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High Responsivity of Zero-Power-Consumption Ultraviolet Photodetector Using 2D-MoS2/i-GaN Vertical Heterojunction

光电探测器 响应度 材料科学 光电子学 异质结 量子效率 紫外线 带隙 肖特基势垒 比探测率 二极管
作者
Sushmitha Veeralingam,Liwen Sang,Hong Pang,Renzhi Ma,Sushmee Badhulika
出处
期刊:ACS Photonics [American Chemical Society]
卷期号:10 (12): 4408-4416
标识
DOI:10.1021/acsphotonics.3c01250
摘要

The wide bandgap semiconductor GaN has proven to be an excellent candidate for high-performance ultraviolet (UV) photodetectors owing to the direct bandgap, long lifetime, outstanding radiation hardness, and high thermal and chemical stability. To ultimately reduce the power consumption, self-powered operation is preferred. However, it is difficult to achieve a high responsivity when no external bias is applied for the reported self-powered Schottky, p–n junction, or hybrid GaN-based photodetectors. In this study, we report a UV photodetector with an ultrahigh photoresponsivity and fast response speed under zero-power consumption by integrating GaN with transition metal dichalcogenides (TMDs) MoS2 nanosheets through one-step hydrothermal and substrate compatible drop-casting method. Detailed characterization confirmed the formation of a 2D-MoS2/i-GaN vertical heterojunction with a few layers of hexagonal MoS2 nanosheets on a high-crystalline-quality GaN film. The photoresponsivity as high as 610 A/W and external quantum efficiency exceeding 2000% were achieved at the wavelength of 370 nm under zero external bias without sacrificing the response speed (∼ms). The specific detectivity was estimated to be 1.22 × 1014 Jones, and the UV/visible discrimination ratio was more than 2 orders of magnitude. The excellent performance of the 2D-MoS2/GaN-based vertical heterojunction UV photodetector could be attributed to the optimized heterointerface and the effective separation and transfer of photogenerated electron–hole pairs by the strong built-in electric field formed from the band alignment of the type-II heterojunction. This photodetector, with superior photoresponsivity at zero-power consumption, is promising for practical applications in areas such as sensing, imaging, and communication.
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