Study on the mechanism of oxygen atom-related non-covalent interactions on the structure of non-fused ring acceptor molecules and their optoelectronic properties

Miao Wang, Lei Wang, Huanhuan Gao, Jin Li, Zhao Liu
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Abstract

Non-covalent interactions play a crucial role in regulating the molecular conformation and optoelectronic properties of the acceptor. In this paper, hydroxyl groups of different positions and numbers are inserted on the original non-fused ring acceptor molecule W0. Thus, eight novel molecules were designed. Density functional theory (DFT) and time-dependent density functional theory (TD-DFT) are used to investigate the mechanisms of non-covalent interactions between S…O on the molecular conformation, electronic structure and its optoelectronic properties. The existence of intramolecular S…O non-covalent interactions was demonstrated by the AIM topological analysis and RDG isosurface visualization. The study of the molecular conformational planarity revealed that the introduction of unilateral groups can optimize the homolateral planarity. As the number of hydroxyl insertions increases, the twisting of the two thiophene units within the central core intensifies. This also leads to an impact on the internal planarity of the central core. The electrostatic potential (ESP) analysis showed that the asymmetric hydroxyl modification increased the dipole moment and may be more beneficial for electron transfer. The larger the dipole moment, the more negative the ESP. Theoretical results show that the introduction of hydroxyl groups is significantly superior in terms of light absorption, dipole moment and exciton binding energy as well as excitation energy. As the number of hydroxyl groups increases, they show more potential in increasing the excitation energy and light absorption and decreasing the exciton binding energy. This study provides new insights into the design and development of high-performance non-fused ring acceptors.
氧原子相关非共价作用对非熔合环受体分子结构及其光电特性的影响机制研究
非共价相互作用在调节受体的分子构象和光电特性方面起着至关重要的作用。本文在原始的非熔合环受体分子 W0 上插入了不同位置和数量的羟基。这样就设计出了 8 种新型分子。本文采用密度泛函理论(DFT)和时变密度泛函理论(TD-DFT)研究了 S...O 之间的非共价相互作用对分子构象、电子结构及其光电特性的影响机制。AIM 拓扑分析和 RDG 等值面可视化证明了分子内 S...O 非共价相互作用的存在。对分子构象平面性的研究表明,单侧基团的引入可以优化同侧平面性。随着羟基插入数量的增加,中央核心内两个噻吩单元的扭曲加剧。这也会对中心核的内部平面度产生影响。静电位(ESP)分析表明,不对称羟基修饰增加了偶极矩,可能更有利于电子转移。偶极矩越大,静电位越负。理论结果表明,引入羟基在光吸收、偶极矩和激子结合能以及激发能方面都有明显优势。随着羟基数量的增加,它们在提高激发能和光吸收以及降低激子结合能方面表现出更大的潜力。这项研究为设计和开发高性能非熔融环形受体提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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