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为什么是 而不是 ?——使用全乙基化柱[5]芳烃对二卤乙烯异构体进行选择性分离的分子动力学和密度泛函理论研究

Why and not ? - Molecular dynamics and DFT study on selective separation of dihaloethene isomers using perethylated pillar[5]arene.

作者信息

Priscilla A Shanthini, Peters Silda, Ebenezer Cheriyan, Varathan Elumalai, Vijay Solomon Rajadurai

机构信息

Department of Chemistry, Madras Christian College (Autonomous), (Affiliated to the University of Madras), Chennai-600 059, India.

Department of Chemistry, SRM Institute of Science and Technology, Kattankulathur 603203, Tamil Nadu, India.

出版信息

Phys Chem Chem Phys. 2022 Sep 21;24(36):21812-21821. doi: 10.1039/d2cp02367a.

Abstract

The separation of mixtures of isomers is a daunting task. It is found that perethylated pillar[5]arene can separate -dichloroethene from its isomer. This work deals with the host-guest interactions and the selective separation of dihaloethene over -dihaloethene using perethylated pillar[5]arene. From this work, one can understand why only dihaloethenes are encapsulated while -dihaloethenes are not. Initially, molecular dynamics was performed at different picoseconds for the 1 : 1 inclusion complexes. In addition to these, MD simulation on a mixture of & isomers has also been done to ensure the preferential selectivity of perethylated pillar[5]arene towards the isomer. A brief DFT study was carried out to explain the better encapsulation of -dihaloethene in perethylated pillar[5]arene. Frontier molecular orbital analysis provides information on the stability and reactivity of the dihaloethene isomers. The non-covalent interactions between the host and the guest are determined using the quantum theory of atoms in molecules. Energy decomposition analysis indicates that the solvent phase influences the binding energy to a greater extent compared to the gas phase and orbital interaction energies are reduced substantially upon moving from the gas to the solvent phase. The Gibbs free energy indicates that these isomers readily form inclusion complexes with perethylated pillar[5]arene. Overall our results provide valuable information on the non-covalent interactions that drive the inclusion phenomenon in these host-guest systems.

摘要

异构体混合物的分离是一项艰巨的任务。研究发现,全乙基化的柱[5]芳烃能够将顺式二氯乙烯与其异构体分离。这项工作涉及主客体相互作用以及使用全乙基化柱[5]芳烃对二卤代乙烯和顺式二卤代乙烯的选择性分离。通过这项工作,可以理解为什么只有顺式二卤代乙烯被包封而反式二卤代乙烯没有。最初,对1:1包合物在不同皮秒下进行了分子动力学研究。除此之外,还对反式和顺式异构体的混合物进行了分子动力学模拟,以确保全乙基化柱[5]芳烃对顺式异构体具有优先选择性。进行了一项简短的密度泛函理论研究,以解释顺式二卤代乙烯在全乙基化柱[5]芳烃中更好的包封情况。前沿分子轨道分析提供了有关二卤代乙烯异构体稳定性和反应性的信息。使用分子中的原子量子理论确定了主体与客体之间的非共价相互作用。能量分解分析表明,与气相相比溶剂相对结合能的影响更大,并且从气相转移到溶剂相时轨道相互作用能大幅降低。吉布斯自由能表明这些异构体很容易与全乙基化柱[5]芳烃形成包合物。总体而言,我们的结果为驱动这些主客体系统中包合现象的非共价相互作用提供了有价值的信息。

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