Split ring hole metamaterial-enhanced pyroelectric detector for efficient multi-narrowband terahertz detection

Author:

Wang Yangtao1,Jing Weixuan2,Gao Liang13,Han Feng,Meng Qingzhi,Yang Chenfeng1,Zhao Libo,Jiang Zhuangde,Chan Chi Hou1

Affiliation:

1. City University of Hong Kong

2. Chongqing Key Laboratory of Micro-Nano Systems and Smart Transduction at Chongqing Technology and Business University

3. Columbia University

Abstract

Derived from infrared pyroelectric detection, typical terahertz (THz) pyroelectric detectors have low sensitivity at low-frequency THz bands. Based on the high-efficiency absorption of the metamaterial perfect absorber (MPA), a novel split ring hole metamaterial-enhanced pyroelectric detector is proposed to achieve efficient multi-narrowband THz detection. Using high frequency simulation software (HFSS), the dimensional parameters including ring radius, ring width, connection beam width, array period, and thickness, are optimized to enhance efficient multi-narrowband absorption. The as-optimized metamaterial-enhanced detectors are fabricated via micro-nano manufacturing technology. The voltage responsiveness and noise equivalent power of the metamaterial-enhanced detector are tested by THz focused optical path and compared with those of the typical pyroelectric detector and the simulated MPA absorptivity. The results indicate that the metamaterial-enhanced detector has a multi-narrowband detection capability at 0.245 THz, 0.295 THz, and 0.38 THz, which is close to the simulated MPA absorptivity. Compared to the typical pyroelectric detector, the split ring hole metamaterial-enhanced detector can simultaneously achieve thermal absorption, thermal conduction, and pyroelectricity in the same MPA structure, providing faster response speed above 100 Hz chopper frequency and two times higher detection sensitivity at multi-narrowband THz frequencies. This research can be used for THz sensing, absorption filtering, biological macromolecule detection, and other applications.

Funder

National Key Research and Development Program of China

Major Science and Technology Project of Zhengzhou City

Publisher

Optica Publishing Group

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