应用 CL&P-Pol 可极化力场确定 [C4mim] [BF4, Cl, Br, CH3COO] 离子液体中噻吩的过剩化学势

Marco V. Velarde-Salcedo , Joel Sanchez-Badillo , Marco Gallo , Jorge López-Lemus
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引用次数: 0

摘要

由于硫基化合物的存在,化石燃料的燃烧是空气污染的一个重要来源。在这方面,需要一个可靠的原子力场,以便深入了解溶质与溶剂之间的相互作用,并设计高芳香族硫萃取溶剂。本研究利用基于 Drude 振荡器的 CL&Polizable 力场,通过自由能扰动和复制交换分子动力学方法,评估了噻吩在四种 1-丁基-3-甲基咪唑鎓离子液体中的过剩化学势。首先,为了验证可极化力场的准确性,使用 CL&Pol 力场计算了纯离子液体的一系列热力学性质,如扩散系数、液体密度、介电常数和汽化热,并与实验值进行了比较。计算噻吩过剩化学势值的结果表明,与所研究的其他离子液体相比,[C4mim][CH3COO] 离子液体在 300 K 和 343 K 时对噻吩分子具有更有利的过剩化学势(更高的溶解度)。结构分析表明,离子液体阴离子与噻吩分子的相互作用更为密切,并具有明确的 RDF 峰,较大的阴离子与噻吩分子的周围颗粒密度更高(溶解壳),而单原子阴离子则优先与靠近硫噻吩原子的氢相互作用;相比之下,离子液体阳离子没有观察到明显的溶解层。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of the CL&P-Pol polarizable force field in the determination of the excess chemical potential of thiophene within the [C4mim] [BF4, Cl, Br, CH3COO] ionic liquids

The combustion of fossil fuels is an important source of air pollution due to the presence of sulfur-based compounds. In this regard, a reliable atomistic forcefield is required in order to provide insights on solute-solvent interactions, and in designing high aromatic sulfur extracting solvents. In the present work, the excess chemical potentials of thiophene within four 1-butyl-3-methylimidazolium-based ionic liquids were evaluated through the free energy perturbation with replica exchange molecular dynamics methodology by using the CL&Pol polarizable force fields based on Drude oscillators. First, in order to validate the accuracy of the polarizable force fields, a series of thermodynamic properties of pure ionic liquids such as diffusion coefficient, liquid density, dielectric constant, and heat of vaporization were computed using the CL&Pol force field and compared against experimental values. The results from the calculated thiophene excess chemical potential values, indicated that the [C4mim][CH3COO] ionic liquid presents the more favorable excess chemical potential (higher solubility) with respect to the thiophene molecule at both 300 K and 343 K in comparison to the other ionic liquids studied. The structural analysis revealed that the ionic liquid anion interacts more closely and with well-defined RDF peaks with the thiophene molecule, the larger anions present higher surrounding particle densities with the thiophene molecules (solvation shell), while the monoatomic anions interact preferentially with the hydrogens close to the sulfur thiophene atom; In contrast no marked solvation layers were observed with the ionic liquid cations.

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