Accurate simulation of direct laser acceleration in a laser wakefield accelerator

Author:

Miller Kyle G.1ORCID,Palastro John P.1ORCID,Shaw Jessica L.1ORCID,Li Fei2ORCID,Tsung Frank S.2ORCID,Decyk Viktor K.2ORCID,Joshi C.3ORCID,Mori Warren B.23ORCID

Affiliation:

1. Laboratory for Laser Energetics, University of Rochester 1 , Rochester, New York 14623-1299, USA

2. Department of Physics and Astronomy, University of California 2 , Los Angeles, California 90095, USA

3. Department of Electrical and Computer Engineering, University of California 3 , Los Angeles, California 90095, USA

Abstract

In a laser wakefield accelerator (LWFA), an intense laser pulse excites a plasma wave that traps and accelerates electrons to relativistic energies. When the pulse overlaps the accelerated electrons, it can enhance the energy gain through direct laser acceleration (DLA) by resonantly driving the betatron oscillations of the electrons in the plasma wave. The traditional particle-in-cell (PIC) algorithm, although often the tool of choice to study DLA, contains inherent errors due to numerical dispersion and the time staggering of the electric and magnetic fields. Furthermore, conventional PIC implementations cannot reliably disentangle the fields of the plasma wave and laser pulse, which obscures interpretation of the dominant acceleration mechanism. Here, a customized field solver that reduces errors from both numerical dispersion and time staggering is used in conjunction with a field decomposition into azimuthal modes to perform PIC simulations of DLA in an LWFA. Comparisons with traditional PIC methods, model equations, and experimental data show improved accuracy with the customized solver and convergence with an order-of-magnitude fewer cells. The azimuthal-mode decomposition reveals that the most energetic electrons receive comparable energy from DLA and LWFA.

Funder

Fusion Energy Sciences

National Nuclear Security Administration

University of Rochester

New York State Energy Research and Development Authority

U.S. Department of Energy

Fermilab

National Science Foundation

University of California, Los Angeles

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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