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空间位阻和取代基数量对用于钙钛矿太阳能电池的 Y 形空穴传输材料的转移和界面性能的影响。

Effect of steric hindrance and number of substituents on the transfer and interface properties of Y-shaped hole-transporting materials for perovskite solar cells.

作者信息

Zhang Zemin, Tang Zetian, Wang Keliang, Wang Ping, Yang Jianfa

机构信息

School of Chemistry and Materials Engineering, Liupanshui Normal University, Liupanshui, 553004, China.

Key Laboratory of Luminescence and Real-Time Analytical Chemistry (Southwest University), Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China.

出版信息

Phys Chem Chem Phys. 2023 Sep 27;25(37):25850-25861. doi: 10.1039/d3cp03322h.

Abstract

Alkyl sulfoxide groups were introduced into the branch chain terminals of a hole-transporting material (HTM) Z34 with different numbers and positions to design four new Y-shaped HTMs: ZT1, ZT2, ZT3 and ZT4. The effects of steric hindrance and number of substituents on the transfer and interface properties of the Y-shaped HTMs were investigated theoretically. Calculations reveal that the introduction of alkyl sulfoxide increases the distribution of intramolecular holes and orbital overlap between the HOMOs of the dimers. The electronic coupling was greatly improved owing to the increased distribution of holes and orbital overlap. ZT1 shows small steric hindrance when one alkyl sulfoxide is introduced into the top branch chain, which leads to translation π-π stacking. ZT2 and ZT4 show slightly greater steric hindrance when two or four alkyl sulfoxide groups are introduced into the side branch chains, which leads to face-to-face stacking. While ZT3 shows large steric hindrance when three alkyl sulfoxide groups are introduced into the top and side branch chains, which causes head-to-head stacking. With the increase in number of alkyl sulfoxide groups, the steric hindrance of the molecule increases and the hole mobility decreases. ZT1 achieves the highest hole mobility (2.63 × 10 m V s) that is two orders of magnitude higher than that of Z34 (1.36 × 10 m V s) owing to the optimal balance between the number of alkyl sulfoxide groups and steric hindrance. The HTM/CHNHPbI adsorbed system was also simulated to characterize the interface properties. Enhanced interface interaction was achieved in the HTM/perovskite systems of ZT2 and ZT3. The orbital distribution of the HTM/perovskite cluster indicates that the new HTMs can promote hole migration and prevent internal electron-hole recombination. The present work not only evaluates the reliable relationship between the structure and properties of new HTMs, but also provides a valuable design strategy for efficient Y-shaped HTMs.

摘要

将烷基亚砜基团引入具有不同数量和位置的空穴传输材料(HTM)Z34的支链末端,以设计四种新型Y形HTM:ZT1、ZT2、ZT3和ZT4。从理论上研究了空间位阻和取代基数量对Y形HTM的转移和界面性质的影响。计算结果表明,烷基亚砜的引入增加了分子内空穴的分布以及二聚体最高占据分子轨道(HOMO)之间的轨道重叠。由于空穴分布和轨道重叠的增加,电子耦合得到了极大改善。当在顶部支链引入一个烷基亚砜时,ZT1表现出较小的空间位阻,这导致平移π-π堆积。当在侧支链引入两个或四个烷基亚砜基团时,ZT2和ZT4表现出稍大的空间位阻,这导致面对面堆积。而当在顶部和侧支链引入三个烷基亚砜基团时,ZT3表现出较大的空间位阻,这导致头对头堆积。随着烷基亚砜基团数量的增加,分子的空间位阻增大,空穴迁移率降低。由于烷基亚砜基团数量与空间位阻之间的最佳平衡,ZT1实现了最高的空穴迁移率(2.63×10 m V s),比Z34(1.36×10 m V s)高两个数量级。还模拟了HTM/CHNHPbI吸附体系以表征界面性质。在ZT2和ZT3的HTM/钙钛矿体系中实现了增强的界面相互作用。HTM/钙钛矿簇的轨道分布表明,新型HTM可以促进空穴迁移并防止内部电子-空穴复合。本工作不仅评估了新型HTM结构与性能之间的可靠关系,还为高效Y形HTM提供了有价值的设计策略。

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