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通过路易斯酸调节共轭分子的光学性质:来自电子结构建模的见解

Tuning Optical Properties of Conjugated Molecules by Lewis Acids: Insights from Electronic Structure Modeling.

作者信息

Phan Hung, Kelly Thomas J, Zhugayevych Andriy, Bazan Guillermo C, Nguyen Thuc-Quyen, Jarvis Emily A, Tretiak Sergei

机构信息

Fulbright University Vietnam , Ho Chi Minh City , Vietnam.

Center for Polymers and Organic Solids (CPOS) , University of California Santa Barbara , Santa Barbara , California 93106 , United States.

出版信息

J Phys Chem Lett. 2019 Aug 15;10(16):4632-4638. doi: 10.1021/acs.jpclett.9b01572. Epub 2019 Aug 1.

Abstract

Understanding and controlling the optoelectronic properties of organic semiconductors at the molecular level remains a challenge due to the complexity of chemical structures and intermolecular interactions. A common strategy to address this challenge is to utilize both experimental and computational approaches. In this contribution, we show that density functional theory (DFT) calculation is a useful tool to provide insights into the bonding, electron population distribution, and optical transitions of adducts between conjugated molecules and Lewis acids (CM-LA). Adduct formation leads to relevant modifications of key properties, including a red shift in optical transitions and an increase in charge carrier density and charge mobility, compared to the parent conjugated molecules. We show that electron density transfer from the CM to the LA, which was hypothesized to cause the experimental red shift in absorption spectra upon LA binding, can be quantified and interpreted by population analysis. Experimental red shifts in optical transitions for all molecular families can also be predicted by time-dependent DFT calculations with different density functionals. These detailed insights help to optimize a priori design guidelines for future applications.

摘要

由于化学结构和分子间相互作用的复杂性,在分子水平上理解和控制有机半导体的光电特性仍然是一项挑战。应对这一挑战的常用策略是同时运用实验和计算方法。在本论文中,我们表明密度泛函理论(DFT)计算是一种有用的工具,能够深入了解共轭分子与路易斯酸(CM-LA)加合物的键合、电子布居分布和光学跃迁。与母体共轭分子相比,加合物的形成会导致关键性质的相关改变,包括光学跃迁的红移以及电荷载流子密度和电荷迁移率的增加。我们表明,从CM到LA的电子密度转移(据推测这会导致LA结合后吸收光谱出现实验性红移)可以通过布居分析进行量化和解释。所有分子家族光学跃迁的实验性红移也可以通过使用不同密度泛函的含时DFT计算来预测。这些详细的见解有助于优化未来应用的先验设计指南。

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