Angular modulation of nonlinear Breit-Wheeler yield by vacuum dichroism

IF 5.3 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review D Pub Date : 2025-02-21 DOI:10.1103/physrevd.111.036025
Jia-Ding Chen, Ya-Nan Dai, Kai-Hong Zhuang, Jing-Jing Jiang, Baifei Shen, Yue-Yue Chen
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Abstract

Vacuum polarization is numerically investigated for the interaction between a GeV electron beam and a counterpropagating ultraintense laser pulse in the quantum radiation-dominated regime. We identify a signal of vacuum polarization in pair density using a straightforward one-stage setup, circumventing the challenge of preparations of highly polarized probe photons or precise measurements of photon polarization. In our scheme, most electrons are scattered in the direction of laser propagation while emitting substantial linearly polarized gamma photons. These photons undergo vacuum birefringence and dichroism before decaying into electron-positron pairs via the nonlinear Breit-Wheeler process. We demonstrate that vacuum dichroism enhances the purity of linear polarization, which suppresses the overall yield of electron-positron pairs and allows energetic photons to penetrate deeper into the laser pulse. The pairs produced by these energetic photons are more likely to be deflected into small-angle regions rather than being reflected, leading to an enhancement of pair yield in forward scattering. The difference in positron yield may have potential applications in measuring vacuum polarization effect in future laser-particle experiments. Published by the American Physical Society 2025
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通过真空二色性对非线性布雷特-韦勒产量进行角度调制
对量子辐射主导下GeV电子束与反传播超强激光脉冲相互作用的真空极化进行了数值研究。我们使用一个简单的单级装置在对密度中识别真空极化信号,规避了制备高极化探针光子或精确测量光子偏振的挑战。在我们的方案中,大多数电子沿激光传播方向散射,同时发射大量的线偏振伽马光子。这些光子经过真空双折射和二色性,然后通过非线性布雷特-惠勒过程衰变成电子-正电子对。我们证明了真空二色性提高了线偏振的纯度,这抑制了电子-正电子对的总体产率,并允许高能光子深入到激光脉冲中。这些高能光子产生的对更有可能被偏转到小角度区域,而不是被反射,从而导致前向散射中对产率的增强。正电子产额的差异在未来激光粒子实验中测量真空极化效应有潜在的应用价值。2025年由美国物理学会出版
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来源期刊
Physical Review D
Physical Review D 物理-天文与天体物理
CiteScore
9.20
自引率
36.00%
发文量
0
审稿时长
2 months
期刊介绍: Physical Review D (PRD) is a leading journal in elementary particle physics, field theory, gravitation, and cosmology and is one of the top-cited journals in high-energy physics. PRD covers experimental and theoretical results in all aspects of particle physics, field theory, gravitation and cosmology, including: Particle physics experiments, Electroweak interactions, Strong interactions, Lattice field theories, lattice QCD, Beyond the standard model physics, Phenomenological aspects of field theory, general methods, Gravity, cosmology, cosmic rays, Astrophysics and astroparticle physics, General relativity, Formal aspects of field theory, field theory in curved space, String theory, quantum gravity, gauge/gravity duality.
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