Wang Rui, He Zhen, Wang Jin-Long, Liu Jia-Yang, Liu Jian-Wei, Yu Shu-Hong
Department of Chemistry, Institute of Biomimetic Materials & Chemistry, Anhui Engineering Laboratory of Biomimetic Materials, Division of Nanomaterials & Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, People's Republic of China.
Institute of Innovative Materials (I2M), Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, People's Republic of China.
Nano Lett. 2022 Jul 27;22(14):5929-5935. doi: 10.1021/acs.nanolett.2c01957. Epub 2022 Jul 14.
The photothermoelectric effect, directly converting light energy into electrical energy, shows promising prospects in self-powered broad-band optical detection, which can extend to various applications, such as sensing, optoelectronic communications, and wide-temperature-range measurements. However, the low photosensitivity, narrow-band response, and rapid performance degeneration under continuous illumination restrict its broad application. Herein, we propose a simple bottom-up strategy to manipulate nanowires (NWs) into a well-defined multilayer Te-AgTe-Ag NW film, resulting in a high-performance photothermoelectric photodetector with a broad-band responsivity (4.1 V/W), large detectivity (944 MHz W), and fast response speed (0.4-0.7 s from 365 to 1200 nm). In addition, the ultrathin structure endows this device with slow and weak transverse heat conduction, enabling a stable voltage without an obvious degeneration over 1500 s. The highly anisotropic arrangement of NWs gives this device a prominent polarization sensitivity. Prospectively, this hierarchically designed nanowire film provides a promising pathway toward engineering photodetectors with high performance.
光热光电效应可直接将光能转化为电能,在自供电宽带光学检测领域展现出广阔前景,该技术可拓展至多种应用,如传感、光电通信以及宽温度范围测量等。然而,其低光敏性、窄带响应以及在持续光照下快速的性能退化限制了它的广泛应用。在此,我们提出一种简单的自下而上的策略,将纳米线(NWs)操控成结构明确的多层碲-碲化银-银纳米线薄膜,从而制备出一种高性能的光热光电探测器,该探测器具有宽带响应度(4.1 V/W)、高探测率(944 MHz W)以及快速响应速度(在365至1200 nm波长范围内为0.4 - 0.7 s)。此外,超薄结构使该器件具有缓慢且微弱的横向热传导特性,能够在1500 s内保持稳定电压且无明显退化。纳米线的高度各向异性排列赋予该器件显著的偏振敏感性。展望未来,这种分层设计的纳米线薄膜为制造高性能光探测器提供了一条有前景的途径。