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Largea??Scale Ultrathin 2D Widea??Bandgap BiOBr Nanoflakes for Gatea??Controlled Deepa??Ultraviolet Phototransistors

DOI:10.1002/adma.201908242 期刊:Advanced Materials 出版年份:2020 更新时间:2025-09-23 15:19:57
摘要: Ternary two-dimensional (2D) semiconductors with controllable wide bandgap, high ultraviolet (UV) absorption coefficient, and critical tuning freedom degree of stoichiometry variation have a great application prospect for UV detection. However, as-reported ternary 2D semiconductors often possess a bandgap below 3.0 eV, which must be further enlarged to achieve comprehensively improved UV, especially deep-UV (DUV), detection capacity. Herein, sub-one-unit-cell 2D monolayer BiOBr nanoflakes (≈0.57 nm) with a large size of 70 μm are synthesized for high-performance DUV detection due to the large bandgap of 3.69 eV. Phototransistors based on the 2D ultrathin BiOBr nanoflakes deliver remarkable DUV detection performance including ultrahigh photoresponsivity (Rλ, 12739.13 A W?1), ultrahigh external quantum efficiency (EQE, 6.46 × 106%), and excellent detectivity (D*, 8.37 × 1012 Jones) at 245 nm with a gate voltage (Vg) of 35 V attributed to the photogating effects. The ultrafast response (τrise = 102 μs) can be achieved by utilizing photoconduction effects at Vg of ?40 V. The combination of photocurrent generation mechanisms for BiOBr-based phototransistors controlled by Vg can pave a way for designing novel 2D optoelectronic materials to achieve optimal device performance.
作者: Chuanhui Gong,Junwei Chu,Shifeng Qian,Chujun Yin,Xiaozong Hu,Hongbo Wang,Yang Wang,Xiang Ding,Shangchi Jiang,Alei Li,Youpin Gong,Xianfu Wang,Chaobo Li,Tianyou Zhai,Jie Xiong
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To explore ternary two-dimensional (2D) semiconductors with controllable wide bandgap for high-performance deep-ultraviolet (DUV) detection.

High-quality monolayer 2D BiOBr nanoflakes with a thickness of 0.57 nm and a size of 70 μm were successfully synthesized, demonstrating a large bandgap of 3.69 eV suitable for DUV detection. The phototransistors based on these nanoflakes exhibited exceptional performance metrics, including ultrahigh photoresponsivity and external quantum efficiency, and fast response times, indicating their potential for advanced optoelectronic applications.

The study focuses on the synthesis and characterization of BiOBr nanoflakes and their application in phototransistors. The scalability of the synthesis method and the integration of these materials into practical devices are areas for future research.

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