Self-organized positron reorienting and pinching mechanism for the experimental detection of the linear Breit-Wheeler process
Yutong He, Alexey Arefiev, Mario Manuel, Hui Chen, Christopher Ridgers
Abstract
The linear Breit-Wheeler (LBW) process (γ+γ→ e-+e+) is a fundamental prediction of quantum electrodynamics, but yet to be observed under laboratory conditions using real photons. In recent years, a few experimental schemes utilizing high-intense (1022W/cm2) laser-plasma interactions to observe the LBW process have been proposed. However, a high level of signal-to-noise-ratio are expected in these schemes, hindering the first-ever experimental detection of the LBW process by real photons. In this paper, we present a simple experimental setup which could enhance the expected positron signals by 2-3 orders of magnitude compared to previously proposed schemes, reaching the level of 106MeV-1str-1. Moreover, such high positron signal is achieve in the direction opposite to the laser propagation, where a significantly quieter background is expected compared to the previously focused direction of laser propagation. The key to achieve this result is a newly discovered self-organized positron reorienting and pinching mechanism, enabled by the in-situ strong plasma fields from the laser-plasma interaction.
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