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基于二阶角态的低阈值拓扑纳米激光器。

Low-threshold topological nanolasers based on the second-order corner state.

作者信息

Zhang Weixuan, Xie Xin, Hao Huiming, Dang Jianchen, Xiao Shan, Shi Shushu, Ni Haiqiao, Niu Zhichuan, Wang Can, Jin Kuijuan, Zhang Xiangdong, Xu Xiulai

机构信息

Key Laboratory of advanced optoelectronic quantum architecture and measurements of Ministry of Education, School of Physics, Beijing Institute of Technology, 100081 Beijing, China.

Beijing Key Laboratory of Nanophotonics & Ultrafine Optoelectronic Systems, Micro-nano Center, School of Physics, Beijing Institute of Technology, 100081 Beijing, China.

出版信息

Light Sci Appl. 2020 Jun 29;9:109. doi: 10.1038/s41377-020-00352-1. eCollection 2020.

Abstract

Topological lasers are immune to imperfections and disorder. They have been recently demonstrated based on many kinds of robust edge states, which are mostly at the microscale. The realization of 2D on-chip topological nanolasers with a small footprint, a low threshold and high energy efficiency has yet to be explored. Here, we report the first experimental demonstration of a topological nanolaser with high performance in a 2D photonic crystal slab. A topological nanocavity is formed utilizing the Wannier-type 0D corner state. Lasing behaviour with a low threshold of approximately 1 µW and a high spontaneous emission coupling factor of 0.25 is observed with quantum dots as the active material. Such performance is much better than that of topological edge lasers and comparable to that of conventional photonic crystal nanolasers. Our experimental demonstration of a low-threshold topological nanolaser will be of great significance to the development of topological nanophotonic circuitry for the manipulation of photons in classical and quantum regimes.

摘要

拓扑激光器对缺陷和无序具有免疫能力。最近基于多种稳健的边缘态已证明了它们的存在,这些边缘态大多处于微观尺度。具有小尺寸、低阈值和高能效的二维片上拓扑纳米激光器的实现尚未得到探索。在此,我们报告了在二维光子晶体平板中首次实现高性能拓扑纳米激光器的实验演示。利用万尼尔型零维角态形成了一个拓扑纳米腔。以量子点作为有源材料,观察到了阈值约为1微瓦的激光行为以及0.25的高自发辐射耦合因子。这样的性能比拓扑边缘激光器要好得多,并且与传统光子晶体纳米激光器相当。我们对低阈值拓扑纳米激光器的实验演示对于在经典和量子领域操纵光子的拓扑纳米光子电路的发展具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fcd/7324580/42aa7e3a07b9/41377_2020_352_Fig1_HTML.jpg

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