scholar 

  8. R. Beach, J. Davin, S. Velsko, W. Benett, B. Freitas, P. Reichert, S. Mitchell, R. Solarz: 100-mJ, Q-switched, diode-end-pumped Nd3+:YLF laser oscillator; CLEO 93, Tech. Digest, Beitrag CFM6 (1993) 644

    Google Scholar 

  9. Z.D. Popovic, R.A. Sprague, G.A.N. Connell: A process for monolithic fabrication of microlenses on integrated circuits; SPIE Bd. 898, Miniature Optics and Lasers (1988) 23

    Google Scholar 

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Peuser, P., Schmitt, N.P. (1995). Laser niedriger und mittlerer Ausgangsleistungen. In: Diodengepumpte Festkörperlaser. Laser in Technik und Forschung. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-85190-2_6

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