Graphene plasmons-enhanced terahertz response assisted by metallic gratings

Author:

Yu Anqi12ORCID,Yang Zhenyu1,Cai Miao1,Zhang Huiping1,Tian Zhengan3,Guo Xuguang12ORCID,Wang Lanxia1,Balakin Alexei V.145,Shkurinov Alexander P.145,Zhu YiMing12ORCID

Affiliation:

1. Shanghai Key Lab of Modern Optical System, Terahertz Technology Innovation Research Institute , Terahertz Spectrum and Imaging Technology Cooperative Innovation Center, University of Shanghai for Science and Technology , 516 Jungong Road , Shanghai 200093 , China

2. Shanghai Institute of Intelligent Science and Technology, Tongji University , Shanghai 200092 , China

3. Shanghai International Travel Health Care Center (Shanghai Customs Port Clinic) , 2090 Jinqiao Road , Shanghai 200125 , China

4. Faculty of Physics and International laser Center , Lomonosov Moscow State University , Leninskie Gory 1-2 , Moscow 19991 Russia

5. ILIT RAS – Branch of the FSRC “Crystallography and Photonics” RAS , Svyatoozerskaya 1, 140700, Shatura , Moscow Region , Russia

Abstract

Abstract Terahertz detectors based on two-dimensional Dirac materials offer a new approach for room-temperature terahertz detection with high response and low noise. However, these devices can hardly show high response over a broad frequency range, mainly due to the poor absorption caused by their ultrathin nature. Here we apply metallic gratings to enhance the excitation efficiency of graphene plasmons. When nonzero source-drain bias is applied, graphene plasmons can generate terahertz response orthogonal to the polarization of the incidence. The response is attributed to the orthogonal overdamped plasmon rectification effect, and graphene plasmons-enhanced photo-thermoelectric effect. By comparing the normalized on/off ratio, the metallic gratings are found to effectively enhance the coupling efficiency between graphene plasmons and THz incidence, and thus the absorption and responsivity. The results are beneficial for improving the response of room temperature THz detectors.

Funder

State assignment FSRC «Crystallography and Photonics» RAS

General Administration of Customs People’s Republic of China

Higher Education Discipline Innovation Project

National Natural Science Foundation of China

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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