Chirality-selective electromagnetically induced transparency in a dielectric metasurface based on chirality transfer between bright and dark modes

Author:

Zhao Shuxia12ORCID,Gao Lei34ORCID,Zhang Wei156ORCID

Affiliation:

1. Institute of Applied Physics and Computational Mathematics 1 , Beijing 100088, China

2. Information Science Academy of China Electronics Technology Group Cooperation 2 , Beijing 100041, China

3. School of Optical and Electronic Information, Suzhou City University 3 , Suzhou 215104, China

4. Institute of Theoretical and Applied Physics, School of Physical Science and Technology & Jiangsu Key Laboratory of Thin Films, Soochow University 4 , Suzhou 215006, China

5. Beijing Computational Science Research Center 5 , Beijing 100084, China

6. School of Physical Science and Technology, Soochow University 6 , Suzhou 215006, China

Abstract

Chiral metasurfaces have wide applications in chiral sensing and functional devices, such as ultrathin circular polarizers. By analytical coupled mode theory and finite-difference time domain simulation, we investigate the chiroptical properties of designed dielectric metasurface with unit cell of corner-stacked nanorods and stacked nanorings, paying attention to the bright-dark-mode coupling effects. With the help of phase modulation and mode hybridization, we can realize chirality transfer from bright modes of chiral nanorods to dark modes of achiral nanorings, which results in chirality-selective transparency due to chirality-selective excitation of binding/antibonding dark modes. Moreover, one can switch between different coupling regimes with a distinct physical effect (Fano effect vs Rabi splitting) by changing only the chirality of the incident field without varying the structure of the metasurface. Based on the mechanisms of chirality transfer and mode hybridization, our designed metasurface has achieved chirality-selective transparent window with tunable central frequency and bandwidth, which provides insight and guidance for the optoelectronic device design.

Funder

National Natural Science Foundation of China

NSFC-RGC

National Key Research and Development Program of China

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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