双功能
钙钛矿(结构)
材料科学
电子结构
密度泛函理论
激子
结合能
化学物理
电子效应
卤化物
结晶学
计算化学
凝聚态物理
无机化学
化学
立体化学
物理
位阻效应
原子物理学
有机化学
催化作用
作者
Xinjue Zhong,Xiaojuan Ni,Alan Kaplan,Xiaoming Zhao,Marko K. Ivancevic,Melissa L. Ball,Zhaojian Xu,Hong Li,Barry P. Rand,Yueh‐Lin Loo,Jean‐Luc Brédas,Antoine Kahn
标识
DOI:10.1002/aenm.202304345
摘要
Abstract 2D Ruddlesden–Popper metal‐halide perovskites exhibit structural diversity due to a variety of choices of organic ligands. Incorporating bifunctional ligands in such materials is particularly intriguing since it can result in novel electronic properties and functions. However, an in‐depth understanding of the effects of bifunctional ligands on perovskite structures and, consequently, their electronic and excitonic properties, is still lacking. Here, n = 1 2D perovskites built with organic ligands containing ─CN, ─OH, ─COOH, ─phenyl (Ph), and ─CH 3 functional groups are investigated using ultraviolet and inverse photoemission spectroscopies, density functional theory calculations, and tight‐binding model analyses. The experimentally determined electronic gaps of the ─CN, ─COOH, ─Ph, and ─CH 3 based perovskites exhibit a strong correlation with the in‐plane Pb─I─Pb bond angle, while the ─OH based perovskite deviates from the linear trend. Based on the band structure calculations, this anomaly is attributed to the out‐of‐plane dispersion, caused predominantly by significant interlayer electronic coupling that is present in ─OH based perovskites. These results highlight the complex and diverse impacts of organic ligands on electronic properties, especially in terms of the involvement of strong interlayer electronic coupling. The impact of the bifunctional ligands on the evolution of the exciton binding energy is also addressed.
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