Electron Injection by Whistler Waves in Non-relativistic Shocks
Mario A. Riquelme, Anatoly Spitkovsky

TL;DR
This study uses particle-in-cell simulations to investigate how electrons are initially energized in non-relativistic shocks, revealing that oblique whistler waves can accelerate electrons to non-thermal energies under specific conditions.
Contribution
It demonstrates that oblique whistler waves can serve as an electron injection mechanism in non-relativistic shocks, linking magnetic field amplification to cosmic ray acceleration.
Findings
Significant non-thermal electron acceleration occurs via whistler waves.
Electron energy spectra develop power-law tails with indices up to ~3-4.
Injection efficiency depends on shock parameters, especially Alfénic Mach number.
Abstract
Electron acceleration to non-thermal, ultra-relativistic energies (~ 10-100 TeV) is revealed by radio and X-ray observations of shocks in young supernova remnants (SNRs). The diffusive shock acceleration (DSA) mechanism is usually invoked to explain this acceleration, but the way in which electrons are initially energized or 'injected' into this acceleration process starting from thermal energies is an unresolved problem. In this paper we study the initial acceleration of electrons in non-relativistic shocks from first principles, using two- and three-dimensional particle-in-cell (PIC) plasma simulations. We systematically explore the space of shock parameters (the Alfv\'enic Mach number, M_A, the shock velocity, v_{sh}, the angle between the upstream magnetic field and the shock normal, theta_{Bn}, and the ion to electron mass ratio, m_i/m_e). We find that significant non-thermal…
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