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通过氟取代实现结构稳定来增强二维钙钛矿的层间电荷传输

Enhancing Interlayer Charge Transport of Two-Dimensional Perovskites by Structural Stabilization via Fluorine Substitution.

作者信息

Stippell Elizabeth, Li Wei, Quarti Claudio, Beljonne David, Prezhdo Oleg V

机构信息

Department of Chemistry, University of Southern California, Los Angeles, California 90089, United States.

School of Chemistry and Materials Science, Hunan Agricultural University, Changsha 410128, PR China.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 8;17(1):2032-2040. doi: 10.1021/acsami.4c17876. Epub 2024 Dec 16.

Abstract

Two-dimensional lead-halide perovskites provide a more robust alternative to three-dimensional perovskites in solar energy and optoelectronic applications due to increased chemical stability afforded by interlayer ligands. At the same time, the ligands create barriers for interlayer charge transport, reducing device performance. Using a recently developed ab initio simulation methodology, we demonstrate that ligand fluorination can enhance both hole and electron mobility by 1-2 orders of magnitude. The simulations show that the enhancement arises primarily from improved structural order and reduced thermal atomic fluctuations in the system rather than increased interlayer electronic coupling. Arising from stronger hydrogen bonding and dipolar interactions, the higher structural stability decreases the reorganization energy that enters the Marcus formula and increases the charge transfer rate. The detailed atomistic insights into the electron and hole transfer in layered perovskites indicate that the use of interlayer ligands that make the overall structure more robust is beneficial simultaneously for chemical stability and charge transport, providing an important guideline for the design of new, efficient materials.

摘要

二维卤化铅钙钛矿在太阳能和光电子应用中为三维钙钛矿提供了一种更稳定的替代方案,这是由于层间配体提供了更高的化学稳定性。与此同时,这些配体为层间电荷传输制造了障碍,降低了器件性能。使用最近开发的从头算模拟方法,我们证明配体氟化可将空穴和电子迁移率提高1 - 2个数量级。模拟结果表明,这种增强主要源于系统中结构有序性的改善和热原子涨落的降低,而非层间电子耦合的增加。由于更强的氢键和偶极相互作用,更高的结构稳定性降低了进入马库斯公式的重组能,并提高了电荷转移速率。对层状钙钛矿中电子和空穴转移的详细原子层面见解表明,使用使整体结构更稳定的层间配体,对化学稳定性和电荷传输同时有益,为新型高效材料的设计提供了重要指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/470b/11783512/5146bfdafb60/am4c17876_0001.jpg

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