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基于碘化铅的Ruddlesden-Popper二维钙钛矿中的奇偶效应。

Odd-even effects in lead-iodide-based Ruddlesden-Popper 2D perovskites.

作者信息

Choghaei Maryam, Schiffer Maximilian, Tyagi Viren, Righetto Marcello, Du Jiaxing, Buchmüller Maximilian, Brinkmann Kai Oliver, Brocks Geert, Görrn Patrick, Herz Laura M, Tao Shuxia, Riedl Thomas, Olthof Selina

机构信息

Department of Chemistry, University of Cologne Greinstrasse 4-6 50939 Cologne Germany

Institute of Electronic Devices, University of Wuppertal Rainer-Gruenter-Str. 21 42119 Wuppertal Germany.

出版信息

J Mater Chem A Mater. 2025 May 19. doi: 10.1039/d5ta01234a.

Abstract

Two-dimensional (2D) halide perovskites are a versatile material class, exhibiting a layered crystal structure, consisting of inorganic metal-halide sheets separated by organic spacer cations. Unlike their 3D counterparts, 2D perovskites have less strict geometric requirements, allowing for a wider range of molecules to be incorporated. This potentially offers a way to engineer the properties of a 2D perovskite through adequate selection of the organic spacer cations. Our study systematically analyzes the effect of spacer cation length on the electronic and optical properties of Ruddlesden-Popper lead-iodide-based 2D perovskites, using alkylammonium cations of varying chain lengths. Intriguingly, no linear correlation between interlayer distance and the optical gap or valence band position is observed in our measurements. Rather it matters whether the spacer cation contains an odd or even number of carbon atoms in the chain. Notably, these odd-even effects manifest in variations of ionization energy, optical gap as well as charge carrier mobility. Density functional theory calculations reproduce the changes in optical properties, allowing us to identify the underlying mechanism: while even-numbered carbon chains pack efficiently within the organic spacer layer, the shorter odd-numbered chains increase distortions. These distortions lead to variations in the Pb-I-Pb bond angle within the inorganic sheets, resulting in the observed odd-even effect in the (opto-)electronic properties. This understanding will be helpful to make more informed choices regarding the incorporated spacer molecules which can potentially help to enhance performance when integrating such 2D perovskite interlayers into devices.

摘要

二维(2D)卤化物钙钛矿是一类用途广泛的材料,具有层状晶体结构,由被有机间隔阳离子分隔的无机金属卤化物层组成。与三维卤化物钙钛矿不同,二维钙钛矿对几何结构的要求没那么严格,能够容纳范围更广的分子。这可能为通过适当选择有机间隔阳离子来调控二维钙钛矿的性质提供了一种方法。我们的研究使用不同链长的烷基铵阳离子,系统地分析了间隔阳离子长度对基于Ruddlesden-Popper碘化铅的二维钙钛矿的电子和光学性质的影响。有趣的是,在我们的测量中未观察到层间距与光学带隙或价带位置之间存在线性相关性。相反,间隔阳离子链中碳原子的奇偶性才是关键。值得注意的是,这些奇偶效应体现在电离能、光学带隙以及电荷载流子迁移率的变化上。密度泛函理论计算再现了光学性质的变化,使我们能够确定其潜在机制:偶数碳链在有机间隔层内有效堆积,而较短的奇数碳链会增加结构畸变。这些畸变导致无机层内Pb-I-Pb键角发生变化,从而在(光)电子性质中产生观察到的奇偶效应。这种认识将有助于在选择掺入的间隔分子时做出更明智的选择,这在将此类二维钙钛矿中间层集成到器件中时可能有助于提高性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6d3/12100466/01a4dafc1e0b/d5ta01234a-f1.jpg

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