Chinese Journal of Lasers, Volume. 50, Issue 19, 1901001(2023)
Measurement and Optimization of Terminal Focusing Optical Field Parameters of a 10 PW Laser Device
[1] Strickland D, Mourou G. Compression of amplified chirped optical pulses[J]. Optics Communications, 55, 447-449(1985).
[2] Chu Y X, Liang X Y, Yu L H et al. High-contrast 2.0 Petawatt Ti∶sapphire laser system[J]. Optics Express, 21, 29231-29239(2013).
[3] Sung J H, Lee H W, Yoo J Y et al. 4.2 PW, 20 fs Ti∶sapphire laser at 0.1 Hz[J]. Optics Letters, 42, 2058-2061(2017).
[4] Gan Z B, Yu L H, Li S et al. 200 J high efficiency Ti∶sapphire chirped pulse amplifier pumped by temporal dual-pulse[J]. Optics Express, 25, 5169-5178(2017).
[5] Bahk S W, Rousseau P, Planchon T A et al. Characterization of focal field formed by a large numerical aperture paraboloidal mirror and generation of ultra-high intensity (1022 W/cm2)[J]. Applied Physics B, 81, 727(2005).
[6] Guo Z, Yu L H, Wang J Y et al. Improvement of the focusing ability by double deformable mirrors for 10-PW-level Ti∶sapphire chirped pulse amplification laser system[J]. Optics Express, 26, 26776-26786(2018).
[7] Yoon J W, Kim Y G, Choi I W et al. Realization of laser intensity over 1023 W/cm2[J]. Optica, 8, 630-635(2021).
[8] Wang W T, Li W T, Liu J S et al. High-brightness high-energy electron beams from a laser wakefield accelerator via energy chirp control[J]. Physical Review Letters, 117, 124801(2016).
[9] Kim I J, Pae K H, Choi I W et al. Radiation pressure acceleration of protons to 93 MeV with circularly polarized petawatt laser pulses[J]. Physics of Plasmas, 23, 070701(2016).
[10] Jiao J, Zhang B, Yu J et al. Generating high-yield positrons and relativistic collisionless shocks by 10 PW laser[J]. Laser and Particle Beams, 35, 234-240(2017).
[11] Li W Q, Gan Z B, Yu L H et al. 339 J high-energy Ti∶sapphire chirped-pulse amplifier for 10 PW laser facility[J]. Optics Letters, 43, 5681-5684(2018).
[12] Gan Z B, Yu L H, Wang C et al. The Shanghai Superintense Ultrafast Laser Facility (SULF) project[M]. Progress in Ultrafast Intense Laser Science XVI, 199-217(2021).
[13] Wang J Y, Guo Z, Yu L H et al. Wavefront evolution and analysis of 10-petawatt laser system[J]. Chinese Journal of Lasers, 46, 0801006(2019).
[14] Bor Z. Distortion of femtosecond laser pulses in lenses and lens systems[J]. Journal of Modern Optics, 35, 1907-1918(1988).
[15] Zeng X H, Chen X Y. Characterization of tightly focused vector fields formed by off-axis parabolic mirror[J]. Optics Express, 27, 1179-1198(2019).
[16] Moser J. Microscope objectives[J]. Photoniques, 59-64(2021).
[17] Jiang W H, Li H G. Hartmann-Shack wavefront sensing and wavefront control algorithm[J]. Proceedings of SPIE, 1271, 82-93(1990).
[18] Chanteloup J C F, Cohen M. Compact high resolution four wave lateral shearing interferometer[J]. Proceedings of SPIE, 5252, 282-292(2004).
[19] Guo Z, Yu L H, Li W Q et al. Wavefront evolution of the signal beam in Ti∶sapphire chirped pulse amplifier[J]. Chinese Physics B, 28, 014203(2019).
[20] Li A X, Qin C Y, Zhang H et al. Acceleration of 60 MeV proton beams in the commissioning experiment of SULF-10 PW laser[J]. High Power Laser Science and Engineering, 10, 1-20(2022).
Get Citation
Copy Citation Text
Jinchang You, Lianghong Yu, Yijie Sun, Chao Fan, Xiaobo Zhang, Bo Yao, Xiaoyan Liang. Measurement and Optimization of Terminal Focusing Optical Field Parameters of a 10 PW Laser Device[J]. Chinese Journal of Lasers, 2023, 50(19): 1901001
Category: laser devices and laser physics
Received: Jul. 13, 2022
Accepted: Nov. 14, 2022
Published Online: Oct. 18, 2023
The Author Email: Yu Lianghong (lhyu@siom.ac.cn), Liang Xiaoyan (liangxy@siom.ac.cn)