Combining three sources of optical anisotropy in a tunable open-access microcavity: From theory to experiment

Author:

Li Yiming1,Luo Xiaoxuan1,Guo Yaxin1,Ren Jiahuan23,Long Teng2,Wang Bohao4,Cai Yin1,Guo Chaowei5,Qin Yuanbin5ORCID,Fu Hongbing2,Zhang Yanpeng1ORCID,Yun Feng14ORCID,Liao Qing2,Li Feng14ORCID

Affiliation:

1. Key Laboratory for Physical Electronics and Devices of the Ministry of Education & Shaanxi Key Lab of Information Photonic Technique, School of Electronic Science and Engineering, Faculty of Electronic and Information Engineering, Xi’an Jiaotong University 1 , Xi’an 710049, China

2. Beijing Key Laboratory for Optical Materials and Photonic Devices, Department of Chemistry, Capital Normal University 2 , Beijing 100048, China

3. School of Physical Science and Technology, Hebei University 3 , Baoding, Hebei 071000, China

4. Solid-State Lighting Engineering Research Center, Xi’an Jiaotong University 4 , Xi’an 710049, China

5. Center for Advancing Materials Performance from the Nanoscale (CAMP-Nano), State Key Laboratory for Mechanical Behavior of Materials, Xi’an Jiaotong University 5 , Xi’an 710049, China

Abstract

Photonic spin–orbit (SO) coupling is an important physical mechanism leading to numerous interesting phenomena in the systems of microcavity photons and exciton-polaritons. We report the effect of SO coupling in a tunable open-access microcavity embedded with anisotropic active media. The SO coupling associated with the TE–TM splitting results in an emergent anisotropy, which further leads to fine energy splittings allowing clear observation of the full set of eigenstates, in sharp contrast with the isotropic situation which leads to the isotropic eigenstates of spin vortices. We show that the photonic potential can be engineered by playing with the relation between the emergent anisotropy and the cavity ellipticity. All the experimental results are well reproduced by the degenerate perturbation theory. Our results constitute a significant extension to the research field of microcavity spinoptronics, with potential applications in polarization control and optical property measurement of photonic devices and materials.

Funder

National Natural Science Foundation of China

Shaanxi Key Science and Technology Innovation Team Project

Natural Science Foundation of Beijing Municipality

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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