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光子晶体L3纳米腔二聚体阵列中拓扑边缘态的激光发射

Lasing at topological edge states in a photonic crystal L3 nanocavity dimer array.

作者信息

Han Changhyun, Lee Myungjae, Callard Ségolène, Seassal Christian, Jeon Heonsu

机构信息

1Department of Physics and Astronomy, Seoul National University, Seoul, 08826 Republic of Korea.

2Inter-University Semiconductor Research Centre, Seoul National University, Seoul, 08826 Republic of Korea.

出版信息

Light Sci Appl. 2019 Apr 24;8:40. doi: 10.1038/s41377-019-0149-7. eCollection 2019.

Abstract

Topological photonics have provided new insights for the manipulation of light. Analogous to electrons in topological insulators, photons travelling through the surface of a topological photonic structure or the interface of two photonic structures with different topological phases are free from backscattering caused by structural imperfections or disorder. This exotic nature of the topological edge state (TES) is truly beneficial for nanophotonic devices that suffer from structural irregularities generated during device fabrication. Although various topological states and device concepts have been demonstrated in photonic systems, lasers based on a topological photonic crystal (PhC) cavity array with a wavelength-scale modal volume have not been explored. We investigated TESs in a PhC nanocavity array in the Su-Schrieffer-Heeger model. Upon optical excitation, the topological PhC cavity array realised using an InP-based multiple-quantum-well epilayer spontaneously exhibits lasing peaks at the topological edge and bulk states. TES characteristics, including the modal robustness caused by immunity to scattering, are confirmed from the emission spectra and near-field imaging and by theoretical simulations and calculations.

摘要

拓扑光子学为光的操控提供了新的见解。类似于拓扑绝缘体中的电子,在拓扑光子结构表面或具有不同拓扑相的两个光子结构界面传播的光子不会因结构缺陷或无序而发生背向散射。拓扑边缘态(TES)的这种奇异特性对于受器件制造过程中产生的结构不规则影响的纳米光子器件确实有益。尽管在光子系统中已经展示了各种拓扑态和器件概念,但尚未探索基于具有波长尺度模态体积的拓扑光子晶体(PhC)腔阵列的激光器。我们在Su-Schrieffer-Heeger模型中的PhC纳米腔阵列中研究了TES。在光激发下,使用基于InP的多量子阱外延层实现的拓扑PhC腔阵列在拓扑边缘态和体态处自发地呈现出激光峰。从发射光谱和近场成像以及通过理论模拟和计算证实了TES特性,包括由抗散射引起的模态鲁棒性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97f9/6478828/4e144a4d9666/41377_2019_149_Fig1_HTML.jpg

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