Chen Ruoxi, Chen Jialin, Gong Zheng, Zhang Xinyan, Zhu Xingjian, Yang Yi, Kaminer Ido, Chen Hongsheng, Zhang Baile, Lin Xiao
Interdisciplinary Center for Quantum Information, State Key Laboratory of Extreme Photonics and Instrumentation, ZJU-Hangzhou Global Scientific and Technological Innovation Center, College of Information Science & Electronic Engineering, Zhejiang University, Hangzhou 310027, China.
International Joint Innovation Center, The Electromagnetics Academy at Zhejiang University, Zhejiang University, Haining 314400, China.
Sci Adv. 2023 Aug 11;9(32):eadh8098. doi: 10.1126/sciadv.adh8098.
We reveal a mechanism to enhance particle-matter interactions by exploiting the pseudo-Brewster effect of gain materials, presenting an enhancement of at least four orders of magnitude for light emission. This mechanism is enabled by the emergence of an unprecedented phase diagram that maps all phenomena of free-electron transition radiation into three distinct phases in a gain-thickness parameter space, namely, the conventional, intermediate, and Brewster phases, when an electron penetrates a dielectric slab with a modest gain and a finite thickness. Essentially, our revealed mechanism corresponds to the free-electron transition radiation in the Brewster phase, which also features ultrahigh directionality, always at the Brewster angle, regardless of the electron velocity. Counterintuitively, we find that the intensity of this free-electron Brewster-transition radiation is insensitive to the Fabry-Pérot resonance condition and, thus, the variation of slab thickness, and moreover, a weaker gain could lead to a stronger enhancement for light emission.
我们揭示了一种通过利用增益材料的伪布儒斯特效应来增强粒子与物质相互作用的机制,该机制使光发射增强至少四个数量级。当电子穿透具有适度增益和有限厚度的电介质平板时,会出现一个前所未有的相图,该相图将自由电子跃迁辐射的所有现象映射到增益 - 厚度参数空间中的三个不同相,即常规相、中间相和布儒斯特相,从而实现了这一机制。本质上,我们揭示的机制对应于布儒斯特相中的自由电子跃迁辐射,其还具有超高方向性,始终处于布儒斯特角,与电子速度无关。与直觉相反,我们发现这种自由电子布儒斯特跃迁辐射的强度对法布里 - 珀罗共振条件不敏感,因此对平板厚度的变化也不敏感,而且,较弱的增益可能导致更强的光发射增强。