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为何选择合适的伙伴很重要:三元CsGUAFAPbI钙钛矿的稳定性

Why choosing the right partner is important: stabilization of ternary CsGUAFAPbI perovskites.

作者信息

Boziki Ariadni, Mladenović Marko, Grätzel Michael, Rothlisberger Ursula

机构信息

Laboratory of Computational Chemistry and Biochemistry, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

Laboratory of Photonics and Interfaces, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

出版信息

Phys Chem Chem Phys. 2020 Sep 23;22(36):20880-20890. doi: 10.1039/d0cp03882b.

Abstract

Lead halide perovskites with mixtures of monovalent cations have attracted wide attention due to the possibility of preferentially stabilizing the perovskite phase with respect to photovoltaically less suitable competing phases. Here, we present a theoretical analysis and interpretation of the phase stability of binary (CH6N3)xHC(NH2)2PbI3 = GUAxFA(1-x)PbI3 and ternary CsyGUAxFA(1-y-x)PbI3 mixtures. We first estimate if such mixtures are stable and if they lead to a stabilization of the perovskite phase based on static Density Functional Theory (DFT) calculations. In order to investigate the finite temperature stability of the phases, we also employ first-principles molecular dynamics (MD) simulations. It turns out that in contrast to the FA+-rich case of FA/Cs mixtures, although mixing of FA/GUA is possible, it is not sufficient to stabilize the perovskite phase at room temperature. In contrast, stable ternary mixtures that contain 17% of Cs+ can be formed that lead to a preferential stabilization of the perovskite phase. In such a way, the enthalpic destabilization due to the introduction of a too large/too small cation that lies outside the Goldschmidt tolerance range can be (partially) compensated through the introduction of a third cation with complementary size. This allows to suggest a new design principle for the preparation of stable perovskite structures at room temperature with cations that lie outside the Goldschmidt range through mixtures with size-complementary cations in such a way that the effective average cation radius of the mixture lies within the stability range.

摘要

具有单价阳离子混合物的卤化铅钙钛矿由于相对于光伏性能较差的竞争相优先稳定钙钛矿相的可能性而备受关注。在此,我们对二元(CH6N3)xHC(NH2)2PbI3 = GUAxFA(1-x)PbI3和三元CsyGUAxFA(1-y-x)PbI3混合物的相稳定性进行了理论分析和解释。我们首先基于静态密度泛函理论(DFT)计算来估计此类混合物是否稳定以及它们是否会导致钙钛矿相的稳定。为了研究相的有限温度稳定性,我们还采用了第一性原理分子动力学(MD)模拟。结果表明,与富含FA+的FA/Cs混合物情况不同,尽管FA/GUA可以混合,但在室温下它不足以稳定钙钛矿相。相反,可以形成含有17% Cs+的稳定三元混合物,这会导致钙钛矿相的优先稳定。通过这种方式,由于引入了超出戈尔德施密特容忍范围的过大/过小阳离子而导致的焓失稳可以通过引入具有互补尺寸的第三种阳离子来(部分)补偿。这使得我们能够提出一种新的设计原则,用于在室温下制备具有位于戈尔德施密特范围之外的阳离子的稳定钙钛矿结构,通过与尺寸互补的阳离子混合,使得混合物的有效平均阳离子半径处于稳定范围内。

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