Ion acceleration at two collisionless shocks in a multicomponent plasma
arXiv:2104.00866 · doi:10.1103/PhysRevE.103.043201
Abstract
Intense laser-plasma interactions are an essential tool for the laboratory study of ion acceleration at a collisionless shock. With two-dimensional particle-in-cell calculations of a multicomponent plasma we observe two electrostatic collisionless shocks at two distinct longitudinal positions when driven with a linearly-polarized laser at normalized laser vector potential a0 that exceeds 10. Moreover, these shocks, associated with protons and carbon ions, show a power-law dependence on a0 and accelerate ions to different velocities in an expanding upstream with higher flux than in a single-component hydrogen or carbon plasma. This results from an electrostatic ion two-stream instability caused by differences in the charge-to-mass ratio of different ions. Particle acceleration in collisionless shocks in multicomponent plasma are ubiquitous in space and astrophysics, and these calculations identify the possibility for studying these complex processes in the laboratory.
References in corpus (5)
- Radiation Pressure Dominate Regime of Relativistic Ion Acceleration
- Kilonovae
- Large parallel and perpendicular electric fields on electron spatial scales in the terrestrial bow shock
- Oblique Ion Two-Stream Instability in the Foot Region of a Collisionless Shock
- Acceleration of collimated 45 MeV protons by collisionless shocks driven in low-density, large-scale gradient plasmas by a 10^20 W/cm^2, 1 micron wavelength laser