• Collection Of theses on high power laser and plasma physics
  • Vol. 14, Issue 1, 904001 (2016)
Shi Shuaixu1、2、3、*, Yang Qingwei1, Ouyang Xiaoping1, Xia Suqiu1、2, and Zhu Jianqiang1、3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.3788/cjl201643.0904001 Cite this Article
    Shi Shuaixu, Yang Qingwei, Ouyang Xiaoping, Xia Suqiu, Zhu Jianqiang. Measurement Technique of Signal Noise Ratio Based on Resonator Oscillation for Femtosecond Single-Shot Pulse[J]. Collection Of theses on high power laser and plasma physics, 2016, 14(1): 904001 Copy Citation Text show less
    References

    [1] Yu T J, Lee S K, Sung J H, et al. Generation of high-contrast, 30 fs, 1.5 PW laser pulses from chirped-pulse amplification Ti: sapphire laser[J]. Opt Express, 2012, 20(10): 10807-10815.

    [2] Chu Y X, Liang X Y, Yu L H, et al. High-contrast 2.0 petawatt Ti: sapphire laser system[J]. Opt Express, 2013, 21(24): 29231-29239.

    [3] Bahk S W, Rousseau P, Planchon T A, et al. Generation and characterization of the highest laser intensities (1022 W/cm2)[J]. Opt Lett, 2004, 29(24): 2837-2839.

    [4] Zhu Ping, Xie Xinglong, Jiao Zhaoyang, 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.

    [5] A Abulikemu, A Abudurexiti. Self-magnetic field and proton acceleration in a laser plasma interaction[J]. Laser & Optoelectronics Progress, 2015, 52(2): 021401.

    [6] Mangles S P D, Thomas A G R, Kaluza M C, et al. Effect of laser contrast ratio on electron beam stability in laser wakefield acceleration experiments[J]. Plasma Phys Contr F, 2006, 48(12B): B83.

    [7] Wang Y Z, Ma J G, Wang J, et al. Single-shot measurement of>1010 pulse contrast for ultra-high peak-power lasers[J]. Sci Rep-Uk, 2014, 4: 03818.

    [8] Zhang D F, Qian L J, Yuan P, et al. Fiber-array-based detection scheme for single-shot pulse contrast characterization[J]. Opt Lett, 2008, 33(17): 1969-1971.

    [9] Ma Jingui, Wang Yongzhi, Yuan Peng, et al. Single-shot pulse-contrast measurement for high-intensity lasers[J]. Laser & Optoelectronics Progress. 2013, 50(8): 080008.

    [10] Zhou Bingkun. The principle of laser[M]. Beijing: National Defence Industry Press, 2010: 33-38.

    [11] Yang Sheng, Huang Xiaojun, Wu Zhaohui, et al. Broadband frequency doubling of Er-fiber mode-locked laser in BBO crystal[J]. Laser & Optoelectronics Progress, 2015, 52(12): 121901.

    [12] Yuan Suochao. Contrast measurement of ultra-short laser pulse with single shot[D]. Xi′an: Xi′an Institute of Optics & Precision Mechanics, Chinese Academy of Sciences, 2013: 36.

    [13] Wang Xingtao, Yin Din jun, Shuai Bin, et al. Measure ultrashort pulsewidth with total reflection second-order autocorrlator[J]. Chinese J Lasers, 2004, 31(8): 1018-1020.

    [14] Hao Xin, Zhu Qihua, Wang Xiao, et al. Influence of the spatial irregular intensity distribution on the single-shot second-order autocorrelator[J]. Chinese J Lasers, 2008, 35(10): 1553-1557.

    [15] Ouyang X P, Liu D Z, Zhu B Q, et al. Diagnostics of pulse contrast for petawatt laser in SGII[C]. SPIE, 2015, 9345: 93450R.

    [16] Mou Sen. Study of the part deformation and grind ability of invar alloy[D]. Dalian: Dalian University of Technology, 2005: 7.

    [17] Owens J C. Optical refractive index of air: dependence on pressure, temperature and composition[J]. Appl Optics, 1967, 6(1): 51-59.

    Shi Shuaixu, Yang Qingwei, Ouyang Xiaoping, Xia Suqiu, Zhu Jianqiang. Measurement Technique of Signal Noise Ratio Based on Resonator Oscillation for Femtosecond Single-Shot Pulse[J]. Collection Of theses on high power laser and plasma physics, 2016, 14(1): 904001
    Download Citation