Stochastic Electron Acceleration by Temperature Anisotropy Instabilities Under Solar Flare Plasma Conditions
Mario Riquelme, Alvaro Osorio, Daniel Verscharen, Lorenzo Sironi

TL;DR
This study uses 2D PIC simulations to investigate how temperature anisotropy instabilities in solar flare plasmas can stochastically accelerate electrons, revealing the importance of the ratio e/pe and the anisotropy driving mechanism.
Contribution
It demonstrates the long-term electron acceleration process driven by temperature anisotropy instabilities under solar flare conditions, highlighting the role of e/pe and the anisotropy driving method.
Findings
Efficient electron acceleration occurs when e/pe exceeds 1.2-1.7.
Nonthermal electron tails with power-law distributions are produced, with spectral indices around 2.9 and 3.7.
The type of anisotropy driving influences the electron energy spectra and acceleration efficiency.
Abstract
Using 2D particle-in-cell (PIC) plasma simulations we study electron acceleration by temperature anisotropy instabilities, assuming conditions typical of above-the-loop-top (ALT) sources in solar flares. We focus on the long-term effect of instabilities by driving the anisotropy growth during the entire simulation time, through imposing a shearing or a compressing plasma velocity ( and are the temperatures perpendicular and parallel to the magnetic field). This magnetic growth makes grow due to electron magnetic moment conservation, and amplifies the ratio from to ( and are the electron cyclotron and plasma frequencies, respectively). In the regime the instability is dominated by…
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