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14-冠-4衍生物与锂、钠和镁金属离子的相互作用及选择性

Interaction and selectivity of 14-crown-4 derivatives with Li, Na, and Mg metal ions.

作者信息

Tian Yongpan, Chen Wenwen, Zhao Zhuo, Xu Liang, Tong Bihai

机构信息

School of Metallurgical Engineering, Anhui University of Technology, No. 59, Hudong Road, Ma'anshan, 243002, Anhui, China.

出版信息

J Mol Model. 2020 Mar 4;26(4):67. doi: 10.1007/s00894-020-4325-8.

Abstract

The interactions between crown ether ligands (14-crown-4, 14C4; 4,4,5,5-tetramethylbenzo-14-crown-4, BCH-14C4; 4,4,5,5,9,9,10,10-octamethyl-14-crown-4, CH-14C4; dibenzo-14-crown ether-4, DB14C4) and alkaline and alkaline earth metal ions (Li, Na, Mg) were investigated using density functional theory modeling at the M062X/def2SVP and def2TZVP level. The condensed softness analysis of crown ethers, a condensed Fukui function, a condensed dual descriptor, and frontier molecular orbital theory were used to analyze the reactivities of the complexes. The complex stability was analyzed in terms of the binding energies, standard Gibbs free energy of formation, and energy decomposition of the interaction in aqueous solution. The results show that the active sites were mainly located at the carbon atoms of the benzene ring and oxygen atoms. The reactivities of DB14C4 and BCH-14C4 are higher than those of 14C4 and CH-14C4. The electrostatic interaction is the principal factor determining the stability of the complexes. The complexes containing Li has the greatest stability in aqueous solution among the complexes containing Li, Na, and Mg. BCH-14C4 shows selective adsorption toward Li in a mixed solution of Li, Na, and Mg. To evaluate the stability of complexes containing Mg, the solvent effect must be accurately described. An energy decomposition analysis was used to evaluate the stability of complexes containing Li, Na, and Mg, and the solvent effects were considered.

摘要

使用密度泛函理论在M062X/def2SVP和def2TZVP水平上研究了冠醚配体(14-冠-4,14C4;4,4,5,5-四甲基苯并-14-冠-4,BCH-14C4;4,4,5,5,9,9,10,10-八甲基-14-冠-4,CH-14C4;二苯并-14-冠醚-4,DB14C4)与碱金属和碱土金属离子(Li、Na、Mg)之间的相互作用。采用冠醚的凝聚软度分析、凝聚福井函数、凝聚双描述符和前线分子轨道理论分析了配合物的反应活性。根据结合能、标准吉布斯生成自由能和水溶液中相互作用的能量分解来分析配合物的稳定性。结果表明,活性位点主要位于苯环的碳原子和氧原子上。DB14C4和BCH-14C4的反应活性高于14C4和CH-14C4。静电相互作用是决定配合物稳定性的主要因素。在含Li、Na和Mg的配合物中,含Li的配合物在水溶液中具有最大的稳定性。BCH-14C4在Li、Na和Mg的混合溶液中对Li表现出选择性吸附。为了评估含Mg配合物的稳定性,必须准确描述溶剂效应。采用能量分解分析来评估含Li、Na和Mg配合物的稳定性,并考虑了溶剂效应。

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