激光与光电子学进展, 2020, 57 (9): 090001, 网络出版: 2020-05-06   

超短超强激光装置中消色差技术的研究与进展 下载: 1717次封面文章特邀综述

Research Progress of Achromatic Technology in Ultra-Short and Ultra-Intense Laser Facility
作者单位
1 中国科学院上海光学精密机械研究所高功率激光物理联合实验室, 上海 201800
2 中国科学院大学材料与光电研究中心, 北京 100049
引用该论文

康俊, 崔自若, 朱坪, 高奇, 郭爱林, 朱海东, 杨庆伟, 孙美智, 谢兴龙, 朱健强. 超短超强激光装置中消色差技术的研究与进展[J]. 激光与光电子学进展, 2020, 57(9): 090001.

Jun Kang, Ziruo Cui, Ping Zhu, qi Gao, Ailin Guo, Haidong Zhu, Qingwei Yang, Meizhi Sun, Xinglong Xie, Jianqiang Zhu. Research Progress of Achromatic Technology in Ultra-Short and Ultra-Intense Laser Facility[J]. Laser & Optoelectronics Progress, 2020, 57(9): 090001.

参考文献

[1] Zamfir N V. Nuclear physics with 10 PW laser beams at extreme light infrastructure-nuclear physics (ELI-NP)[J]. The European Physical Journal Special Topics, 2014, 223(6): 1221-1227.

[2] ChériauxG, GiambrunoF, FreéneauxA, et al.Apollon-10P: status and implementation[C]∥Light at Extreme Intensities, November 14-18, 2011, Szeged, Hungary. Melville NY: AIP Publishing, 2012, 1462: 78- 83.

[3] Hernandez-Gomez C, Blake S P, Chekhlov O, et al. The Vulcan 10 PW project[J]. Journal of Physics: Conference Series, 2010, 244(3): 032006.

[4] Shaykin A A, Poteomkin A K, Sergeev A M, et al. Compact 0.56 petawatt laser system based on optical parametric chirped pulse amplification in KD*P crystals[J]. Laser Physics Letters, 2007, 4(6): 421-427.

[5] Bahk S W, Rousseau P, Planchon T A, et al. Generation and characterization of the highest laser intensities (10 22 W/cm 2)[J]. Optics Letters, 2004, 29(24): 2837-2839.

[6] Tabak M, Hammer J, Glinsky M E, et al. Ignition and high gain with ultrapowerful lasers[J]. Physics of Plasmas, 1994, 1(5): 1626-1634.

[7] Edwards M J. MacKinnon A J, Zweiback J, et al. Investigation of ultrafast laser-driven radiative blast waves[J]. Physical Review Letters, 2001, 87(8): 085004.

[8] Tajima T, Mourou G. Zettawatt-exawatt lasers and their applications in ultrastrong-field physics: high energy front[J]. Reviews of Modern Physics, 2001, 5(3): 419-426.

[9] Zhu JQ, Xie XL, Yang QW, et al. Introduction to SG-II 5 PW laser facility[C]∥ 2016 Conference on Lasers and Electro-Optics, June 5-10, 2016, San Jose, CA, USA. New York: IEEE, 2016: 1- 2.

[10] 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, 2018, 43(22): 5681-5684.

[11] Zeng X M, Zhou K N, Zuo Y L, et al. Multi-petawatt laser facility fully based on optical parametric chirped-pulse amplification[J]. Optics Letters, 2017, 42(10): 2014-2017.

[12] Yanovsky V, Chvykov V, Kalinchenko G, et al. Ultra-high intensity-high contrast 300-TW laser at 0.1 Hz repetition rate[J]. Optics Express, 2008, 16(3): 2109-2114.

[13] 冷雨欣. 上海超强超短激光实验装置[J]. 中国激光, 2019, 46(1): 0100001.

    Leng Y X. Shanghai superintense ultrafast laser facility[J]. Chinese Journal of Lasers, 2019, 46(1): 0100001.

[14] Cui Z R, Kang J, Guo A L, et al. Dynamic chromatic aberration pre-compensation scheme for ultrashort petawatt laser systems[J]. Optics Express, 2019, 27(12): 16812-16822.

[15] Simmons W, Guch S, Rainer F, et al. A high energy spatial filter for removal of small scale beam instabilities in high power solid state lasers[J]. IEEE Journal of Quantum Electronics, 1975, 11(9): 852-852.

