• Acta Photonica Sinica
  • Vol. 51, Issue 11, 1114003 (2022)
Pengfei LI1、2, Zuncheng ZHAO1、2、*, Wei LU3、**, Desheng HONG4, Peirong CHEN5, Chuanbiao ZHANG5, Xiaoguang TIAN5, Chang LIU1、2, and Cong CHEN1、2
Author Affiliations
  • 1School of Physics and Electronics,Henan University,Kaifeng,Henan 475004,China
  • 2Henan Engineering Research Center of Metal Matrix in situ Composites Based on Aluminum,Magnesium or Copper,Henan University,Kaifeng,Henan 475004,China
  • 3Tsinghua University,Beijing 100000,China
  • 4Beijing Academy of Quantum Information Sciences,Beijing 100000,China
  • 5Newlight Source Qifeng Technology,Kaifeng,Henan 475000,China
  • show less
    DOI: 10.3788/gzxb20225111.1114003 Cite this Article
    Pengfei LI, Zuncheng ZHAO, Wei LU, Desheng HONG, Peirong CHEN, Chuanbiao ZHANG, Xiaoguang TIAN, Chang LIU, Cong CHEN. High Contrast Femtosecond Laser Regenerative Amplifier Based on Dual-channel Pre-pulse Cleaning and Intracavity Spectral Filtering[J]. Acta Photonica Sinica, 2022, 51(11): 1114003 Copy Citation Text show less
    References

    [1] D STRICKLAND, G MOUROU. Compression of amplified chirped optical pulses. Optics Communications, 56, 219-221(1985).

    [2] J N GRUSE, M STREETER, C THORNTON et al. Application of compact laser-driven accelerator X-ray sources for industrial imaging. Nuclear Instruments and Methods in Physics Research Section A, 11, 164369(2020).

    [3] J ZHANG, W M WANG, X H YANG et al. Double-cone ignition scheme for inertial confinement fusion. Philosophical Transactions A, 378, 20200015(2020).

    [4] A HANNASCH, L LISI, J BROOKS et al. Compact spectral characterization of 5-500 MeV X-rays from the texas petawatt laser-driven plasma accelerator(2021).

    [6] H KIRIYAMA, A S PIROZHKOV, M NISHIUCHI et al. Petawatt femtosecond laser pulses from titanium-doped sapphire crystal. Crystals, 10, 783(2020).

    [7] M KALASHNIKOV, K OSVAY, W SANDNER et al. High-power Ti:sapphire lasers: temporal contrast and spectral narrowing. Laser and Particle Beams, 25, 219-223(2007).

    [8] Dahui WANG, Yinren SHOU, Pengjie WANG et al. Laser-induced damage thresholds of ultrathin targets and their constraint on laser contrast in laser-driven ion acceleration experiments. High Power Laser Science and Engineering, 8, e41(2020).

    [9] A S MARTYNENKO, S A PIKUZ, I Y SKOBELEV et al. Effect of plastic coating on the density of plasma formed in Si foil targets irradiated by ultra-high-contrast relativistic laser pulses. Physical Review E, 101, 043208(2020).

    [10] Yi XU, Yuxin LENG, Lihuang LIN et al. Amplified spontaneous emission contrast of CPA laser. Chinese Optics Letters, 8, 123-125(2010).

    [11] Y XU, X Y GUO, Y S HUANG et al. Enhancement of temporal contrast in a femtosecond petawatt Ti:sapphire laser. Laser Physics Letters, 10, 095302(2013).

    [12] M KIM, J KIM, V L J PHUNG et al. Contrast ratio enhancement by spectral matching of a seed laser pulse and ASE in a Ti:sapphire laser system. Optics Express, 25, 14158-14163(2017).

    [13] H KIRIYAMA, T SHIMOMURA, H SASAO et al. Temporal contrast enhancement of petawatt-class laser pulses. Optics Letters, 37, 3363-3365(2012).

    [14] A JULLIEN, O ALBERT, F BURGY et al. 10-10 temporal contrast for femtosecond ultraintense lasers by cross-polarized wave generation. Optics Letters, 30, 920-922(2005).

    [15] C RÖDEL, M HEYER, M BEHMKE et al. High repetition rate plasma mirror for temporal contrast enhancement of terawatt femtosecond laser pulses by three orders of magnitude. Applied Physics B, 103, 295-302(2011).

    [16] Changhe ZHOU. Chirped pulse amplification: review and prospective from diffractive optics (Invited). Chinese Optics Letters, 18, 110502(2020).

    [17] Darui SUN, Yanrong SONG, Zhigang ZHANG et al. Compare of characteristics between Martinez and Öffner stretchers used in chirped pulse amplifier. Acta Physica Sinica, 52, 870-874(2003).

    [18] O E MARTINEZ. 3000 Times grating compressor with positive group velocity dispersion: application fiber compensation in 1.3-1.6 μm region. IEEE Journal of Quantum Electronics, 23, 59-64(1987).

    [19] Cheng LIU, Zhaohua WANG, Zhongwei SHEN et al. A long ring regenerative cavity for high energy chirped pulse amplification. Acta Physica Sinica, 62, 094209(2013).

    [20] V YANOVSKY, X FELIX, G MOUROU. Why ring regenerative amplification (regen)?. Applied Physics B, 74, S181-S183(2002).

    [22] Wei ZHONG, Hao TENG, Zhaohua WANG et al. A ring Ti:sapphire regenerative amplifier for high energy chirped pulse amplification. Acta Physica Sinica, 62, 104211(2013).

    [23] Yuxin LENG, Lihuang LIN, Zhizhan XU. Spectrum shaping in a Ti:Sapphire regenrative amplifier. Acta Optica Sinica, 22, 170-173(2002).

    [24] C B WINCHESTER. Alpine research optics. https://arocorp.com/wp-content/uploads/Product-Specs-SF6040-SF6080.pdf

    [26] Tesheng HUNG, Chihsiang YANG, Jyhpyng WANG et al. A 110-TW multiple-beam laser system with a 5-TW wavelength-tunable auxiliary beam for versatile control of laser-plasma interaction. Applied Physics B, 1189-1200(2014).

    [27] Qingwei YANG, Ailin GUO, Xinglong XIE et al. Influence of mirror curvature radius manufacture errors in Öffner stretcher on output pulse contrast. Acta Optica Sinica, 28, 1584-1589(2008).

    [28] C HOOKER, Y TANG, O CHEKHLOV et al. Improving coherent contrast of petawatt laser pulses. Optics Express, 19, 2193-2203(2011).

    Pengfei LI, Zuncheng ZHAO, Wei LU, Desheng HONG, Peirong CHEN, Chuanbiao ZHANG, Xiaoguang TIAN, Chang LIU, Cong CHEN. High Contrast Femtosecond Laser Regenerative Amplifier Based on Dual-channel Pre-pulse Cleaning and Intracavity Spectral Filtering[J]. Acta Photonica Sinica, 2022, 51(11): 1114003
    Download Citation