Abdi-Jalebi Mojtaba, Pazoki Meysam, Philippe Bertrand, Dar M Ibrahim, Alsari Mejd, Sadhanala Aditya, Divitini Giorgio, Imani Roghayeh, Lilliu Samuele, Kullgren Jolla, Rensmo Håkan, Grätzel Michael, Friend Richard H
Cavendish Laboratory, Department of Physics , University of Cambridge , JJ Thomson Avenue , Cambridge CB3 0HE , United Kingdom.
Department of Engineering Sciences, Solid State Physics , Uppsala University , Box 534, SE 751 21 Uppsala , Sweden.
ACS Nano. 2018 Jul 24;12(7):7301-7311. doi: 10.1021/acsnano.8b03586. Epub 2018 Jul 6.
We report significant improvements in the optoelectronic properties of lead halide perovskites with the addition of monovalent ions with ionic radii close to Pb. We investigate the chemical distribution and electronic structure of solution processed CHNHPbI perovskite structures containing Na, Cu, and Ag, which are lower valence metal ions than Pb but have similar ionic radii. Synchrotron X-ray diffraction reveals a pronounced shift in the main perovskite peaks for the monovalent cation-based films, suggesting incorporation of these cations into the perovskite lattice as well as a preferential crystal growth in Ag containing perovskite structures. Furthermore, the synchrotron X-ray photoelectron measurements show a significant change in the valence band position for Cu- and Ag-doped films, although the perovskite bandgap remains the same, indicating a shift in the Fermi level position toward the middle of the bandgap. Such a shift infers that incorporation of these monovalent cations dedope the n-type perovskite films when formed without added cations. This dedoping effect leads to cleaner bandgaps as reflected by the lower energetic disorder in the monovalent cation-doped perovskite thin films as compared to pristine films. We also find that in contrast to Ag and Cu, Na locates mainly at the grain boundaries and surfaces. Our theoretical calculations confirm the observed shifts in X-ray diffraction peaks and Fermi level as well as absence of intrabandgap states upon energetically favorable doping of perovskite lattice by the monovalent cations. We also model a significant change in the local structure, chemical bonding of metal-halide, and the electronic structure in the doped perovskites. In summary, our work highlights the local chemistry and influence of monovalent cation dopants on crystallization and the electronic structure in the doped perovskite thin films.
我们报道了通过添加离子半径与铅相近的单价离子,卤化铅钙钛矿的光电性能有显著改善。我们研究了溶液法制备的含钠、铜和银的CHNHPbI钙钛矿结构的化学分布和电子结构,这些单价金属离子的价态低于铅,但离子半径相近。同步加速器X射线衍射显示,基于单价阳离子的薄膜中,钙钛矿的主要峰有明显位移,这表明这些阳离子已掺入钙钛矿晶格,同时含银钙钛矿结构中存在优先的晶体生长。此外,同步加速器X射线光电子能谱测量表明,掺杂铜和银的薄膜的价带位置有显著变化,尽管钙钛矿带隙保持不变,这表明费米能级位置向带隙中部移动。这种移动表明,在不添加阳离子的情况下形成的n型钙钛矿薄膜,掺入这些单价阳离子后会发生去掺杂。与原始薄膜相比,这种去掺杂效应导致单价阳离子掺杂的钙钛矿薄膜中的能量无序性降低,从而使带隙更纯净。我们还发现,与银和铜不同,钠主要位于晶界和表面。我们的理论计算证实了X射线衍射峰和费米能级的观测位移,以及单价阳离子对钙钛矿晶格进行能量有利掺杂时带隙内状态的缺失。我们还模拟了掺杂钙钛矿中局部结构、金属卤化物化学键和电子结构的显著变化。总之,我们的工作突出了单价阳离子掺杂剂的局部化学性质及其对掺杂钙钛矿薄膜结晶和电子结构的影响。