论文标题

一环自我能源的强签名在偏振中解析的非线性康普顿散射

Strong signature of one-loop self-energy in polarization resolved nonlinear Compton scattering

论文作者

Li, Yan-Fei, Chen, Yue-Yue, Hatsagortsyan, K. Z., Di Piazza, A., Tamburini, M., Keitel, C. H.

论文摘要

在研究圆形极偏极激光脉冲与反向传播的超级层压电子束的相互作用过程中,包括多个非线性康普顿散射的电子的极化动力学。虽然电子极化主要是由于光子排放处的自旋流胶引起的,但对极化有非辐射贡献,这源于对自能源的一环QED辐射校正,该校正承认了一个简单的物理模型。我们提出了一种方法,可以在辐射反应显着时采用相互作用的反射状态来挑出对极化的非辐射贡献。 The polarization of electrons that penetrate in the forward direction through a colliding laser is shown to be dominated by the loop effect, while the reflected electrons are mostly polarized by spin-flips at photon emissions.考虑到非辐射环效应和辐射式自旋flip诱导的极化迹象,我们通过量子蒙特卡洛模拟来证实这种效果,考虑到了从激光场到电子的螺旋性转移。我们的蒙特卡洛模拟显示出非辐射效应中的极化信号高达$ \ gtrsim 10 \%$,可用于使用当前技术的实验检测。

The polarization dynamics of electrons including multiple nonlinear Compton scattering during the interaction of a circularly-polarized ultraintense laser pulse with a counterpropagating ultrarelativistic electron beam is investigated. While electron polarization emerges mostly due to spin-flips at photon emissions, there is a non-radiative contribution to the polarization which stems from the one-loop QED radiative corrections to the self-energy, which admits of a simple physical model. We put forward a method to single out the non-radiative contribution to the polarization, employing the reflection regime of the interaction when the radiation reaction is significant. The polarization of electrons that penetrate in the forward direction through a colliding laser is shown to be dominated by the loop effect, while the reflected electrons are mostly polarized by spin-flips at photon emissions. We confirm this effect by quantum Monte Carlo simulations considering the helicity transfer from the laser field to the electrons, taking into account the opposite sign of the polarizations induced by the non-radiative loop effect and radiative spin-flip. Our Monte Carlo simulations show a polarization signal as high as $\gtrsim 10\%$ from the non-radiative effect, amenable for experimental detection with current technology.

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