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利用六边形排列的金纳米孔中的等离激元诱导热电效应实现偏振无关的窄带光电探测。

Polarization-independent narrowband photodetection with plasmon-induced thermoelectric effect in a hexagonal array of Au nanoholes.

作者信息

Kim Sehyeon, Kim San, Kim Jae-Young, Jeong Tae-In, Song Munki, Kim Seungchul

机构信息

Department of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, Republic of Korea.

Department of Optics and Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan, 46241, Republic of Korea.

出版信息

Nanophotonics. 2025 Feb 17;14(10):1615-1624. doi: 10.1515/nanoph-2024-0643. eCollection 2025 May.

Abstract

Photodetectors are crucial for modern technologies such as optical communications, imaging, autonomous vehicles, and machine vision. However, conventional semiconductor-based photodetectors require additional filtering systems due to their broad spectral response, leading to increased costs and complexity. Here, we present a narrow spectral response photodetector using hexagonally arranged plasmonic Au nanohole structures, eliminating the need for optical filters. The device achieves a full-width at half maximum (FWHM) bandwidth of ∼40 nm with a response peak at 760 nm and a linear photocurrent responsivity of 0.95 μA/W. The photothermoelectric effect, induced by the nonradiative decay of plasmonic resonance, converts optical radiation into an electric potential on the Au surface. The hexagonal nanohole design generates polarization-independent photocurrents and allows spectral tuning beyond the cutoff region of silicon photodetectors. This versatile approach enables customizable response characteristics across a broad wavelength range through geometric design, enhancing its potential for diverse applications.

摘要

光电探测器对于诸如光通信、成像、自动驾驶车辆和机器视觉等现代技术至关重要。然而,传统的基于半导体的光电探测器由于其宽光谱响应而需要额外的滤波系统,这导致成本增加和复杂性提高。在此,我们展示了一种使用六边形排列的等离子体金纳米孔结构的窄光谱响应光电探测器,无需光学滤波器。该器件实现了约40纳米的半高全宽(FWHM)带宽,响应峰值在760纳米,线性光电流响应率为0.95微安/瓦。由等离子体共振的非辐射衰减引起的光热效应将光辐射转化为金表面的电势。六边形纳米孔设计产生与偏振无关的光电流,并允许在硅光电探测器的截止区域之外进行光谱调谐。这种通用方法通过几何设计能够在很宽的波长范围内实现可定制的响应特性,增强了其在各种应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f95/12116267/fc3d84cb2520/j_nanoph-2024-0643_fig_001.jpg

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