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Simulation Studies of Electron Injection in CO2 Laser-driven Self-modulated and Blowout Regimes

POSTER

Abstract

The process of electron self-injection into CO2 laser driven plasma wakes in the parameter space ranging from the self-modulated to the blowout regimes has been studied using 3D Particle-in-Cell simulations with code SPACE. In SM-LWFA regime, self-injection arises with the wave breaking which occurs at a field strength that is significantly below the 1D wave-breaking threshold. This process intensifies at higher laser power and plasma density and is suppressed at low plasma densities, below 1 ×1017 cm-3. In the blowout regime, the self-injection was not observed under simulation conditions. The two-color injection process driven in high-Z material plasmas by a high-intensity Ti-sapphire laser with low normalized vector potential a0, followed up by a lower-intensity, high-a0 CO2 laser pulse has also been investigated and compared with the recent experiments at Brookhaven National Laboratory..

Publication: P. Kumar, K. Yu, R. Zgadzaj, M. Downer, I. Petrushina, R. Samulyak, V. Litvinenko, N. Vafaei-Najafabadi, Evolution of the self-injection process in long wavelength infrared laser driven LWFA, Physics of Plasmas 28 (1), 013102 (2021)

Presenters

  • Roman V Samulyak

    Stony Brook University (SUNY), Stony Brook University

Authors

  • Roman V Samulyak

    Stony Brook University (SUNY), Stony Brook University

  • Prabhat Kumar

    Stanford University

  • Aiqi Cheng

    Stony Brook University

  • Rotem Kupfer

    Brookhaven National Laboratory

  • Michael C Downer

    University of Texas at Austin

  • Vladimir N Litvinenko

    State Univ of NY - Stony Brook, Stony Brook University

  • Navid Vafaei-Najafabadi

    Stony Brook University (SUNY), Stony Brook University

  • Irina Petrushina

    State Univ of NY - Stony Brook, Stony Brook University (SUNY)

  • Rafal Zgadzaj

    University of Texas at Austin