Wang Wenyan, Zhang Cheng, Qiu Kaifang, Li Guohui, Zhai Aiping, Hao Yuying, Li Xiaofeng, Cui Yanxia
College of Physics and Optoelectronics, Key Laboratory of Advanced Transducers and Intelligent Control System of Ministry of Education, Key Laboratory of Interface Science and Engineering in Advanced Materials, Taiyuan University of Technology, Taiyuan 030024, China.
School of Optoelectronic Science, Engineering & Collaborative Innovation Center of Suzhou Nano Science and Technology, Key Laboratory of Advanced Optical Manufacturing Technologies of Jiangsu Province & Key Laboratory of Modern Optical Technologies of Education Ministry of China, Soochow University, Suzhou 215006, China.
Materials (Basel). 2022 Apr 8;15(8):2737. doi: 10.3390/ma15082737.
Hot-electron photodetectors (HEPDs) are triggering a strong surge of interest in applications of image sensors and optics communication, since they can realize photoelectric responses when the incident photon energy is lower than the bandwidth of the semiconductor. In traditional HEPD systems, the metal layers are dressed with regular gratings, which can only excite plasmonic resonance over a narrow bandwidth, limiting the hot-electron photoelectric effect. To break this limitation, hybrid plasmonic nanostructures should be applied in HEPDs. Here, we propose a TiO based HEPD device incorporated with a hybrid plasmonic nanostructure, which consists of Au nanoparticles (Au NPs) and a conformal transparent Au film. With the assistance of the plasmonic resonances excited in this hybrid nanostructure, the spectrum of the photocurrent response is significantly broadened from the UV band to the visible and near-infrared (NIR) ranges. It is demonstrated that at the wavelengths of 660 nm and 850 nm, the photocurrent in the hybrid HEPD device is enhanced by 610% and 960%, respectively, compared with the counterparts without the addition of Au NPs. This work promotes the development of high performances HEPDs, offering an alternative strategy for realizing photodetection and image sensing in the NIR range.
热电子光电探测器(HEPD)正在引发人们对图像传感器和光通信应用的强烈兴趣浪潮,因为当入射光子能量低于半导体带宽时,它们能够实现光电响应。在传统的HEPD系统中,金属层覆盖着规则的光栅,这只能在窄带宽内激发等离子体共振,限制了热电子光电效应。为了打破这一限制,应在HEPD中应用混合等离子体纳米结构。在此,我们提出一种基于TiO的HEPD器件,其结合了一种混合等离子体纳米结构,该结构由金纳米颗粒(Au NPs)和保形透明金膜组成。在这种混合纳米结构中激发的等离子体共振的帮助下,光电流响应光谱从紫外波段显著拓宽到可见光和近红外(NIR)范围。结果表明,在660nm和850nm波长下,与未添加Au NPs的对应器件相比,混合HEPD器件中的光电流分别提高了610%和960%。这项工作推动了高性能HEPD的发展,为在近红外范围内实现光电探测和图像传感提供了一种替代策略。