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用于预测电光性质的精确原子-偶极相互作用模型:从范德华聚集体到共价键合簇

Accurate Atom-Dipole Interaction Model for Prediction of Electro-optical Properties: From van der Waals Aggregates to Covalently Bonded Clusters.

作者信息

Ligorio Raphael F, Krawczuk Anna, Dos Santos Leonardo H R

机构信息

Departamento de Química, Universidade Federal de Minas Gerais, Av. Pres. Antônio Carlos 6627, 31270-901 Belo Horizonte, MG, Brazil.

Institut für Anorganische Chemie, Unisersität Göttingen, Tammannstrasse 4, D-37077 Göttingen, Germany.

出版信息

J Phys Chem A. 2021 May 20;125(19):4152-4159. doi: 10.1021/acs.jpca.1c02475. Epub 2021 May 10.

Abstract

This work aims at the accurate estimation of the electro-optical properties of atoms and functional groups in organic crystals. A better understanding of the nature of building blocks and the way they interact with each other enables more efficient prediction of self-assembly, and thus physical properties in condensed matter. We propose a modified version of an atom-dipole interaction model that is based on atomic dipole moments calculated from the quantum theory of atoms in molecules. The method is very reliable for the prediction of various optical and electric properties in diverse chemical environments, ranging from hydrocarbon molecules bonded by dispersive interactions to polar rings connected by hydrogen bonds, or even polymeric structures whose monomers are covalently linked. Distributed polarizabilities and electrostatic potentials are compared to those obtained using a complete quantum-mechanical approach on finite-size aggregates. Our electrostatic approximation recovers isotropic polarizabilities with an accuracy of ca. 5 au and electrostatic potentials of ca. 0.05 au, even in the worst-case scenario in which polarization and charge-transfer effects are large. Functional groups are highly exportable, estimating the properties of small peptides and polyaromatics with a maximum deviation as low as ca. 15%.

摘要

这项工作旨在精确估计有机晶体中原子和官能团的电光性质。更好地理解构建单元的性质以及它们相互作用的方式能够更有效地预测自组装,进而预测凝聚态物质的物理性质。我们提出了一种基于从分子中原子的量子理论计算得到的原子偶极矩的原子 - 偶极相互作用模型的改进版本。该方法对于预测各种化学环境中的各种光学和电学性质非常可靠,这些化学环境包括通过色散相互作用结合的烃分子、通过氢键连接的极性环,甚至是单体通过共价键连接的聚合物结构。将分布式极化率和静电势与使用有限尺寸聚集体的完整量子力学方法得到的结果进行比较。我们的静电近似能够以约5原子单位的精度恢复各向同性极化率和约0.05原子单位的静电势,即使在极化和电荷转移效应较大的最坏情况下也是如此。官能团具有高度可转移性,估计小肽和多芳烃的性质时最大偏差低至约15%。

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