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苯酚 - 喹啉中存在和不存在振动 - 电子跃迁诱导的骨架变形辅助的激发态分子内质子转移

Excited-state intramolecular proton transfer with and without the assistance of vibronic-transition-induced skeletal deformation in phenol-quinoline.

作者信息

Liu Yu-Hui, Yu Shi-Bo, Peng Ya-Jing, Wang Chen-Wen, Zhu Chaoyuan, Lin Sheng-Hsien

机构信息

College of Physical Science and Technology, Bohai University Jinzhou 121013 China

Department of Applied Chemistry and Institute of Molecular Science, National Chiao-Tung University Hsinchu 30010 Taiwan

出版信息

RSC Adv. 2021 Nov 19;11(59):37299-37306. doi: 10.1039/d1ra07042h. eCollection 2021 Nov 17.

Abstract

The excited-state intramolecular proton transfer (ESIPT) reaction of two phenol-quinoline molecules (namely PQ-1 and PQ-2) were investigated using time-dependent density functional theory. The five-(six-) membered-ring carbocycle between the phenol and quinolone moieties in PQ-1 (PQ-2) actually causes a relatively loose (tight) hydrogen bond, which results in a small-barrier (barrier-less) on an excited-state potential energy surface with a slow (fast) ESIPT process with (without) involving the skeletal deformation motion up to the electronic excitation. The skeletal deformation motion that is induced from the largest vibronic excitation with low frequency can assist in decreasing the donor-acceptor distance and lowering the reaction barrier in the excited-state potential energy surface, and thus effectively enhance the ESIPT reaction for PQ-1. The Franck-Condon simulation indicated that the low-frequency mode with vibronic excitation 0 → 1' is an original source of the skeletal deformation vibration. The present simulation presents physical insights for phenol-quinoline molecules in which relatively tight or loose hydrogen bonds can influence the ESIPT reaction process with and without the assistance of the skeletal deformation motion.

摘要

采用含时密度泛函理论研究了两种苯酚 - 喹啉分子(即PQ - 1和PQ - 2)的激发态分子内质子转移(ESIPT)反应。PQ - 1(PQ - 2)中苯酚和喹诺酮部分之间的五元(六元)环碳环实际上导致了相对较松(较紧)的氢键,这在激发态势能面上产生了一个小势垒(无势垒),使得ESIPT过程缓慢(快速),其中涉及(不涉及)直至电子激发的骨架变形运动。由低频最大振动激发诱导的骨架变形运动有助于减小供体 - 受体距离并降低激发态势能面上的反应势垒,从而有效地增强了PQ - 1的ESIPT反应。弗兰克 - 康登模拟表明,具有振动激发0→1'的低频模式是骨架变形振动的原始来源。本模拟为苯酚 - 喹啉分子提供了物理见解,其中相对较紧或较松的氢键可以在有和没有骨架变形运动协助的情况下影响ESIPT反应过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1744/9043822/efa7d28411d7/d1ra07042h-f1.jpg

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