Thermal Weibel instability induced magnetic fields co-exist with linear wakes in laser-ionized plasmas

Author:

Wu Yipeng12ORCID,Farrell Audrey1ORCID,Sinclair Mitchell1ORCID,Zhang Chaojie1ORCID,Petrushina Irina3ORCID,Vafaei-Najafabadi Navid3ORCID,Babzien Marcus4ORCID,Li William4ORCID,Pogorelsky Igor4ORCID,Polyanskiy Mikhail4ORCID,Fedurin Mikhail4,Kusche Karl4ORCID,Palmer Mark4ORCID,Marsh Kenneth A.1ORCID,Joshi Chan1ORCID

Affiliation:

1. Electrical and Computer Engineering Department, University of California Los Angeles 1 , Los Angeles, California 90095, USA

2. Tsung-Dao Lee Institute & School of Physics and Astronomy, Shanghai Jiao Tong University 2 , Shanghai 201210, China

3. Department of Physics and Astronomy, Stony Brook University 3 , Stony Brook, New York 11794, USA

4. Accelerator Test Facility, Brookhaven National Laboratory 4 , Upton, New York 11973, USA

Abstract

When a moderately intense, few-picosecond-long laser pulse ionizes gas to produce an underdense plasma column, a linear relativistic plasma wave or wake can be excited by the self-modulation instability that may prove useful for multi-bunch acceleration of externally injected electrons or positrons to high energies in a short distance. At the same time, due to the anisotropic temperature distributions of the ionized plasma electrons, the Weibel instability can self-generate magnetic fields throughout such a plasma on a few picoseconds timescale that can persist even longer than the lifetime of the wake. In the present paper, we first show using simulations that both these effects do indeed co-exist in space and time in the plasma. Using our simulations, we make preliminary estimates of the contribution to the transverse emittance growth of an externally injected beam due to the Weibel magnetic fields in a few-millimeter-long plasma. We then present the results of an experiment that has allowed us to measure the spatiotemporal evolution of the magnetic fields using an ultrashort relativistic electron probe beam. Both the topology and the lifetime of the Weibel instability induced magnetic fields in the experiment are in reasonable agreement with the fields induced by the Weibel instability in the simulations.

Funder

U.S. Department of Energy

National Science Foundation

Publisher

AIP Publishing

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