Simple ps microchip Nd:YVO4 laser with 3.3 ps pulses at 0.2 - 1.4 MHz and single-stage amplification to the microjoule level
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Harald Giessen | Daniel Kopf | Bernd Braun | Erdal Türkyilmaz | Jan Lohbreier | Christian Günther | Eva Mehner | H. Giessen | D. Kopf | B. Braun | J. Lohbreier | C. Günther | Erdal Türkyilmaz | E. Mehner
[1] J. Limpert,et al. All-fiber pulse shortening of passively Q-switched microchip laser pulses down to sub-200 fs. , 2014, Optics letters.
[2] Andy Steinmann,et al. High-peak-power pulses from a cavity-dumped Yb:KY(WO4)2 oscillator. , 2005, Optics letters.
[3] A. Tünnermann,et al. Femtosecond, picosecond and nanosecond laser ablation of solids , 1996 .
[4] J. Zayhowski,et al. Optimization of Q-switched lasers , 1991 .
[5] J. Limpert,et al. High-pulse-energy passively Q-switched quasi-monolithic microchip lasers operating in the sub-100-ps pulse regime. , 2007, Optics letters.
[6] Rüdiger Paschotta,et al. Experimentally confirmed design guidelines for passively Q-switched microchip lasers using semiconductor saturable absorbers , 2001 .
[7] Harald Giessen,et al. Sub-20-ps pulses from a passively Q-switched microchip laser at 1 MHz repetition rate. , 2014, Optics letters.
[8] J J Zayhowski. Q-switched operation of microchip lasers. , 1991, Optics letters.
[9] Christopher D. Brooks,et al. Multimegawatt peak-power, single-transverse-mode operation of a 100μm core diameter, Yb-doped rodlike photonic crystal fiber amplifier , 2006 .
[10] Patrick Georges,et al. Passively mode-locked diode-pumped Nd:YVO4 oscillator operating at ultra-low repetition rate , 2003 .
[11] J. J. Degnan,et al. Optimization of passively Q-switched lasers , 1995 .
[12] J. J. Zayhowski. Microchip lasers , 1997, CLEO '97., Summaries of Papers Presented at the Conference on Lasers and Electro-Optics.
[13] F. Jansen,et al. Sub-5-ps, multimegawatt peak-power pulses from a fiber-amplified and optically compressed passively Q-switched microchip laser. , 2012, Optics letters.
[14] David W. Coutts,et al. Scaling Q-switched microchip lasers for shortest pulses , 2012 .
[15] F. Kärtner,et al. Semiconductor saturable absorber mirrors (SESAM's) for femtosecond to nanosecond pulse generation in solid-state lasers , 1996 .
[16] B Luther-Davies,et al. Passive mode locking of a Nd:YVO4 laser with an extra-long optical resonator. , 2003, Optics letters.
[17] F. Balembois,et al. Passively mode-locked diode-pumped Nd:YVO4 oscillator operating at an ultralow repetition rate. , 2003, Optics letters.
[18] Eric Audouard,et al. Pulse width and energy influence on laser micromachining of metals in a range of 100 fs to 5 ps , 2005 .
[19] Jens Limpert,et al. 105 kHz, 85 ps, 3 MW Peak Power Microchip Laser Fiber Amplifier System , 2008 .
[20] F. Kärtner,et al. 56-ps passively Q-switched diode-pumped microchip laser. , 1997, Optics letters.
[21] Andy Steinmann,et al. Stable MHz-repetition-rate passively Q-switched microchip laser frequency doubled by MgO:PPLN , 2013 .
[22] Yung-Fu Chen,et al. Influence of thermal fracture on scaling diode end-pumped lasers to high powers , 1999 .
[23] J. Zayhowski,et al. Diode-pumped passively Q-switched picosecond microchip lasers. , 1994, Optics letters.