Electrically tunable THz graphene metasurface wave retarders

Author:

Park Hyunwoo1,Jeong Sodam1,Seo Changwon2,Park Hyeongi1,Oh Donghak3,Shim Jae-Eon1,Lee Jaeyeong1,Ha Taewoo4,Kim Hyeon-Don5,Baek Soojeong3,Min Bumki6,Kim Teun-Teun1ORCID

Affiliation:

1. Department of Physics , University of Ulsan , Ulsan 44610 , Republic of Korea

2. Department of Physics and Energy Harvest-Storage Research Center , University of Ulsan , Ulsan 44610 , Republic of Korea

3. Department of Mechanical Engineering , Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141 , Republic of Korea

4. Center for Integrated Nanostructure Physics (CINAP) , Institute for Basic Science (IBS) , Suwon 16419 , Republic of Korea

5. Department of Nano-Mechanics, Nano-Convergence Manufacturing Systems Research Division , Korea Institute of Machinery & Materials (KIMM) , Daejeon 34103 , Republic of Korea

6. Department of Physics , Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141 , Republic of Korea

Abstract

Abstract Anisotropic materials with chirality or birefringence can be used to manipulate the polarization states of electromagnetic waves. However, the comparatively low anisotropy of natural materials hinders the miniaturization of optical components and devices at terahertz frequencies. In this study, we experimentally demonstrate that the relative phase retardation of a THz wave can be electrically controlled by integrating patterned mono- and bilayer graphene onto an otherwise isotropic metasurface. Specifically, we show that a refractive index for one of the orthogonal polarization states can be electrically controlled by modulating graphene’s conductivity, thereby weakening the capacitive coupling between adjacent meta-atoms in an anisotropic manner. With monolayer graphene, phase retardation of 15° to 81° between two orthogonal polarization states can be achieved. Maximum phase retardation of 90° through a metasurface with bilayer graphene suggests its use as a tunable quarter-wave plate. Continuous control from linear- to circular-polarization states may provide a wide range of opportunities for the development of compact THz polarization devices and polarization-sensitive THz technology.

Funder

National Research Foundation of Korea

Ministry of Science and ICT, South Korea

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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