Electron Weibel instability induced magnetic fields in optical-field ionized plasmas
Abstract
Generation and amplification of magnetic fields in plasmas is a long-standing topic that is of great interest to both plasma and space physics. The electron Weibel instability is a well-known mechanism responsible for self-generating magnetic fields in plasmas with temperature anisotropy and has been extensively investigated in both theory and simulations, yet experimental verification of this instability has been challenging. Recently, we demonstrated a new experimental platform that enables the controlled initialization of highly nonthermal and/or anisotropic plasma electron velocity distributions via optical-field ionization. Using an external electron probe bunch from a linear accelerator, the onset, saturation and decay of the self-generated magnetic fields due to electron Weibel instability were measured for the first time to our knowledge. In this paper, we will first present experimental results on time-resolved measurements of the Weibel magnetic fields in non-relativistic plasmas produced by Ti:Sapphire laser pulses (0.8 ) and then discuss the feasibility of extending the study to quasi-relativistic regime by using intense (e.g., 9.2 ) lasers to produce much hotter plasmas.
Keywords
Cite
@article{arxiv.2204.04262,
title = {Electron Weibel instability induced magnetic fields in optical-field ionized plasmas},
author = {Chaojie Zhang and Yipeng Wu and Mitchell Sinclair and Audrey Farrell and Kenneth A. Marsh and Jianfei Hua and Irina Petrushina and Navid Vafaei-Najafabadi and Rotem Kupfer and Karl Kusche and Mikhail Fedurin and Igor Pogorelsky and Mikhail Polyanskiy and Chen-Kang Huang and Wei Lu and Warren B. Mori and Chan Joshi},
journal= {arXiv preprint arXiv:2204.04262},
year = {2022}
}
Comments
22 pages, 10 figures