Free-electron Brewster radiation
Ruoxi Chen, Jialin Chen, Zheng Gong, Xinyan Zhang, Xingjian Zhu, Yi, Yang, Ido Kaminer, Hongsheng Chen, Baile Zhang, and Xiao Lin

TL;DR
This paper introduces a mechanism to significantly enhance free-electron radiation by exploiting the pseudo-Brewster effect in gain materials, leading to ultrahigh directionality and intensity independent of slab thickness.
Contribution
It reveals a new phase diagram for free-electron radiation in gain-thickness space and demonstrates the free-electron Brewster phase with enhanced emission and directionality.
Findings
At least four orders of magnitude enhancement in light emission.
Radiation always occurs at the Brewster angle, independent of electron velocity.
Weaker gain can lead to stronger emission enhancement.
Abstract
Free-electron radiation offers an enticing route to create light emission at arbitrary spectral regime. However, this type of light emission is generally weak, which is intrinsically limited by the weak particle-matter interaction and unavoidably impedes the development of many promising applications, such as the miniaturization of free-electron radiation sources and high-energy particle detectors. Here we reveal a mechanism to enhance the particle-matter interaction by exploiting the pseudo-Brewster effect of gain materials - presenting an enhancement of at least four orders of magnitude for the light emission. This mechanism is enabled by the emergence of an unprecedented phase diagram that maps all phenomena of free-electron radiation into three distinct phases in a gain-thickness parameter space, namely the conventional, intermediate, and Brewster phases, when an electron penetrates…
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Taxonomy
TopicsAdvanced Electron Microscopy Techniques and Applications · Quantum and electron transport phenomena · Strong Light-Matter Interactions
