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通过C-H···π相互作用的电荷传输的纳米尺度演化

Nanoscale Evolution of Charge Transport Through C-H···π Interactions.

作者信息

Zhou Yu, Ji Shurui, Zhu Yixuan, Liu Huanhuan, Wang Juejun, Zhang Yanxi, Bai Jie, Li Xiaohui, Shi Jia, Su Wenqiu, Huang Ruiyun, Liu Junyang, Hong Wenjing

机构信息

State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM), Xiamen University, Xiamen 361005, China.

出版信息

J Am Chem Soc. 2024 Dec 11;146(49):33378-33385. doi: 10.1021/jacs.4c08975. Epub 2024 Nov 25.

Abstract

C-H···π interactions, a prevalent intermolecular force, play a pivotal role in chemistry, materials science, and life sciences. Despite extensive studies of their influence on intermolecular binding configurations and energetics, their impact on intermolecular coupling and charge transport remains unexplored. Here, we investigate the charge transport within supramolecular junctions connected by C-H···π and π-π interactions, respectively, and find that C-H···π interactions exhibit conductances that are 3.5 times those of π-π interactions. Angstrom-scale distance-dependent experiments indicate that the conductance of C-H···π supramolecular junctions experiences initial decay under stretching, followed by gradual convergence, in contrast with the periodic fluctuations in π-π stacked supramolecular junctions. Theoretical calculations show that charge transport within C-H···π interactions transitions from destructive to constructive quantum interference under stretching, with a larger range of constructive quantum interference compared with π-π stacking. This study establishes that C-H···π interactions facilitate efficient intermolecular charge transport and elucidates the evolution of quantum interference effects with assembly configuration, offering critical insights for the design of supramolecular materials and devices.

摘要

C-H···π相互作用作为一种普遍存在的分子间作用力,在化学、材料科学和生命科学中发挥着关键作用。尽管对其对分子间结合构型和能量学的影响已进行了广泛研究,但其对分子间耦合和电荷传输的影响仍未得到探索。在此,我们分别研究了通过C-H···π和π-π相互作用连接的超分子结内的电荷传输,发现C-H···π相互作用的电导率是π-π相互作用的3.5倍。埃尺度的距离依赖性实验表明,与π-π堆积超分子结中的周期性波动相反,C-H···π超分子结的电导率在拉伸时经历初始衰减,随后逐渐收敛。理论计算表明,C-H···π相互作用内的电荷传输在拉伸时从破坏性量子干涉转变为建设性量子干涉,与π-π堆积相比,建设性量子干涉的范围更大。这项研究证实了C-H···π相互作用促进了高效的分子间电荷传输,并阐明了量子干涉效应随组装构型的演变,为超分子材料和器件的设计提供了关键见解。

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