[16] Hunt J T, Renard P A, Simmons W W. Improved performance of fusion lasers using the imaging properties of multiple spatial filters[J]. Applied Optics, 1977, 16(4): 779-782.

[17] Spaeth M L, Manes K R, Kalantar D H, et al. Description of the NIF laser[J]. Fusion Science and Technology, 2016, 69(1): 25-145.

[18] 夏兰. 高功率超短脉冲激光系统中光束传输技术研究[D]. 上海:中国工程物理研究院, 2001: 1- 30.

    XiaL. Research of laser-transmission technique of high-energy ultrashort pulse-laser systems[D]. Shanghai: China Academy of Engineering Physics, 2001: 1- 30.

[19] BornM, WolfE. Principles of optics: electromagnetic theory of propagation, interference and diffraction of light[M]. Cambridge: Cambridge University Press, 1980: 257- 260.

[20] Bromage J, Zuegel J D, Bahk S W. Offner radial group delay compensator for ultra-broadband laser beam transport[J]. Optics Letters, 2014, 39(4): 1081.

[21] Planchon T A, Ferré S, Hamoniaux G, et al. Experimental evidence of 25-fs laser pulse distortion in singlet beam expanders[J]. Optics Letters, 2004, 29(19): 2300-2302.

[22] Kempe M, Rudolph W. Femtosecond pulses in the focal region of lenses[J]. Physical Review A, 1993, 48(6): 4721-4729.

[23] Jeong T M, Ko D K, Lee J. Deformation of thefocal spot of an ultrashort high-power laser pulse due to chromatic aberration by a beam expander[J]. Journal of the Korean Physical Society, 2008, 52(6): 1767-1773.

[24] 朱坪, 谢兴龙, 焦兆阳, 等. 大口径超短脉冲聚焦系统波前误差对时间信噪比的影响[J]. 光学学报, 2014, 34(10): 1032001.

    Zhu P, Xie X L, Jiao Z Y, et al. Influence of wave-front error on temporal signal-to-noise ratio in large aperture ultrashort pulse focusing system[J]. Acta Optica Sinica, 2014, 34(10): 1032001.

[25] 崔自若, 康俊, 谢兴龙, 等. 基于变焦像传递的飞秒拍瓦激光系统色差补偿[J]. 中国激光, 2019, 46(9): 0905001.

    Cui Z R, Kang J, Xie X L, et al. Compensation for chromatic aberration in femtosecond petawatt laser systems based on zoom image transfer[J]. Chinese Journal of Lasers, 2019, 46(9): 0905001.

[26] Kempe M, Rudolph W. Impact of chromatic and spherical aberration on the focusing of ultrashort light pulses by lenses[J]. Optics Letters, 1993, 18(2): 137-139.

[27] Bor Z. Distortion of femtosecond laser pulses in lenses[J]. Optics Letters, 1989, 14(2): 119-121.

[28] Heuck H M, Neumayer P, Kühl T, et al. Chromatic aberration in petawatt-class lasers[J]. Applied Physics B, 2006, 84(3): 421-428.

[29] Bor Z. Distortion of femtosecond laser pulses in lenses and lens systems[J]. Journal of Modern Optics, 1988, 35(12): 1907-1918.

[30] 朱坪, 谢兴龙, 朱健强. 5PW超短脉冲空间滤波器色差对时间信噪比的影响[J]. 光学学报, 2017, 37(9): 0914005.

    Zhu P, Xie X L, Zhu J Q. Influence of chromatic aberration from spatial filters for 5 PW ultra-short pulses on temporal contrast[J]. Acta Optica Sinica, 2017, 37(9): 0914005.

[31] Cui Z R, Xie X L, Kang J, et al. Measurement and compensation for the chromatic aberration of SG-II 5 PW laser system[J]. Proceedings of SPIE, 2018, 10964: 109644C.

[32] Malacara D, Malacara Z. Achromatic aberration corrections with only one glass[J]. Proceedings of SPIE, 1994, 2263: 81-87.

[33] Katyl R H. Compensating optical systems part 3: achromatic Fourier transformation[J]. Applied Optics, 1972, 11(5): 1255-1260.

[34] Fang Y C, Tsai C M. MacDonald J, et al. Eliminating chromatic aberration in Gauss-type lens design using a novel genetic algorithm[J]. Applied Optics, 2007, 46(13): 2401-2410.

