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溶剂对直接连接的锌酞菁-苝二酰亚胺二元体系光诱导电荷分离动力学的影响:基于最优调谐屏蔽范围分离杂化泛函的非绝热动力学模拟

Solvent effects on the photoinduced charge separation dynamics of directly linked zinc phthalocyanine-perylenediimide dyads: a nonadiabatic dynamics simulation with an optimally tuned screened range-separated hybrid functional.

作者信息

Liu Shuai, Liu Sha-Sha, Tang Xiao-Mei, Liu Xiang-Yang, Yang Jia-Jia, Cui Ganglong, Li Laicai

机构信息

College of Chemistry and Material Science, Sichuan Normal University, Chengdu 610068, China.

Key Laboratory of Theoretical and Computational Photochemistry, Ministry of Education, College of Chemistry, Beijing Normal University, Beijing 100875, China.

出版信息

Phys Chem Chem Phys. 2023 Oct 25;25(41):28452-28464. doi: 10.1039/d3cp03517d.

Abstract

Herein, we have employed a combination of the optimally tuned screened range-separated hybrid (OT-SRSH) functional, the polarizable continuum model (PCM), and nonadiabatic dynamics (NAMD) simulations to investigate the photoinduced dynamics of directly linked donor-acceptor dyads formed using zinc phthalocyanine (ZnPc) and perylenediimide (PDI), in which ZnPc is the donor while PDI is the acceptor. Our simulations aim to analyze the behavior of these dyads upon local excitation of the ZnPc moiety in the gas phase and in benzonitrile. Our findings indicate that the presence of a solvent can significantly influence the excited state dynamics of ZnPc-PDI dyads. Specifically, the polar solvent benzonitrile effectively lowers the vertical excitation energies of the charge transfer (CT) state from ZnPc to PDI. As a result, the energetic order of the locally excited (LE) states of ZnPc and the CT states is reversed compared to the gas phase. Consequently, the photoinduced electron transfer (PET) dynamics from ZnPc to PDI, which is absent in the gas phase, takes place in benzonitrile with a time constant of 10.4 ps. Importantly, our present work not only qualitatively agrees with experimental results but also provides in-depth insights into the underlying mechanisms responsible for the photoinduced dynamics of ZnPc-PDI. Moreover, this study emphasizes the importance of appropriately considering solvent effects in NAMD simulation of organic donor-acceptor systems, taking into account the distinct excited state dynamics observed in the gas phase and benzonitrile. Furthermore, the combination of the OT-SRSH functional, the PCM solvent model, and nonadiabatic dynamics simulations shows promise as a strategy for investigating the complex excited state dynamics of organic donor-acceptor systems in solvents. These findings will be valuable for the future design of novel organic donor-acceptor structures with improved performance.

摘要

在此,我们采用了优化调整的筛选范围分离杂化(OT-SRSH)泛函、极化连续介质模型(PCM)和非绝热动力学(NAMD)模拟相结合的方法,来研究使用锌酞菁(ZnPc)和苝二酰亚胺(PDI)形成的直接连接的供体-受体二元体系的光诱导动力学,其中ZnPc为供体,PDI为受体。我们的模拟旨在分析这些二元体系在气相和苯甲腈中对ZnPc部分进行局部激发时的行为。我们的研究结果表明,溶剂的存在会显著影响ZnPc-PDI二元体系的激发态动力学。具体而言,极性溶剂苯甲腈有效地降低了从ZnPc到PDI的电荷转移(CT)态的垂直激发能。结果,与气相相比,ZnPc的局域激发(LE)态和CT态的能量顺序发生了反转。因此,在气相中不存在的从ZnPc到PDI的光诱导电子转移(PET)动力学在苯甲腈中发生,时间常数为10.4皮秒。重要的是,我们目前的工作不仅在定性上与实验结果一致,而且还对ZnPc-PDI光诱导动力学的潜在机制提供了深入的见解。此外,本研究强调了在有机供体-受体体系的NAMD模拟中适当考虑溶剂效应的重要性,同时考虑到在气相和苯甲腈中观察到的不同激发态动力学。此外,OT-SRSH泛函、PCM溶剂模型和非绝热动力学模拟的结合显示出作为研究溶剂中有机供体-受体体系复杂激发态动力学的一种策略的前景。这些发现对于未来设计具有改进性能的新型有机供体-受体结构将是有价值的。

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