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Mapping the self-generated magnetic fields due to thermal Weibel instability

Authors :
Zhang, Chaojie
Wu, Yipeng
Sinclair, Mitchell
Farrell, Audrey
Marsh, Kenneth A.
Petrushina, Irina
Vafaei-Najafabadi, Navid
Gawked, Apurva
Kupfer, Rotem
Kusche, Karl
Fedurin, Mikhail
Pogorelsky, Igor
Polyanskiy, Mikhail
Huang, Chen-Kang
Hua, Jianfei
Lu, Wei
Mori, Warren B.
Joshi, Chan
Publication Year :
2022

Abstract

Weibel-type instability can self-generate and amplify magnetic fields in both space and laboratory plasmas with temperature anisotropy. The electron Weibel instability has generally proven more challenging to measure than its ion counterpart owing to the much smaller inertia of electrons, resulting in a faster growth rate and smaller characteristic wavelength. Here, we have probed the evolution of the two-dimensional distribution of the magnetic field components and the current density due to electron Weibel instability, in $\rm CO_2$-ionized hydrogen gas (plasma) with picosecond resolution using a relativistic electron beam. We find that the wavenumber spectra of the magnetic fields are initially broad but eventually shrink to a narrow spectrum representing the dominant quasi-single mode. The measured $k$-resolved growth rates of the instability validate kinetic theory. Concurrently, self-organization of microscopic plasma currents is observed to amplify the current modulation magnitude that converts up to $\sim 1\%$ of the plasma thermal energy into magnetic energy.<br />Comment: 24 pages, 4 figures

Subjects

Subjects :
Physics - Plasma Physics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2204.04267
Document Type :
Working Paper
Full Text :
https://doi.org/10.1073/pnas.2211713119