Self-Powered β-Ga2O3 Nanowire via Controlled Sn-Doping and Graphene Interface Optimization Solar Blind Detector for Ultrahigh Photo-To-Dark Current Ratio Deep-UV Detection

Abstract While solar-blind ultraviolet (UV) photodetectors based on gallium oxide (Ga2O3) hold immense potential for weak-signal detection, bare Ga2O3 nanowires frequently suffer from high dark currents and severe surface photocorrosion. To overcome these limitations and achieve ultrahigh zero-bias sensitivity, we engineered a graphene/Sn-doped Ga2O3 nanowire/p-GaN heterojunction. The Sn-doped Ga2O3 nanowires were synthesized via chemical vapor deposition on a p-GaN substrate, followed by graphene interface modification. By systematically optimizing the Sn doping concentration and interfacial contact, the resulting device exhibits outstanding self-powered photoelectric performance under 254 nm illumination (82 μW/cm2). Specifically, at an optimal precursor mass ratio of Ga2O3:diamond/SnO2 = 10:10:7, the photodetector achieves an ultralow dark current of 0.238 pA, an ultrahigh photo-to-dark current ratio of 4.21 × 106, a specific detectivity of 2.5 × 1014 Jones, a responsivity of 0.389 A/W, and an external quantum efficiency of 190%. Additionally, it demonstrates a fast response time (<20 ms) and robust continuous cycling stability over 2400 s. This work presents a highly efficient heterojunction design strategy for advanced self-powered solar-blind UV photodetectors.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-09-21
DOI
https://doi.org/10.1021/acsanm.6c02947
Primary Topic
Ga2O3 and related materials
Type
article
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Self-Powered β-Ga2O3 Nanowire via Controlled Sn-Doping and Graphene Interface Optimization Solar Blind Detector for Ultrahigh Photo-To-Dark Current Ratio Deep-UV Detection

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Self-Powered β-Ga2O3 Nanowire via Controlled Sn-Doping and Graphene Interface Optimization Solar Blind Detector for Ultrahigh Photo-To-Dark Current Ratio Deep-UV Detection

Chengming Jiang, Wenqiang Lu, Xie Fu, Wei Wei, Siyi He, Muhammad Abdul Salam, Zhiyang He, Jingpeng Tan, Shaozhi Yang, Kun Zhang
article en

Abstract

Abstract While solar-blind ultraviolet (UV) photodetectors based on gallium oxide (Ga2O3) hold immense potential for weak-signal detection, bare Ga2O3 nanowires frequently suffer from high dark currents and severe surface photocorrosion. To overcome these limitations and achieve ultrahigh zero-bias sensitivity, we engineered a graphene/Sn-doped Ga2O3 nanowire/p-GaN heterojunction. The Sn-doped Ga2O3 nanowires were synthesized via chemical vapor deposition on a p-GaN substrate, followed by graphene interface modification. By systematically optimizing the Sn doping concentration and interfacial contact, the resulting device exhibits outstanding self-powered photoelectric performance under 254 nm illumination (82 μW/cm2). Specifically, at an optimal precursor mass ratio of Ga2O3:diamond/SnO2 = 10:10:7, the photodetector achieves an ultralow dark current of 0.238 pA, an ultrahigh photo-to-dark current ratio of 4.21 × 106, a specific detectivity of 2.5 × 1014 Jones, a responsivity of 0.389 A/W, and an external quantum efficiency of 190%. Additionally, it demonstrates a fast response time (<20 ms) and robust continuous cycling stability over 2400 s. This work presents a highly efficient heterojunction design strategy for advanced self-powered solar-blind UV photodetectors.

ACS Applied Nano Materials
Chongqing University of Posts and Telecommunications (CN), Chongqing University (CN), Chinese Academy of Engineering (CN), University of Chinese Academy of Sciences (CN)
Affordable and clean energy
Openalex Percentile: Top 29%
Ga2O3 and related materials
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