位阻效应
发色团
振动耦合
化学
化学物理
菁
拉曼光谱
范德瓦尔斯力
非共价相互作用
光谱学
振动光谱学
环番
偶极子
光化学
计算化学
分子
立体化学
有机化学
物理
氢键
荧光
光学
量子力学
作者
Jonathan D. Schultz,Adam F. Coleman,Aritra Mandal,Jae‐Yoon Shin,Mark A. Ratner,Ryan M. Young,Michael R. Wasielewski
标识
DOI:10.1021/acs.jpclett.9b02923
摘要
Designing molecular systems that exploit vibronic coherence to improve light harvesting efficiencies relies on understanding how interchromophoric interactions, such as van der Waals forces and dipolar coupling, influence these coherences in multichromophoric arrays. However, disentangling these interactions requires studies of molecular systems with tunable structural relationships. Here, we use a combination of two-dimensional electronic spectroscopy and femtosecond stimulated Raman spectroscopy to investigate the role of steric hindrance between chromophores in driving changes to vibronic and vibrational coherences in a series of substituted perylenediimide (PDI) cyclophane dimers. We report significant differences in the frequency power spectra from the cyclophane dimers versus the corresponding monomer reference. We attribute these differences to distortion of the PDI cores from steric interactions between the substituents. These results highlight the importance of considering structural changes when rationalizing vibronic coupling in multichromophoric systems.
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