Li Yifan, Jia Yiming, Yang He, Wu Yinghui, Cao Yajun, Zhang Xuyang, Lou Cunguang, Liu Xiuling, Huang Long-Biao, Yao Jianquan
College of Electronic Information Engineering & Hebei Key Laboratory of Digital Medical Engineering, Hebei University, Baoding, 071000, China.
School of Precision Instruments and Opto-Electronics Engineering, Tianjin University, Tianjin, 300072, China.
Adv Sci (Weinh). 2025 Feb;12(6):e2407634. doi: 10.1002/advs.202407634. Epub 2024 Dec 17.
Terahertz (THz) polarization detection facilitates the capture of multidimensional data, including intensity, phase, and polarization state, with broad applicability in high-resolution imaging, communication, and remote sensing. However, conventional semiconductor materials are limited by energy band limitations, rendering them unsuitable for THz detection. Overcoming this challenge, the realization of high-stability, room-temperature polarization-sensitive THz photodetectors (PDs) leveraging the thermoelectric effect of Cs(FAMA)Pb(IBr) (CsFAMA)/metasurfaces is presented. Two different structures of (T-shaped and I-shaped) THz PDs are constructed. The incorporation of perovskite/metasurfaces forms enhanced local field thermoelectric effect and polarization response. Owning to THz surface plasmon polariton (SPP) resonance effect and more boundary effect, the I-shaped PDs exhibit superior performance, achieving a response of up to 94 V/W, with a response time of 138 µs, a low noise-equivalent power of 5.03 pW/Hz and an anisotropy ratio of 1.38 under 0.1THz laser irradiation. Furthermore, the PD's stability is verified with the anisotropy ratio decreased by only 2% and polarization imaging results after 240 days of storage in air condition. This research introduces a method for achieving high-performance, stable THz polarization detection technology, with significant potential for advancements in materials science, communication technology, and medical imaging.
太赫兹(THz)偏振检测有助于捕获多维数据,包括强度、相位和偏振态,在高分辨率成像、通信和遥感等领域具有广泛的应用。然而,传统半导体材料受到能带限制,不适用于太赫兹检测。为克服这一挑战,本文提出了利用Cs(FAMA)Pb(IBr)(CsFAMA)/超表面的热电效应实现高稳定性、室温偏振敏感太赫兹光电探测器(PDs)。构建了两种不同结构(T形和I形)的太赫兹PDs。钙钛矿/超表面的结合形成了增强的局部场热电效应和偏振响应。由于太赫兹表面等离激元极化激元(SPP)共振效应和更多的边界效应,I形PDs表现出优异的性能,在0.1THz激光照射下,响应高达94 V/W,响应时间为138 µs,低噪声等效功率为5.03 pW/Hz,各向异性比为1.38。此外,通过在空调环境中储存240天后各向异性比仅下降2%以及偏振成像结果验证了该PD的稳定性。本研究介绍了一种实现高性能、稳定太赫兹偏振检测技术的方法,在材料科学、通信技术和医学成像等方面具有显著的发展潜力。