Advanced Terahertz Refractive Sensing And Fingerprint Recognition Through Metasurface‐Excited Surface Waves

Author:

Zhang Zeyan12,Wang Zhuo3,Zhang Chao4ORCID,Yao Zhibo5,Zhang Shoujun5,Wang Ride2,Tian Zhen5,Han Jiaguang5,Chang Chao12ORCID,Lou Jing2,Yan Xueqing1,Qiu Chengwei6

Affiliation:

1. School of Physics Peking University Beijing 100871 China

2. Innovation Laboratory of Terahertz Biophysics National Innovation Institute of Defense Technology Beijing 100071 China

3. State Key Laboratory of Surface Physics and Key Laboratory of Micro and Nano Photonic Structures (Ministry of Education) Fudan University Shanghai 200433 China

4. Department of Neurosurgery Center Zhujiang Hospital Southern Medical University Guangzhou 510282 China

5. Center for Terahertz Waves and College of Precision Instrument and Optoelectronics Engineering Key Laboratory of Optoelectronic Information Technology (Ministry of Education of China) Tianjin University Tianjin 300072 China

6. Department of Electrical and Computer Engineering National University of Singapore Singapore 117583 Singapore

Abstract

AbstractHigh‐sensitive metasurface‐based sensors are essential for effective substance detection and insightful bio‐interaction studies, which compress light in subwavelength volumes to enhance light–matter interactions. However, current methods to improve sensing performance always focus on optimizing near‐field response of individual meta‐atom, and fingerprint recognition for bio‐substances necessitates several pixelated metasurfaces to establish a quasi‐continuous spectrum. Here, a novel sensing strategy is proposed to achieve Terahertz (THz) refractive sensing, and fingerprint recognition based on surface waves (SWs). Leveraging the long‐range transmission, strong confinement, and interface sensitivity of SWs, a metasurface‐supporting SWs excitation and propagation is experimentally verified to achieve sensing integrations. Through wide‐band information collection of SWs, the proposed sensor not only facilitates refractive sensing up to 215.5°/RIU, but also enables the simultaneous resolution of multiple fingerprint information within a continuous spectrum. By covering 5 µm thickness of polyimide, quartz and silicon nitride layers, the maximum phase change of 91.1°, 101.8°, and 126.4° is experimentally obtained within THz band, respectively. Thus, this strategy broadens the research scope of metasurface‐excited SWs and introduces a novel paradigm for ultrasensitive sensing functions.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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