High-repetition-rate UV laser with CLBO and its reliability for long-term operation

Author(s):  
M. Yoshimura ◽  
T. Kamimura ◽  
K. Murase ◽  
K. Nakai ◽  
T. Matsuda ◽  
...  
Author(s):  
T. Kamimura ◽  
K. Nakai ◽  
K. Murase ◽  
M. Yoshimura ◽  
Y. Mori ◽  
...  

2019 ◽  
Vol 40 (8) ◽  
pp. 1011-1014
Author(s):  
崔建丰 CUI Jian-feng ◽  
岱 钦 DAI Qin ◽  
邬小娇 WU Xiao-jiao ◽  
李福玖 LI Fu-jiu ◽  
李业秋 LI Ye-qiu ◽  
...  

2006 ◽  
Vol 24 (4) ◽  
pp. 519-523 ◽  
Author(s):  
HONG JIN KONG ◽  
JIN WOO YOON ◽  
JAE SUNG SHIN ◽  
DU HYUN BEAK ◽  
BONG JU LEE

Laser fusion requires very high energy/power output with high repetition rate over 10 Hz, which is very difficult with the current laser technologies. However, the recent research work on the phase controlling of the stimulated Brillouin scattering wave enables the realization of this kind of laser fusion driver. The recent progress of controlling the phase has been successfully demonstrated by the self-generated density modulation method proposed by one of the authors (Kong). Nevertheless, it showed a long-term fluctuation of the phase because of the long-term fluctuation of the density of the SBS medium due to the thermal fluctuation. This long-term thermal fluctuation is inevitable a fact in nature. The authors used a specially designed stabilizing system for the phase controlling system, which has the PZT control of the mirror for phase controlling SBS-PCM (the so-called feedback mirror). This system stabilizes the phase controlling system very well for more than 1 h. This technique will help the laser fusion driver to be realized sooner than expected. In addition, we propose a similar scheme to be applied to the ultra-fast pulse laser system, which must operate at high repetition rate for the laser fusion energy power plant.


2021 ◽  
Vol 9 ◽  
Author(s):  
Xinlin Lü ◽  
Yujie Peng ◽  
Wenyu Wang ◽  
Yuanan Zhao ◽  
Xiangyu Zhu ◽  
...  

Abstract In this study, a high-energy, temporally shaped picosecond ultraviolet (UV) laser running at 100 Hz is demonstrated, with its pulses boosted to 120 mJ by cascaded regenerative and double-pass amplifiers, resulting in a gain of more than 108. With precise manipulation and optimization, the amplified laser pulses were flat-top in the temporal and spatial domains to maintain high filling factors, which significantly improved the conversion efficiency of the subsequent third harmonic generation (THG). Finally, 91 mJ, 470 ps pulses were obtained at 355 nm, corresponding to a conversion efficiency as high as 76%, which, as far as we are aware of, is the highest THG efficiency for a high-repetition-rate picosecond laser. In addition, the energy stability of the UV laser is better than 1.07% (root mean square), which makes this laser an attractive source for a variety of fields including laser conditioning and micro-fabrication.


Author(s):  
A. Finch ◽  
Y. Ohsako ◽  
J. Sakuma ◽  
K. Deki ◽  
M. Horiguchi ◽  
...  

2013 ◽  
Vol 278 ◽  
pp. 268-272 ◽  
Author(s):  
M.P. Fiorucci ◽  
A.J. López ◽  
A. Ramil ◽  
S. Pozo ◽  
T. Rivas

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