Parametric study of the polarization dependence of nonlinear Breit–Wheeler pair creation process using two laser pulses

Author:

Qian Qian1ORCID,Seipt Daniel2ORCID,Vranic Marija3ORCID,Grismayer Thomas E.3ORCID,Blackburn Thomas G.4ORCID,Ridgers Christopher P.5ORCID,Thomas Alexander G. R.1ORCID

Affiliation:

1. Gérard Mourou Center for Ultrafast Optical Science, University of Michigan 1 , 2200 Bonisteel Boulevard, Ann Arbor, Michigan 48109, USA

2. Helmholtz Institute Jena 2 , Fröbelstieg 3, 07743 Jena, Germany

3. GoLP/Instituto de Plasmas e Fusão Nuclear, Instituto Superior Técnico, Universidade de Lisboa 3 , 1049-001 Lisbon, Portugal

4. Department of Physics, University of Gothenburg 4 , SE-41296 Gothenburg, Sweden

5. York Plasma Institute, Department of Physics, University of York 5 , York, YO10 5DD, United Kingdom

Abstract

With the rapid development of high-power petawatt class lasers worldwide, exploring physics in the strong field QED regime will become one of the frontiers for laser–plasma interactions research. Particle-in-cell codes, including quantum emission processes, are powerful tools for predicting and analyzing future experiments where the physics of relativistic plasma is strongly affected by strong field QED processes. The spin/polarization dependence of these quantum processes has been of recent interest. In this article, we perform a parametric study of the interaction of two laser pulses with an ultrarelativistic electron beam. The first pulse is optimized to generate high-energy photons by nonlinear Compton scattering and efficiently decelerate electron beam through the quantum radiation reaction. The second pulse is optimized to generate electron–positron pairs by the nonlinear Breit–Wheeler decay of photons with the maximum polarization dependence. This may be experimentally realized as a verification of the strong field QED framework, including the spin/polarization rates.

Funder

National Science Foundation

Fundação para a Ciência e a Tecnologia

Engineering and Physical Sciences Research Council

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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