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Nonradiating and radiating modes excited by quantum emitters in open epsilon-near-zero cavities

机译:敞开的ε近零腔中量子发射器激发的非辐射和辐射模

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摘要

Controlling the emission and interaction properties of quantum emitters (QEs) embedded within an optical cavity is a key technique in engineering light-matter interactions at the nanoscale, as well as in the development of quantum information processing. State-of-the-art optical cavities are based on high quality factor photonic crystals and dielectric resonators. However, wealthier responses might be attainable with cavities carved in more exotic materials. We theoretically investigate the emission and interaction properties of QEs embedded in open epsilon-near-zero (ENZ) cavities. Using analytical methods and numerical simulations, we demonstrate that open ENZ cavities present the unique property of supporting nonradiating modes independently of the geometry of the external boundary of the cavity (shape, size, topology, etc.). Moreover, the possibility of switching between radiating and nonradiating modes enables a dynamic control of the emission by, and the interaction between, QEs. These phenomena provide unprecedented degrees of freedom in controlling and trapping fields within optical cavities, as well as in the design of cavity opto- and acoustomechanical systems.
机译:控制嵌入在光腔中的量子发射器(QE)的发射和相互作用特性是工程化纳米级光-物质相互作用以及开发量子信息处理的一项关键技术。最先进的光腔基于高质量因子光子晶体和介电共振器。但是,用更奇特的材料雕刻出的空腔可能会获得更富有的响应。我们从理论上研究嵌入到开零ε腔中的QE的发射和相互作用特性。使用分析方法和数值模拟,我们证明了开放的ENZ腔体具有支持非辐射模式的独特属性,而与腔体外部边界的几何形状(形状,大小,拓扑结构等)无关。此外,在辐射模式和非辐射模式之间进行切换的可能性使得能够通过QE及其之间的相互作用来动态控制发射。这些现象在控制和捕获光学腔内的场以及腔光学和声机械系统的设计中提供了前所未有的自由度。

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