Guo Dechao, Yang Liqing, Zhao Jingcheng, Li Ji, He Guo, Yang Dezhi, Wang Linge, Vadim Agafonov, Ma Dongge
Center for Aggregation-Induced Emission, Institute of Polymer Optoelectronic Materials and Devices, Guangdong Provincial Key Laboratory of Luminescence from Molecular Aggregates, State Key Laboratory of Luminescent Materials and Devices, South China University of Technology, Guangzhou 510640, People's Republic of China.
Mater Horiz. 2021 Aug 1;8(8):2293-2302. doi: 10.1039/d1mh00776a. Epub 2021 Jun 28.
A visible-blind ultraviolet (UV) photodetector can detect UV signals and is not interfered with by visible light or infrared light in the environment. In order to realize high-performance visible-blind UV organic photodetectors (OPDs), we design photomultiplication-type (PM-type) OPDs by using a novel strategy. Firstly, wide bandgap organic semiconductor materials, which do not absorb visible light, are selected as donors to absorb UV light. Secondly, a very small amount of C is used as an acceptor to trap photogenerated electrons. These accumulating electrons near the Al electrode form a potential, which leads to band bending and narrowing of the interface barrier, thereby assisting hole-tunneling injection to form a multiplication. The fabricated visible-blind UV PM-type OPDs with donor/acceptor doping ratio of 50 : 1 exhibit a narrowband response with full-width at half-maximum (FWHM) of approximately 36 nm, an ultrahigh external quantum efficiency of 1.08 × 10% and a remarkable specific detectivity of 1.28 × 10 jones at 335 nm wavelength under -14 V bias. The UV-to-visible rejection ratio exceeds 10 by adjusting the donor/acceptor mixing ratios. The devices made with other wide bandgap organic materials also showed similar performance, indicating that this device structure provides an effective method for the preparation of high-performance visible-blind UV PM-type OPDs. In addition, we prepared a flexible visible-blind UV PM-type OPD based on a PET substrate and integrated it with a flexible OLED to fabricate a wearable UV monitor, which can visually detect the intensity of UV light.
一种可见光盲紫外(UV)光电探测器能够检测紫外信号,且不受环境中的可见光或红外光干扰。为了实现高性能的可见光盲紫外有机光电探测器(OPD),我们采用一种新颖的策略设计了光倍增型(PM型)OPD。首先,选择不吸收可见光的宽带隙有机半导体材料作为供体来吸收紫外光。其次,使用极少量的C作为受体来捕获光生电子。这些在铝电极附近积累的电子形成一个电势,导致能带弯曲和界面势垒变窄,从而辅助空穴隧穿注入形成倍增。制备的供体/受体掺杂比为50∶1的可见光盲紫外PM型OPD在-14 V偏压下于335 nm波长处表现出半高宽(FWHM)约为36 nm的窄带响应以及1.08×10%的超高外量子效率和1.28×10琼斯的显著比探测率。通过调整供体/受体混合比例,紫外与可见光的抑制比超过10。用其他宽带隙有机材料制成的器件也表现出类似的性能,表明这种器件结构为制备高性能的可见光盲紫外PM型OPD提供了一种有效方法。此外,我们基于聚对苯二甲酸乙二酯(PET)衬底制备了一种柔性可见光盲紫外PM型OPD,并将其与柔性有机发光二极管(OLED)集成以制造一种可穿戴紫外监测器,该监测器能够直观地检测紫外光的强度。