Li Jian-Cai, Wei Zeng-Xi, Huang Wei-Qing, Ma Li-Li, Hu Wangyu, Peng Ping, Huang Gui-Fang
Department of Applied Physics, School of Physics and Electronics, Hunan University, Changsha, 410082, China.
School of Materials Science and Engineering, Hunan University, Changsha, 410082, China.
Chemphyschem. 2018 Feb 5;19(3):291-299. doi: 10.1002/cphc.201701108. Epub 2017 Dec 28.
A high light-absorption coefficient and long-range hot-carrier transport of hybrid organic-inorganic perovskites give huge potential to their composites in solar energy conversion and environmental protection. Understanding interfacial interactions and their effects are paramount for designing perovskite-based heterostructures with desirable properties. Herein, we systematically investigated the interfacial interactions in monolayer and few-layer SnS/CH NH PbI heterostructures and their effects on the electronic and optical properties of these structures by density functional theory. It was found that the interfacial interactions in SnS/CH NH PbI heterostructures were van der Waals (vdW) interactions, and they were found to be insensitive to the layer number of 2D SnS sheets. Interestingly, although their band gap decreased upon increasing the layer number of SnS, the near-gap electronic states and optical absorption spectra of these heterostructures were found to be strikingly similar. This feature was determined to be critical for the design of 2D layered SnS-based heterostructures. Strong absorption in the ultraviolet and visible-light regions, type II staggered band alignment at the interface, and few-layer SnS as an active co-catalyst make 2D SnS/CH NH PbI heterostructures promising candidates for photocatalysis, photodetectors, and solar energy harvesting and conversion. These results provide first insight into the nature of interfacial interactions and are useful for designing hybrid organic-inorganic perovskite-based devices with novel properties.
有机-无机杂化钙钛矿的高光吸收系数和长程热载流子传输特性使其复合材料在太阳能转换和环境保护方面具有巨大潜力。理解界面相互作用及其影响对于设计具有理想性能的钙钛矿基异质结构至关重要。在此,我们通过密度泛函理论系统研究了单层和少层SnS/CH₃NH₃PbI异质结构中的界面相互作用及其对这些结构电子和光学性质的影响。研究发现,SnS/CH₃NH₃PbI异质结构中的界面相互作用为范德华(vdW)相互作用,且发现其对二维SnS片层的层数不敏感。有趣的是,尽管随着SnS层数的增加其带隙减小,但这些异质结构的近带隙电子态和光吸收光谱却惊人地相似。这一特性被确定对二维层状SnS基异质结构的设计至关重要。在紫外和可见光区域的强吸收、界面处的II型交错能带排列以及少层SnS作为活性助催化剂,使得二维SnS/CH₃NH₃PbI异质结构成为光催化、光探测器以及太阳能收集与转换的有前景候选材料。这些结果首次深入了解了界面相互作用的本质,有助于设计具有新颖性能的有机-无机杂化钙钛矿基器件。