Absorption Reduction of Large Purcell Enhancement Enabled by Topological State-Led Mode Coupling

Zhiyuan Qian, Zhichao Li, He Hao, Lingxiao Shan, Qi Zhang, Jianwen Dong, Qihuang Gong, and Ying Gu
Phys. Rev. Lett. 126, 023901 – Published 11 January 2021
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Abstract

We propose the mechanism of edge state-led mode coupling under topological protection; i.e., localized surface plasmons almost do not have any influence on the edge state, while the edge state greatly changes the local field distribution of surface plasmons. Based on this mechanism, in the well-designed topological photonic structure containing a resonant plasmon nanoantenna, an obvious absorption reduction in the spontaneous emission spectra appears due to the near-field deformation around the antenna induced by the edge state. Because a plasmon antenna with ultrasmall mode volume provides large Purcell enhancement and simultaneously the photonic crystal guides almost all scattering light into its edge state, the rate of nonscattering single photons reaches more than 104γ0. This topological state-led mode coupling mechanism and induced absorption reduction, which are based on topological protection, will have a profound effect on the study of composite topological photonic structures and related micro- and nanoscale cavity quantum electrodynamics. Also, nonscattering large Purcell enhancement will provide practical use for on-chip quantum light sources, such as single-photon sources and nanolasers.

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  • Received 23 April 2020
  • Accepted 1 December 2020

DOI:https://doi.org/10.1103/PhysRevLett.126.023901

© 2021 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

Zhiyuan Qian1, Zhichao Li1, He Hao1, Lingxiao Shan1, Qi Zhang1, Jianwen Dong4, Qihuang Gong1,2,3, and Ying Gu1,2,3,*

  • 1State Key Laboratory for Mesoscopic Physics, Department of Physics, Peking University, Beijing 100871, China
  • 2Frontiers Science Center for Nano-optoelectronics, Collaborative Innovation Center of Quantum Matter, and Beijing Academy of Quantum Information Sciences, Peking University, Beijing 100871, China
  • 3Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi 030006, China
  • 4State Key Laboratory of Optoelectronic Materials and Technologies and School of Physics, Sun Yat-sen University, Guangzhou 510275, China

  • *ygu@pku.edu.cn

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Issue

Vol. 126, Iss. 2 — 15 January 2021

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