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在芯片上的光子晶体波导中,通过慢光模式增强可控制的自旋分辨光子发射。

Controllable spin-resolved photon emission enhanced by a slow-light mode in photonic crystal waveguides on a chip.

出版信息

Opt Express. 2023 Mar 13;31(6):10348-10357. doi: 10.1364/OE.483244.

Abstract

We report the slow-light enhanced spin-resolved in-plane emission from a single quantum dot (QD) in a photonic crystal waveguide (PCW). The slow light dispersions in PCWs are designed to match the emission wavelengths of single QDs. The resonance between two spin states emitted from a single QD and a slow light mode of a waveguide is investigated under a magnetic field with Faraday configuration. Two spin states of a single QD experience different degrees of enhancement as their emission wavelengths are shifted by combining diamagnetic and Zeeman effects with an optical excitation power control. A circular polarization degree up to 0.81 is achieved by changing the off-resonant excitation power. Strongly polarized photon emission enhanced by a slow light mode shows great potential to attain controllable spin-resolved photon sources for integrated optical quantum networks on chip.

摘要

我们报告了在光子晶体波导 (PCW) 中单个量子点 (QD) 的慢光增强的面内发射的自旋分辨。PCW 中的慢光色散被设计为与单个 QD 的发射波长匹配。在法拉第配置下的磁场下,研究了单个 QD 发射的两个自旋态和波导的慢光模式之间的共振。通过结合抗磁性和塞曼效应以及光激发功率控制,单个 QD 的两个自旋态的发射波长发生偏移,从而经历不同程度的增强。通过改变离谐激发功率,可实现高达 0.81 的圆偏振度。通过慢光模式增强的强偏振光子发射有望实现可控制的自旋分辨光子源,用于片上集成光学量子网络。

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