• High Power Laser Science and Engineering
  • Vol. 12, Issue 4, 04000e49 (2024)
Shuren Pan1,2, Fenxiang Wu1, Yang Zhao1, Jiabing Hu1..., Zongxin Zhang1, Yi Xu1,4,*, Yuxin Leng1,4,*, Ruxin Li1 and Efim Khazanov3,4|Show fewer author(s)
Author Affiliations
  • 1State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra-intense Laser Science, Shanghai Institute of Optics and Fine Mechanics (SIOM), Chinese Academy of Sciences, Shanghai, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, China
  • 3Gaponov-Grekhov Institute of Applied Physics (IAP) of Russian Academy of Sciences, Moscow, Russia
  • 4China–Russian Belt and Road Joint Laboratory on Laser Science, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, China
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    DOI: 10.1017/hpl.2024.31 Cite this Article Set citation alerts
    Shuren Pan, Fenxiang Wu, Yang Zhao, Jiabing Hu, Zongxin Zhang, Yi Xu, Yuxin Leng, Ruxin Li, Efim Khazanov, "A novel small-scale self-focusing suppression method for post-compression in high peak power lasers," High Power Laser Sci. Eng. 12, 04000e49 (2024) Copy Citation Text show less
    Setup of post-compression in high peak power lasers with a standard compressor (G1, G2, G3 and G4, L1 = L2) and an AFGC (, G2, G3 and , L1 ≠ L2).
    Fig. 1. Setup of post-compression in high peak power lasers with a standard compressor (G1, G2, G3 and G4, L1 = L2) and an AFGC (, G2, G3 and , L1L2).
    (a) The noise gain for different spatial frequency components. (b) The relationship between the achievable recompression pulse duration and the length of the fused silica TTPs.
    Fig. 2. (a) The noise gain for different spatial frequency components. (b) The relationship between the achievable recompression pulse duration and the length of the fused silica TTPs.
    The spatial beam fluences of a 30 fs laser: (a) output from a standard compressor and (b) then after spectral broadening; (c), (d) zoomed-in of the corresponding areas in (a) and (b), respectively.
    Fig. 3. The spatial beam fluences of a 30 fs laser: (a) output from a standard compressor and (b) then after spectral broadening; (c), (d) zoomed-in of the corresponding areas in (a) and (b), respectively.
    (a) The spatial dispersion and (b) the PTA of beam fluence output from the AFGC, based on different L2 − L1 of the AFGC. (c) The noise gain curves of laser beams after the AFGC with different L2 − L1.
    Fig. 4. (a) The spatial dispersion and (b) the PTA of beam fluence output from the AFGC, based on different L2L1 of the AFGC. (c) The noise gain curves of laser beams after the AFGC with different L2L1.
    The spatial beam fluence of a 30 fs laser: (a) output from an AFGC and (b) then after the spectral broadening stage; (c), (d) zoomed-in of the corresponding areas in (a) and (b), respectively.
    Fig. 5. The spatial beam fluence of a 30 fs laser: (a) output from an AFGC and (b) then after the spectral broadening stage; (c), (d) zoomed-in of the corresponding areas in (a) and (b), respectively.
    (a) The spectra of laser pulses before and after spectral broadening. (b) The pulse durations before and after post-compression with an AFGC.
    Fig. 6. (a) The spectra of laser pulses before and after spectral broadening. (b) The pulse durations before and after post-compression with an AFGC.
    (a) The PTA of the beam fluence after spectral broadening with a 1-mm-thick TTP and (b) the corresponding noise gain, based on different initial laser beams. The beam fluences of lasers after spectral broadening with a 1-mm-thick TTP, with (c) a standard compressor and (d) an AFGC. (e), (f) Zoomed-in of the corresponding areas in (c) and (d), respectively.
    Fig. 7. (a) The PTA of the beam fluence after spectral broadening with a 1-mm-thick TTP and (b) the corresponding noise gain, based on different initial laser beams. The beam fluences of lasers after spectral broadening with a 1-mm-thick TTP, with (c) a standard compressor and (d) an AFGC. (e), (f) Zoomed-in of the corresponding areas in (c) and (d), respectively.
    Shuren Pan, Fenxiang Wu, Yang Zhao, Jiabing Hu, Zongxin Zhang, Yi Xu, Yuxin Leng, Ruxin Li, Efim Khazanov, "A novel small-scale self-focusing suppression method for post-compression in high peak power lasers," High Power Laser Sci. Eng. 12, 04000e49 (2024)
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