Enhanced Photogating Effect in Graphene Photodetectors via Potential Fluctuation Engineering

光电探测器 响应度 石墨烯 材料科学 光电子学 单层 半导体 基质(水族馆) 纳米技术 海洋学 地质学
作者
Hao Jiang,Jingxuan Wei,Feiying Sun,Changbin Nie,Jintao Fu,Haofei Shi,Jiu-Xun Sun,Xingzhan Wei,Cheng‐Wei Qiu
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (3): 4458-4466 被引量:101
标识
DOI:10.1021/acsnano.1c10795
摘要

The photogating effect in hybrid structures has manifested itself as a reliable and promising approach for photodetectors with ultrahigh responsivity. A crucial factor of the photogating effect is the built-in potential at the interface, which controls the separation and harvesting of photogenerated carriers. So far, the primary efforts of designing the built-in potential rely on discovering different materials and developing multilayer structures, which may raise problems in the compatibility with the standard semiconductor production line. Here, we report an enhanced photogating effect in a monolayer graphene photodetector based on a structured substrate, where the built-in potential is established by the mechanism of potential fluctuation engineering. We find that the enhancement factor of device responsivity is related to a newly defined parameter, namely, fluctuation period rate (Pf). Compared to the device without a nanostructured substrate, the responsivity of the device with an optimized Pf is enhanced by 100 times, reaching a responsivity of 240 A/W and a specific detectivity, D*, of 3.4 × 1012 Jones at 1550 nm wavelength and room temperature. Our experimental results are supported by both theoretical analysis and numerical simulation. Since our demonstration of the graphene photodetectors leverages the engineering of structures with monolayer graphene rather than materials with a multilayer complex structure. it should be universal and applicable to other hybrid photodetectors.
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