Effect of structure and interaction on physicochemical properties of new [Emim][BF3X] complex anion ionic liquids studied by quantum chemistry

IF 2.5 4区 化学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Molecular Modeling Pub Date : 2024-11-18 DOI:10.1007/s00894-024-06212-8
Yuanhao Liao, Dongwei Sun, Xiaobo Tang, Sheng Han, Xingzong Dong, Bo Zhao, Yu An, Zhiqiang Yang, Nian Tang, Jijun Zeng, Wei Zhang
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Abstract

Context

One of the key challenges in the industrial application of ionic liquids (ILs) is their extreme characteristics, such as viscosity, glass transition temperatures, and conductivity. Understanding the relationship between ILs structure and physicochemical property is a crucial aspect of the directed design of ILs with good properties, which is a prerequisite for their successful implementation in industrial processes. In this work, high-level quantum-chemical research with for four pairs ionic liquids, [Emim][X] and [Emim][BF3X] (X = CH3SO3, EtSO4, HSO4, Tos), was performed, to analyze the stable structure, interionic interaction, and charge transfer and provide a new insight into the property variances at the molecular level. The result shows that the overall structural stability of ionic liquids is contributed with hydrogen bonding network between the protons in the C–H and N–H of the cation and oxygen atoms of the anion, as well as fluorine atoms. The nature and strength of the interionic interaction were measured via atoms in molecule analysis and sobEDAw method and results suggested that BF3 could waning interionic interaction of ion pairs. Moreover, a close relation between the binding energies of ion pairs and physicochemical properties was established: the weaker the interionic interaction, the lower is the viscosity and glass transition, and the higher is the conductivity.

Methods

Quantum chemistry calculations were performed under B3LYP-D3/aug-cc-pVTZ level of DFT functional using the Gaussian 16 package (version C01). The Multiwfn 3.7 program was used to calculate the electrostatic potential, interaction region indicator, the information of bond critical points, core-valence bifurcation index, and ADCH charge. Visualization of structure and the region of interaction were achieved using VESTA and VMD.

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量子化学研究新型[Emim][BF3X]复合阴离子液体的结构和相互作用对其理化性质的影响。
背景:离子液体(ILs)在工业应用中面临的主要挑战之一是其极端特性,如粘度、玻璃化转变温度和导电性。了解离子液体结构与物理化学特性之间的关系是定向设计具有良好特性的离子液体的关键环节,也是成功将其应用于工业过程的先决条件。本研究对四对离子液体[Emim][X]和[Emim][BF3X](X = CH3SO3、EtSO4、HSO4、Tos)进行了高水平的量子化学研究,分析了它们的稳定结构、离子间相互作用和电荷转移,并对分子水平的性质差异提出了新的见解。结果表明,离子液体的整体结构稳定性得益于阳离子的 C-H 和 N-H 中的质子与阴离子的氧原子以及氟原子之间的氢键网络。通过分子中的原子分析和 sobEDAw 方法测量了离子间相互作用的性质和强度,结果表明 BF3 可以减弱离子对的离子间相互作用。此外,还确定了离子对结合能与物理化学性质之间的密切关系:离子间相互作用越弱,粘度和玻璃化转变越低,电导率越高:量子化学计算是在 B3LYP-D3/aug-cc-pVTZ DFT 函数水平下使用高斯 16 软件包(C01 版)进行的。使用 Multiwfn 3.7 程序计算了静电位、相互作用区域指标、键临界点信息、核-价分叉指数和 ADCH 电荷。使用 VESTA 和 VMD 实现了结构和相互作用区域的可视化。
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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来源期刊
Journal of Molecular Modeling
Journal of Molecular Modeling 化学-化学综合
CiteScore
3.50
自引率
4.50%
发文量
362
审稿时长
2.9 months
期刊介绍: The Journal of Molecular Modeling focuses on "hardcore" modeling, publishing high-quality research and reports. Founded in 1995 as a purely electronic journal, it has adapted its format to include a full-color print edition, and adjusted its aims and scope fit the fast-changing field of molecular modeling, with a particular focus on three-dimensional modeling. Today, the journal covers all aspects of molecular modeling including life science modeling; materials modeling; new methods; and computational chemistry. Topics include computer-aided molecular design; rational drug design, de novo ligand design, receptor modeling and docking; cheminformatics, data analysis, visualization and mining; computational medicinal chemistry; homology modeling; simulation of peptides, DNA and other biopolymers; quantitative structure-activity relationships (QSAR) and ADME-modeling; modeling of biological reaction mechanisms; and combined experimental and computational studies in which calculations play a major role.
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