光探测
超短脉冲
响应度
石墨烯
光电探测器
材料科学
光电子学
纳米技术
红外线的
光学
激光器
物理
作者
Meng‐Yu Tsai,Tsung‐Han Tsai,Ashish Chhaganlal Gandhi,Hsueh-Lung Lu,Jiaxin Li,Po‐Liang Chen,Kai-Wen Chen,Sun‐Zen Chen,Chia‐Hao Chen,Chang‐Hua Liu,Yen‐Fu Lin,Po‐Wen Chiu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-12-14
卷期号:17 (24): 25037-25044
被引量:13
标识
DOI:10.1021/acsnano.3c07665
摘要
Graphene possesses an exotic band structure that spans a wide range of important technological wavelength regimes for photodetection, all within a single material. Conventional methods aimed at enhancing detection efficiency often suffer from an extended response time when the light is switched off. The task of achieving ultrafast broad-band photodetection with a high gain remains challenging. Here, we propose a devised architecture that combines graphene with a photosensitizer composed of an alternating strip superstructure of WS2-WSe2. Upon illumination, n+-WS2 and p+-WSe2 strips create alternating electron- and hole-conduction channels in graphene, effectively overcoming the tradeoff between the responsivity and switch time. This configuration allows for achieving a responsivity of 1.7 × 107 mA/W, with an extrinsic response time of 3-4 μs. The inclusion of the superstructure booster enables photodetection across a wide range from the near-ultraviolet to mid-infrared regime and offers a distinctive photogating route for high responsivity and fast temporal response in the pursuit of broad-band detection.
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