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有机阳离子偶极子的大小和方向对混合卤化物钙钛矿电子结构的影响。

The effect of the magnitude and direction of the dipoles of organic cations on the electronic structure of hybrid halide perovskites.

作者信息

Maheshwari Sudeep, Patwardhan Sameer, Schatz George C, Renaud Nicolas, Grozema Ferdinand C

机构信息

Department of Chemical Engineering, Delft University of Technology, P.O. Box 5045, 2629 HZ Delft, The Netherlands.

Argonne-Northwestern Solar Energy Research (ANSER) Center and Department of Chemistry, Northwestern University, Evanston, Illinois 60208-3113, USA.

出版信息

Phys Chem Chem Phys. 2019 Aug 14;21(30):16564-16572. doi: 10.1039/c9cp02866h. Epub 2019 Jul 17.

Abstract

We present ab initio calculations (DFT and SOC-GW) of the optoelectronic properties of different hybrid-halide perovskites, namely X-PbI (X = methylamonimum, formamidinium, guanidinium, hydrazinium, and hydroxylammonium). These calculations shed new light on how the substitution of different organic cations in the material influences its optoelectronic properties. Our simulations show a significant modification of the lattice parameter and band gap of the material upon cation substitution. These modifications are not only due to steric effects but also due to electrostatic interactions between the organic and inorganic parts of the material. In addition to this, we demonstrate how the relative orientations of neighboring cations in the material modify the local electrostatic potential of the system and its fundamental band gap. This change in the band gap is accompanied by the formation of localized and spatially separated electronic states. These localized states modify the carrier mobility in the materials and can be a reason for the formation and recombination of the charge carriers in these very promising materials.

摘要

我们展示了不同混合卤化物钙钛矿(即X-PbI,其中X = 甲铵、甲脒、胍、肼和羟铵)的光电特性的从头算计算(密度泛函理论和自旋轨道耦合GW)。这些计算为材料中不同有机阳离子的取代如何影响其光电特性提供了新的见解。我们的模拟表明,阳离子取代后材料的晶格参数和带隙发生了显著变化。这些变化不仅是由于空间效应,还由于材料有机部分和无机部分之间的静电相互作用。除此之外,我们还展示了材料中相邻阳离子的相对取向如何改变系统的局部静电势及其基本带隙。带隙的这种变化伴随着局域化和空间分离的电子态的形成。这些局域态改变了材料中的载流子迁移率,并且可能是这些非常有前景的材料中电荷载流子形成和复合的一个原因。

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