• Chinese Journal of Lasers
  • Vol. 46, Issue 5, (2019)
Liang Xu1, Wanyang Wu1, and Feng He1、2、*
Author Affiliations
  • 1Key Laboratory for Laser Plasmas (Ministry of Education) and School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
  • 2Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China
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    DOI: 10.3788/CJL201946.0508022 Cite this Article Set citation alerts
    Liang Xu, Wanyang Wu, Feng He. Double Ionization of Helium in Extreme Ultraviolet Pulse in Presence of Extremely Short Mid-Infrared Pulse[J]. Chinese Journal of Lasers, 2019, 46(5): Copy Citation Text show less
    Combined laser fields as a function of time. (a) IR and EUV laser electric fields; (b) vector potential of the combined laser fields. The IR pulse has the wavelength 800 nm and the intensity I1=1.5 × 1015 W/cm2. Time delay is td=-17 a.u.
    Fig. 1. Combined laser fields as a function of time. (a) IR and EUV laser electric fields; (b) vector potential of the combined laser fields. The IR pulse has the wavelength 800 nm and the intensity I1=1.5 × 1015 W/cm2. Time delay is td=-17 a.u.
    Correlated information of the electrons. (a) and (b) denote wave functions at time t=323 a.u. when the electron-electron repulsion is excluded or included, respectively; (c) momentum distribution of correlated double ionization in (a); (d) momentum distribution of correlated double ionization in (b); (e) and (f) denote the single electron momentum distribution after integrating the signals marked by the triangles in (c) and (d) along the vertical axis, respectively
    Fig. 2. Correlated information of the electrons. (a) and (b) denote wave functions at time t=323 a.u. when the electron-electron repulsion is excluded or included, respectively; (c) momentum distribution of correlated double ionization in (a); (d) momentum distribution of correlated double ionization in (b); (e) and (f) denote the single electron momentum distribution after integrating the signals marked by the triangles in (c) and (d) along the vertical axis, respectively
    Correlated information of the electrons. Photoelectron wave function in (a) space and (b) momentum representations at time t=344 a.u.; (c) electron-electron joint energy spectrum; (d) sum energy of two electrons obtained by integrating the signals in (c) along the lines E1+E2=const. The IR wavelength is 1200 nm, and the intensity I1=8.3×1014 W/cm2. The time delay is
    Fig. 3. Correlated information of the electrons. Photoelectron wave function in (a) space and (b) momentum representations at time t=344 a.u.; (c) electron-electron joint energy spectrum; (d) sum energy of two electrons obtained by integrating the signals in (c) along the lines E1+E2=const. The IR wavelength is 1200 nm, and the intensity I1=8.3×1014 W/cm2. The time delay is
    Ratio (anticorrelated double ionization probability to correlated double ionization probability) as a function of the screening parameter mee. Other parameters for the line with open circles are the same as those used in Fig. 3. For the line with crosses and line with stars, MIR intensities are I1=5×1014 W/cm2 and 5.3×1014 W/cm2. MIR wavelengths are both 1500 n
    Fig. 4. Ratio (anticorrelated double ionization probability to correlated double ionization probability) as a function of the screening parameter mee. Other parameters for the line with open circles are the same as those used in Fig. 3. For the line with crosses and line with stars, MIR intensities are I1=5×1014 W/cm2 and 5.3×1014 W/cm2. MIR wavelengths are both 1500 n
    Anticorrelated joint electron-electron energy spectra. (a), (b) and (c) are joint electron-electron energy spectra for anticorrelated double ionization in the second and fourth quadrants at men=20, 10, 5, respectively; (d) potentials at different screening parameters (men=20, 10, 5). The MIR laser parameters are λ1=2000 nm, I1=3×1014 W/cm2. Time delay t</i
    Fig. 5. Anticorrelated joint electron-electron energy spectra. (a), (b) and (c) are joint electron-electron energy spectra for anticorrelated double ionization in the second and fourth quadrants at men=20, 10, 5, respectively; (d) potentials at different screening parameters (men=20, 10, 5). The MIR laser parameters are λ1=2000 nm, I1=3×1014 W/cm2. Time delay t
    Liang Xu, Wanyang Wu, Feng He. Double Ionization of Helium in Extreme Ultraviolet Pulse in Presence of Extremely Short Mid-Infrared Pulse[J]. Chinese Journal of Lasers, 2019, 46(5):
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