[35] Gaul E, Toncian T, Martinez M, et al. Improved pulse contrast on the Texas petawatt laser[J]. Journal of Physics: Conference Series, 2016, 717: 012092.

[36] Gaul E, Martinez M, Dyer G, et al. Beam distortion effects upon focusing an ultrashort petawatt laser pulse to greater than 10 22 W/cm 2[J]. Optics Letters, 2019, 44(11): 2764-2767.

[37] Pirozhkov A S, Fukuda Y, Nishiuchi M, et al. Approaching the diffraction-limited, bandwidth-limited Petawatt[J]. Optics Express, 2017, 25(17): 20486-20501.

[38] Kiriyama H, Pirozhkov A S, Nishiuchi M, et al. High-contrast high-intensity repetitive petawatt laser[J]. Optics Letters, 2018, 43(11): 2595-2598.

[39] Hello P, Man C N. Design of a low-loss off-axis beam expander[J]. Applied Optics, 1996, 35(15): 2534-2536.

[40] Gaul E W, Martinez M, Blakeney J, et al. Demonstration of a 1.1 petawatt laser based on a hybrid optical parametric chirped pulse amplification/mixed Nd: glass amplifier[J]. Applied Optics, 2010, 49(9): 1676-1681.

[41] Bromage J, Bahk S W, Begishev I A, et al. Technology development for ultraintense all-OPCPA systems[J]. High Power Laser Science and Engineering, 2019, 7: e4.

[42] Wu F X, Xu Y, Yu L P, et al. Measurement and compensation schemes for the pulse front distortion of ultra-intensity ultra-short laser pulses[J]. Proceedings of SPIE, 2016, 10016: 1001610.

[43] 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, 2018, 26(20): 26776-26786.

[44] Zhou K N, Huang X J, Zeng X M, et al. Improvement of focusing performance for a multi-petawatt OPCPA laser facility[J]. Laser Physics, 2018, 28(12): 125301-125307.

[45] 王建业, 郭震, 於亮红, 等. 10 PW级激光系统波前演变及分析[J]. 中国激光, 2019, 46(8): 0801006.

    Wang J Y, Guo Z, Yu L H, et al. Wavefront evolution and analysis of 10-petawatt laser system[J]. Chinese Journal of Lasers, 2019, 46(8): 0801006.

[46] Stone T, George N. Hybrid diffractive-refractive lenses and achromats[J]. Applied Optics, 1988, 27(14): 2960-2971.

[47] Madjidi-Zolbanine H, Froehly C. Holographic correction of both chromatic and spherical aberrations of single glass lenses[J]. Applied Optics, 1979, 18(14): 2385-2893.

[48] Néauport J, Blanchot N, Rouyer C, et al. Chromatism compensation of the PETAL multi petawatt high-energy laser[J]. Applied Optics, 2007, 46(9): 1568-1574.

[49] Kessler TJ, HuangH, WeinerD. Diffractive optics for compensation of axial chromatic aberration in high-energy short-pulse laser[C]∥International Conference on Ultrahigh Intensity Lasers, September 25-29, 2006, Cassis, France.2006: E14898- E14905.

[50] 谢旭东, 朱启华, 周凯南, 等. 用衍射器件校正高能拍瓦激光系统色差的设计研究[J]. 光学学报, 2010, 30(1): 142-146.

    Xie X D, Zhu Q H, Zhou K N, et al. Design of diffractive optical elements for chromatic aberration correction in high-energy petawatt laser system[J]. Acta Optica Sinica, 2010, 30(1): 142-146.

[51] Petrov G M, Mcguffey C. Thomas A G R, et al. Proton acceleration from high-contrast short pulse lasers interacting with sub-micron thin foils[J]. Journal of Applied Physics, 2016, 119(5): 053302.

康俊, 崔自若, 朱坪, 高奇, 郭爱林, 朱海东, 杨庆伟, 孙美智, 谢兴龙, 朱健强. 超短超强激光装置中消色差技术的研究与进展[J]. 激光与光电子学进展, 2020, 57(9): 090001. Jun Kang, Ziruo Cui, Ping Zhu, qi Gao, Ailin Guo, Haidong Zhu, Qingwei Yang, Meizhi Sun, Xinglong Xie, Jianqiang Zhu. Research Progress of Achromatic Technology in Ultra-Short and Ultra-Intense Laser Facility[J]. Laser & Optoelectronics Progress, 2020, 57(9): 090001.

本文已被 3 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!