High-Performance (PEA) 2 PbI 4 /SnS 2 van der Waals Heterostructure Phototransistor with Gate-Tunable Breaking of the Responsivity–Speed Trade-Off

响应度 光电子学 光探测 光电探测器 异质结 暗电流 光电二极管 材料科学 比探测率 范德瓦尔斯力 量子效率 光电效应 光敏性 光伏 半导体 硫系化合物 量子阱 响应时间
作者
Fobao Huang,Yifan Sun,Junjun Hu,Chunxiao Liu,Hengle Zhou,Nanyu Chen,Tianlun Li,Yao Li,Gongwei Hu,Wei Huang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (5): 4582-4591
标识
DOI:10.1021/acsnano.5c21721
摘要

Tin disulfide (SnS2) exhibits strong photoresponse and strong gate controllability, making it a promising material for optoelectronic integrated circuits. However, its intrinsically high on-state dark current severely constrains further improvement of photosensitivity and limits its potential for low-power applications. In this work, we develop a low-dark-current, high-responsivity, and highly stable phototransistor based on a (PEA)2PbI4/SnS2 van der Waals heterostructure via an all-dry transfer technique. Importantly, we demonstrate that gate-voltage tuning enables the device to overcome the long-standing responsivity–speed trade-off typically observed in photodetectors. With interfacial modification provided by (PEA)2PbI4, the on-state dark current of the SnS2-channel phototransistor is reduced by approximately 2 orders of magnitude. The device exhibits high photodetection performance, achieving a maximum responsivity of 218 A W–1, a specific detectivity of 3.97 × 1012 Jones, and an external quantum efficiency of 47,447%. Moreover, the phototransistor remains operational after 4000 h of storage under ambient conditions, with the dark current increasing by less than 3 nA, demonstrating long-term environmental stability. Notably, the photoresponse time decreases monotonically with increasing gate voltage, while the responsivity simultaneously increases, representing an unconventional behavior opposite to that of conventional photodetectors and effectively breaking the traditional responsivity–speed trade-off. The strategy presented here can be widely applied to two-dimensional perovskite/two-dimensional metal-sulfide heterostructures for constructing high-performance optoelectronic devices.
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