极化子
化学
甲脒
载流子
钙钛矿(结构)
卤化物
皮秒
红外光谱学
光谱学
红外线的
化学物理
异质结
凝聚态物理
电子
结晶学
无机化学
光学
物理
量子力学
激光器
有机化学
作者
Daniel Sandner,Kun Sun,Anna Stadlbauer,Markus W. Heindl,Qi Ying Tan,Matthias Nuber,Cesare Soci,Reinhard Kienberger,Peter Müller‐Buschbaum,Felix Deschler,Hristo Iglev
摘要
Scattering and localization dynamics of charge carriers in the soft lattice of lead-halide perovskites impact polaron formation and recombination, which are key mechanisms of material function in optoelectronic devices. In this study, we probe the photoinduced lattice and carrier dynamics in perovskite thin films (CsFAPbX3, X = I, Br) using time-resolved infrared spectroscopy. We examine the CN stretching mode of formamidinium (FA) cations located within the lead-halide octahedra of the perovskite structure. Our investigation reveals the formation of an infrared mode due to spatial symmetry breaking within a hundred picoseconds in 3D perovskites. Experiments at cryogenic temperatures show much-reduced carrier localization, in agreement with a localization mechanism that is driven by the dynamic disorder. We extend our analysis to 2D perovskites, where the precise nature of charge carriers is uncertain. Remarkably, the signatures of charge localization we found in bulk perovskites are not observed for 2D Ruddlesden-Popper perovskites ((HexA)2FAPb2I7). This observation implies that the previously reported stabilization of free charge carriers in these materials follows different mechanisms than polaron formation in bulk perovskites. Through the exploration of heterostructures with electron/hole excess, we provide evidence that holes drive the formation of the emerging infrared mode.
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