Direct Measurement of Electron Heating in Electron-Only Reconnection in a Laboratory Mini-Magnetosphere
arXiv:2508.09086 · doi:10.1103/8ctf-q5n3
Abstract
We report on the experimental observation of electron heating in electron-only magnetic reconnection in laser-driven laboratory mini-magnetospheres on the Large Plasma Device (LAPD) at the University of California, Los Angeles. In this experiment, a fast-flowing plasma impacts a pulsed magnetic dipole embedded within LAPD's magnetized ambient plasma, creating an ion-scale magnetosphere and driving electron-only magnetic reconnection between the background and dipole field lines. The electron velocity distribution is measured across the reconnection region using non-collective Thomson scattering, enabling determination of electron temperature and density. Significant electron heating is observed in the electron diffusion region, increasing from an initial temperature of 1.8 eV to 9.5 eV, corresponding to a 40\% conversion of Poynting flux into electron enthalpy flux. Particle-in-cell simulations that provide insights into the heating mechanisms are also presented.
References in corpus (7)
- The Mechanisms of Electron Heating and Acceleration during Magnetic Reconnection
- The effect of a guide field on local energy conversion during asymmetric magnetic reconnection: MMS observations
- Direct measurement of non-thermal electron acceleration from magnetically driven reconnection in a laboratory plasma
- Two-Stage Bulk Electron Heating in the Diffusion Region of Anti-Parallel Symmetric Reconnection
- Laser-Driven, Ion-Scale Magnetospheres in Laboratory Plasmas. I. Experimental Platform and First Results
- Two-dimensional Thomson scattering in high-repetition-rate laser-plasma experiments
- Laboratory study of magnetic reconnection in lunar-relevant mini-magnetospheres