Zhou Dahua, Yu Leyong, Zhu Peng, Zhao Hongquan, Feng Shuanglong, Shen Jun
Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, China.
Nanomaterials (Basel). 2021 Mar 5;11(3):641. doi: 10.3390/nano11030641.
Due to their outstanding optical properties and superior charge carrier mobilities, organometal halide perovskites have been widely investigated in photodetection and solar cell areas. In perovskites photodetection devices, their high optical absorption and excellent quantum efficiency contribute to the responsivity, even the specific detectivity. In this work, we developed a lateral phototransistor based on mesoscopic graphene/perovskite heterojunctions. Graphene nanowall shows a porous structure, and the spaces between graphene nanowall are much appropriated for perovskite crystalline to mount in. Hot carriers are excited in perovskite, which is followed by the holes' transfer to the graphene layer through the interfacial efficiently. Therefore, graphene plays the role of holes' collecting material and carriers' transporting channel. This charge transfer process is also verified by the luminescence spectra. We used the hybrid film to build phototransistor, which performed a high responsivity and specific detectivity of 2.0 × 10 A/W and 7.2 × 10 Jones, respectively. To understand the photoconductive mechanism, the perovskite's passivation and the graphene photogating effect are proposed to contribute to the device's performance. This study provides new routes for the application of perovskite film in photodetection.
由于其出色的光学性能和卓越的载流子迁移率,有机金属卤化物钙钛矿在光电探测和太阳能电池领域得到了广泛研究。在钙钛矿光电探测器件中,其高光学吸收率和优异的量子效率有助于提高响应度,甚至是比探测率。在这项工作中,我们开发了一种基于介观石墨烯/钙钛矿异质结的横向光电晶体管。石墨烯纳米壁呈现出多孔结构,石墨烯纳米壁之间的空间非常适合钙钛矿晶体镶嵌其中。热载流子在钙钛矿中被激发,随后空穴通过界面有效地转移到石墨烯层。因此,石墨烯起到了空穴收集材料和载流子传输通道的作用。这种电荷转移过程也通过发光光谱得到了验证。我们使用该混合薄膜构建光电晶体管,其分别表现出2.0×10 A/W的高响应度和7.2×10琼斯的比探测率。为了理解光电导机制,提出钙钛矿的钝化和石墨烯光门效应有助于器件性能的提升。这项研究为钙钛矿薄膜在光电探测中的应用提供了新途径。