Li Ziliang, Li Ziqing, Zuo Chaolei, Fang Xiaosheng
Department of Materials Science, Fudan University, Shanghai, 200433, P. R. China.
Adv Mater. 2022 Jul;34(28):e2109083. doi: 10.1002/adma.202109083. Epub 2022 May 12.
As a wide-bandgap semiconductor material, titanium dioxide (TiO ), which possesses three crystal polymorphs (i.e., rutile, anatase, and brookite), has gained tremendous attention as a cutting-edge material for application in the environment and energy fields. Based on the strong attractiveness from its advantages such as high stability, excellent photoelectric properties, and low-cost fabrication, the construction of high-performance photodetectors (PDs) based on TiO nanostructures is being extensively developed. An elaborate microtopography and device configuration is the most widely used strategy to achieve efficient TiO -based PDs with high photoelectric performances; however, a deep understanding of all the key parameters that influence the behavior of photon-generated carriers, is also highly required to achieve improved photoelectric performances, as well as their ultimate functional applications. Herein, an in-depth illustration of the electrical and optical properties of TiO nanostructures in addition to the advances in the technological issues such as preparation, microdefects, p-type doping, bandgap engineering, heterojunctions, and functional applications are presented. Finally, a future outlook for TiO -based PDs, particularly that of further functional applications is provided. This work will systematically illustrate the fundamentals of TiO and shed light on the preparation of more efficient TiO nanostructures and heterojunctions for future photoelectric applications.
作为一种宽带隙半导体材料,二氧化钛(TiO₂)具有三种晶体多晶型(即金红石型、锐钛矿型和板钛矿型),作为一种应用于环境和能源领域的前沿材料,已受到广泛关注。基于其高稳定性、优异的光电性能和低成本制备等优势的强大吸引力,基于TiO₂纳米结构的高性能光电探测器(PDs)的构建正在广泛开展。精心设计的微观形貌和器件结构是实现具有高光电性能的高效TiO₂基PDs最广泛使用的策略;然而,要实现光电性能的提高及其最终的功能应用,还非常需要深入了解所有影响光生载流子行为的关键参数。在此,除了在诸如制备、微观缺陷、p型掺杂、带隙工程、异质结和功能应用等技术问题方面的进展外,还对TiO₂纳米结构的电学和光学性质进行了深入阐述。最后,给出了基于TiO₂的PDs的未来展望,特别是进一步功能应用的展望。这项工作将系统地阐述TiO₂的基本原理,并为未来光电应用制备更高效的TiO₂纳米结构和异质结提供启示。