Enhanced Photodetection of Monocrystalline CsPbBr 3 Photoconductor Enabled by Largely Variable Contact Resistance of Graphene Electrodes

材料科学 石墨烯 光探测 光电子学 光电流 电极 接触电阻 肖特基势垒 光电探测器 光电效应 钙钛矿(结构) 纳米技术 功勋 带隙 氧化物 半导体 薄板电阻 肖特基二极管 欧姆接触 透射率 暗电流 光刻胶 探测器
作者
Xiaoyu Sun,Siyu Li,Jinding Zhang,Weiqi Gao,Kaixin Niu,Longbin Zhang,Zehao Li,Biao Xie,Yiliu Wang,Yuan Liu
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (17): 12954-12965
标识
DOI:10.1021/acsnano.5c21884
摘要

Excellent photoelectric properties and stability of CsPbBr 3 single crystals mark broad prospects in the fields of photoelectrical detection. While attention to the contacts that have a huge influence on the figures of merit of the devices is relatively lacking, making an investigation into high-quality contacts a pressing need. Here, transparent multilayer graphene electrodes (MGE) are directly laminated to CsPbBr 3 single crystals, forming a photoconductor-type photodetector. Benefiting from the optical transparency, mechanical flexibility, and chemical stability of multilayer graphene (MG) and its appropriate energy band alignment with CsPbBr 3, the MG-contacted photoconductor exhibits significantly reduced dark current, enhanced photocurrent, and improved operational stability compared to its Au-contacted counterpart. Schottky barrier height at the MG-CsPbBr 3 interface varies under different illuminations owing to the transparency of MG, enabling variable contact resistance ( R C ) over a wide range and thereby an approximately 2 orders of magnitude enhancement in the light-to-dark ratio of the MG-contacted photoconductor. Enhanced detectivity under weak illumination and an improved response rate are also achieved. Furthermore, the chemical inertness of carbon-based multilayer graphene electrodes brings about a pronounced suppression of photocurrent drift. The transparent MGE provides a method for achieving wide-range changes in contact resistance to realize photodetection and also offers a feasible approach for the assembly of efficient and stable perovskite optoelectronics.
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