光探测
异质结
光电流
材料科学
光电子学
制作
光电探测器
化学气相沉积
可扩展性
光电导性
纳米技术
缩放比例
接口(物质)
过程(计算)
太赫兹辐射
光子学
沉积(地质)
溶解过程
响应时间
比探测率
薄膜
光学
光电二极管
作者
Jiaxin Guo,Xinyu Li,Xiao Zhang,Sihan Liu,Xiaoning Guan,peng-fei lu,Chengwei Gao,Ying Xie,Changgui Lin,Xiang Shen,Haohai Yu Haohai Yu,Huaijin Zhang
出处
期刊:Optics Express
[Optica Publishing Group]
日期:2026-01-14
卷期号:34 (3): 3957-3957
摘要
Two-dimensional heterojunctions hold great promise for optoelectronic applications since the unique band structures and interfacial properties. However, conventional fabrication techniques suffer from problems like interface contamination, difficulties in scaling production, and poor process control, leading to degraded and unstable device performance. In this work, we develop a one-step in-situ chemical vapor deposition strategy for the controlled synthesis of high-quality SnS/SnS 2 heterostructures. This approach leverages the inherent process control to achieve clean interfaces and scalable production. The designed Au-SnS/SnS 2 -Au sandwich heterostructure photodetector, comprising bulk SnS and ultrathin SnS 2 , exhibits a dominant space-charge-limited current mechanism. With bidirectional bias applied, the photocurrent shows a superlinear increase, which is attributed to efficient carrier management behavior. Consequently, this device achieves superior photoresponse: the photoresponsivity of 119.1 mA/W, the detectivity of 5.73 × 10 11 Jones, and fast response speed of 16.8 ms. The study not only provides a facile pathway for synthesizing high-quality 2D heterojunctions, but also demonstrates their significant potential for high-performance optoelectronics through the effective interplay material synthesis and device physics.
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