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不同的振动运动促进了共面苝二酰亚胺二聚体中不同的激发态衰变途径。

Distinct vibrational motions promote disparate excited-state decay pathways in cofacial perylenediimide dimers.

作者信息

O'Connor James P, Schultz Jonathan D, Tcyrulnikov Nikolai A, Kim Taeyeon, Young Ryan M, Wasielewski Michael R

机构信息

Department of Chemistry and Paula M. Trienens Institute for Sustainability and Energy, Northwestern University, Evanston, Illinois 60208-3113, USA.

出版信息

J Chem Phys. 2024 Aug 21;161(7). doi: 10.1063/5.0218752.

Abstract

A complex interplay of structural, electronic, and vibrational degrees of freedom underpins the fate of molecular excited states. Organic assemblies exhibit a myriad of excited-state decay processes, such as symmetry-breaking charge separation (SB-CS), excimer (EX) formation, singlet fission, and energy transfer. Recent studies of cofacial and slip-stacked perylene-3,4:9,10-bis(dicarboximide) (PDI) multimers demonstrate that slight variations in core substituents and H- or J-type aggregation can determine whether the system follows an SB-CS pathway or an EX one. However, questions regarding the relative importance of structural properties and molecular vibrations in driving the excited-state dynamics remain. Here, we use a combination of two-dimensional electronic spectroscopy, femtosecond stimulated Raman spectroscopy, and quantum chemistry computations to compare the photophysics of two PDI dimers. The dimer with 1,7-bis(pyrrolidin-1'-yl) substituents (5PDI2) undergoes ultrafast SB-CS from a photoexcited mixed state, while the dimer with bis-1,7-(3',5'-di-t-butylphenoxy) substituents (PPDI2) rapidly forms an EX state. Examination of their quantum beating features reveals that SB-CS in 5PDI2 is driven by the collective vibronic coupling of two or more excited-state vibrations. In contrast, we observe signatures of low-frequency vibrational coherence transfer during EX formation by PPDI2, which aligns with several previous studies. We conclude that key electronic and structural differences between 5PDI2 and PPDI2 determine their markedly different photophysics.

摘要

结构、电子和振动自由度之间复杂的相互作用决定了分子激发态的命运。有机组装体表现出无数种激发态衰变过程,如对称破缺电荷分离(SB-CS)、激基缔合物(EX)形成、单线态裂变和能量转移。最近关于共面和滑移堆积的苝-3,4:9,10-双(二甲酰亚胺)(PDI)多聚体的研究表明,核心取代基以及H型或J型聚集的微小变化可以决定该体系是遵循SB-CS途径还是EX途径。然而,关于结构性质和分子振动在驱动激发态动力学中的相对重要性的问题仍然存在。在这里,我们结合二维电子光谱、飞秒受激拉曼光谱和量子化学计算来比较两种PDI二聚体的光物理性质。带有1,7-双(吡咯烷-1'-基)取代基的二聚体(5PDI2)从光激发混合态经历超快SB-CS,而带有双-1,7-(3',5'-二叔丁基苯氧基)取代基的二聚体(PPDI2)迅速形成EX态。对它们量子拍频特征的研究表明,5PDI2中的SB-CS是由两个或更多激发态振动的集体振动电子耦合驱动的。相比之下,我们观察到PPDI2在形成EX过程中有低频振动相干转移的特征,这与之前的几项研究一致。我们得出结论,5PDI2和PPDI2之间关键的电子和结构差异决定了它们明显不同的光物理性质。

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