Band offset engineering and interface carrier transport optimization in GeO2/ β -Ga2O3 heterostructures for high-performance self-powered solar-blind photodetectors

Ultra-wide bandgap semiconductor GeO2/β-Ga2O3 heterostructures are attracting growing attention as potential candidates for achieving solar-blind ultraviolet detection applications. However, the unfavorable conduction and valence band barriers at the heterostructure interface severely hinder the development of high-performance GeO2/β-Ga2O3 heterojunction self-powered solar-blind photodetectors (SP-SBPDs) due to the unimpeded transport of thermally activated electrons and the accumulation phenomenon of holes. Here, a GeO2/β-Ga2O3 heterostructure with a SiO2 insertion layer has been designed to fabricate 213 nm SP-SBPDs, in which the inserted SiO2 layer effectively suppresses thermal carrier transfer in the dark and regulates photogenerated carrier transport through the introduced band offsets. Compared with the GeO2/β-Ga2O3 SP-SBPD, the GeO2/SiO2/β-Ga2O3 SP-SBPD achieves a 129-fold reduction in the dark current and a 3.3-fold enhancement in photon-to-dark-current ratio without applied bias. Moreover, the GeO2/SiO2/β-Ga2O3 device also exhibits a larger detectivity of 3.11 × 1012 Jones and faster rise/fall times of 109/75 ms, which enables self-powered solar-blind UV imaging with a quality factor of 9.8 and a bit error rate of 2.81 × 10−2. Our experimental results demonstrate the potential of the GeO2/SiO2/β-Ga2O3 SP-SBPDs for solar-blind UV imaging, optical communication, and information encryption applications.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0344185
Primary Topic
Ga2O3 and related materials
Type
article
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Band offset engineering and interface carrier transport optimization in GeO2/ β -Ga2O3 heterostructures for high-performance self-powered solar-blind photodetectors

Zhengwei Chen, Suhua Zang, Xu Wang, Ziyu Li et al.
Applied Physics Letters
Ga2O3 and related materials
article

Band offset engineering and interface carrier transport optimization in GeO2/ β -Ga2O3 heterostructures for high-performance self-powered solar-blind photodetectors

Zhengwei Chen, Suhua Zang, Xu Wang, Ziyu Li, Dongdong Meng, Binqi Tang, Siying Hu, Xingyu Liu, Yang Chen
article en

Abstract

Ultra-wide bandgap semiconductor GeO2/β-Ga2O3 heterostructures are attracting growing attention as potential candidates for achieving solar-blind ultraviolet detection applications. However, the unfavorable conduction and valence band barriers at the heterostructure interface severely hinder the development of high-performance GeO2/β-Ga2O3 heterojunction self-powered solar-blind photodetectors (SP-SBPDs) due to the unimpeded transport of thermally activated electrons and the accumulation phenomenon of holes. Here, a GeO2/β-Ga2O3 heterostructure with a SiO2 insertion layer has been designed to fabricate 213 nm SP-SBPDs, in which the inserted SiO2 layer effectively suppresses thermal carrier transfer in the dark and regulates photogenerated carrier transport through the introduced band offsets. Compared with the GeO2/β-Ga2O3 SP-SBPD, the GeO2/SiO2/β-Ga2O3 SP-SBPD achieves a 129-fold reduction in the dark current and a 3.3-fold enhancement in photon-to-dark-current ratio without applied bias. Moreover, the GeO2/SiO2/β-Ga2O3 device also exhibits a larger detectivity of 3.11 × 1012 Jones and faster rise/fall times of 109/75 ms, which enables self-powered solar-blind UV imaging with a quality factor of 9.8 and a bit error rate of 2.81 × 10−2. Our experimental results demonstrate the potential of the GeO2/SiO2/β-Ga2O3 SP-SBPDs for solar-blind UV imaging, optical communication, and information encryption applications.

Applied Physics LettersVol. 129(13)
Ningbo University (CN), Beijing University of Posts and Telecommunications (CN), Xi’an Jiaotong-Liverpool University (CN)
Affordable and clean energy
Openalex Percentile: Top 30%
Ga2O3 and related materials
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