Yang Cheng, Wang Guangcan, Liu Maomao, Yao Fei, Li Huamin
School of Physics and Electronics, Shandong Normal University, Jinan 250014, China.
Department of Electrical Engineering, University at Buffalo, The State University of New York, Buffalo, NY 14260, USA.
Nanomaterials (Basel). 2021 Oct 12;11(10):2688. doi: 10.3390/nano11102688.
Two-dimensional (2D) materials may play an important role in future photodetectors due to their natural atom-thin body thickness, unique quantum confinement, and excellent electronic and photoelectric properties. Semimetallic graphene, semiconductor black phosphorus, and transition metal dichalcogenides possess flexible and adjustable bandgaps, which correspond to a wide interaction spectrum ranging from ultraviolet to terahertz. Nevertheless, their absorbance is relatively low, and it is difficult for a single material to cover a wide spectrum. Therefore, the combination of phototransistors based on 2D hybrid structures with other material platforms, such as quantum dots, organic materials, or plasma nanostructures, exhibit ultra-sensitive and broadband optical detection capabilities that cannot be ascribed to the individual constituents of the assembly. This article provides a comprehensive and systematic review of the recent research progress of 2D material photodetectors. First, the fundamental detection mechanism and key metrics of the 2D material photodetectors are introduced. Then, the latest developments in 2D material photodetectors are reviewed based on the strategies of photocurrent enhancement. Finally, a design and implementation principle for high-performance 2D material photodetectors is provided, together with the current challenges and future outlooks.
二维(2D)材料因其天然的原子级超薄体厚度、独特的量子限制以及优异的电子和光电特性,可能在未来的光电探测器中发挥重要作用。半金属石墨烯、半导体黑磷和过渡金属二硫属化物具有灵活且可调节的带隙,这对应于从紫外到太赫兹的宽相互作用光谱范围。然而,它们的吸收率相对较低,单一材料难以覆盖宽光谱。因此,基于二维混合结构的光电晶体管与其他材料平台(如量子点、有机材料或等离子体纳米结构)的组合,展现出超灵敏和宽带光学检测能力,这无法归因于组件的各个成分。本文对二维材料光电探测器的近期研究进展进行了全面系统的综述。首先,介绍了二维材料光电探测器的基本检测机制和关键指标。然后,基于光电流增强策略对二维材料光电探测器的最新进展进行了综述。最后,给出了高性能二维材料光电探测器的设计与实现原理,以及当前面临的挑战和未来展望。