Optical Chirality and Single-Photon Isolation

Lei Tang, K. Xia
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引用次数: 1

Abstract

Optical isolation is important for protecting a laser from damage due to the detrimental back reflection of light. It typically relies on breaking Lorentz reciprocity and normally is achieved via the Faraday magneto-optical effect, requiring a strong external magnetic field. Single-photon isolation, the quantum counterpart of optical isolation, is the key functional component in quantum information processing, but its realization is challenging. In this chapter, we present all-optical schemes for isolating the backscattering from single photons. In the first scheme, we show the single-photon isolation can be realized by using a chiral quantum optical system, in which a quantum emitter asymmetrically couples to nanowaveguide modes or whispering-gallery modes with high optical chirality. Secondly, we propose a chiral optical Kerr nonlinearity to bypass the so-called dynamical reciprocity in nonlinear optics and then achieve room-temperature photon isolation with low insertion loss. The concepts we present may pave the way for quantum information processing in an unconventional way.
光手性和单光子隔离
光学隔离对于保护激光免受有害的光的反向反射的损害是很重要的。它通常依赖于打破洛伦兹互易,通常通过法拉第磁光效应实现,需要强大的外部磁场。单光子隔离和光隔离的量子对应物,是量子信息处理中的关键功能组件,但其实现具有挑战性。在本章中,我们提出了从单光子中分离后向散射的全光方案。在第一种方案中,我们展示了单光子隔离可以通过使用手性量子光学系统来实现,其中量子发射器与具有高光学手性的纳米波导模式或低语廊模式不对称耦合。其次,我们提出了一种手性光学克尔非线性,以绕过非线性光学中所谓的动态互易,从而实现低插入损耗的室温光子隔离。我们提出的概念可能会以一种非常规的方式为量子信息处理铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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