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晶体场对分子材料中原子和官能团分布极化率的影响。

Crystal Field Effects on Atomic and Functional-Group Distributed Polarizabilities of Molecular Materials.

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, Belo Horizonte 31270-901, Minas Gerais, Brazil.

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

出版信息

J Phys Chem A. 2020 Dec 3;124(48):10008-10018. doi: 10.1021/acs.jpca.0c09293. Epub 2020 Nov 20.

Abstract

To rationally design new molecular materials with desirable linear optical properties, such as refractive index or birefringence, we investigated how atomic and functional-group polarizability tensors of prototypical molecules respond to crystal field effects. By building finite aggregates of urea, succinic acid, -nitroaniline, 4-mercaptopyridine, or methylbenzoate, and by partitioning the cluster electronic density using quantum theory of atoms in molecules, we could extract atoms and functional groups from the aggregates and estimate their polarizability enhancements with respect to values calculated for molecules in isolation. The isotropic polarizability and its anisotropy for the molecular building blocks are used to understand the functional-group sources of optical properties in these model systems, which could help the synthetic chemist to fabricate efficient materials. This analysis is complemented by benchmarking density functionals for atomic distributed polarizabilities in gas phase, by comparing the results with refractive-index calculations under periodic boundary conditions, and by estimating functional-group optical properties from a classical electrostatic atom-dipole interaction model.

摘要

为了合理设计具有理想线性光学性质(如折射率或双折射)的新型分子材料,我们研究了典型分子的原子和官能团极化率张量如何响应晶体场效应。通过构建尿素、琥珀酸、对硝基苯胺、4-巯基吡啶或苯甲酸甲酯的有限聚集体,并利用分子中的原子量子理论对团簇电子密度进行划分,我们可以从聚集体中提取原子和官能团,并估计它们相对于孤立分子计算值的极化率增强。分子构建单元的各向同性极化率及其各向异性用于理解这些模型系统中光学性质的官能团来源,这有助于合成化学家制备高效材料。通过对气相中原子分布极化率的密度泛函进行基准测试、将结果与周期性边界条件下的折射率计算结果进行比较以及从经典静电原子-偶极相互作用模型估计官能团光学性质,对该分析进行了补充。

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