An Advanced Robust van der Waals Heterostructure Photodetector with Ultralow Dark Current and a Large Linear Dynamic Range for Polarization Imaging and Optical Communication

光电探测器 光电子学 材料科学 光电流 光探测 异质结 暗电流 范德瓦尔斯力 半导体 动态范围 光通信 电场 响应时间 紫外线 极化(电化学) 高动态范围 比探测率 光学 载流子 宽动态范围 光伏 位移电流
作者
Lingjun Ma,Youqi Zhang,Kaixiang Hu,Xipeng Wang,Lingqi Huang,P. Li,T. Wang,Jie Sun,Zhaowei Wang,Jianfei Li,Jiancai Leng,Wenjia Wang,Kuilong Li
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:18 (7): 11542-11552 被引量:4
标识
DOI:10.1021/acsami.5c19910
摘要

The diversity of 2D materials and their excellent optoelectronic properties have brought revolutionary opportunities and challenges for novel multifunctional semiconductor devices. As a representative multielement van der Waals semiconductor, AgInP 2 S 6 offers a new platform for developing novel optoelectronic devices but suffers from bottlenecks including low response speed, narrow response spectrum, and single-functionality. Herein, an advanced robust ReSe 2 /AgInP 2 S 6 vdWs heterostructure photodetector with a response spectrum spanning from the ultraviolet to near-infrared region was successfully constructed, enabling polarization-sensitive imaging and optical communication. An ultralow dark current (∼10 –14 A), self-driven detection capability, large linear dynamic range (72.0 dB at 525 nm and 40.3 dB at 980 nm), long-term stable photoswitching operation, and fast response speed (rise/decay times: 170/150 μs) were achieved, facilitated by the efficient separation of photogenerated carriers within the built-in electric field at the heterointerface, as confirmed by high-spatial-resolution photocurrent mappings. Additionally, the heterostructure exhibits polarization-sensitive photodetection with dichroic ratios of 2.58 and 3.30 at 980 nm under self-powered and external bias-driven modes, respectively. This work establishes a novel strategy for developing high-performance, multifunctional photodetectors, enabling new design and application avenues for next-generation, advanced optoelectronic devices.
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