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The study of structure and interactions of glucose-based natural deep eutectic solvents by molecular dynamics simulation

机译:分子动力学模拟研究基于葡萄糖基天然深凝固溶剂的结构和相互作用

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In the current study, molecular dynamics simulations were conducted to investigate the structural and dynamical properties of glucose-based Deep Eutectic Solvents (DESs) at different molar ratios (the mixture of glucose and choline chloride with the molar ratios of 1:3, 1:1 and 3:1). Accordingly, the interaction energies of different species and structural properties such as atom-atom radial distribution functions (RDFs), the hydrogen-bonding network between species, and spatial distribution functions (SDFs) were computed to understand effective interactions in the eutectic mixture formation. It was found that the insertion of glucose molecules reduced the accumulation of chloride anions around choline cations, eventually decreasing the interaction between the choline chloride ion pairs. Moreover, the possible explanations for the thermos-physical properties of DESs, such as the shear viscosity and density, have been provided. Dynamical properties of DES were evaluated by calculating the mean-square displacement (MSD) and the velocity autocorrelation function (VACF) for the centers of the mass of the ions and glucose molecules. MSD analysis results were then used to calculate the self-diffusion parameter by applying the Einstein relation. The simulation results indicated that increasing the temperature led to easing the migration of the molecules and decreasing the dependence of the movement of the molecules on each other. This growing trend of migration may lead to an increase in the self-diffusion coefficient of molecules. Structural analysis revealed that a ratio of 1:1 of glucose: choline chloride could provide the best condition to maintain the low melting point of the mixture due to the strong hydrogen-bonded network between the two species. (C) 2021 Elsevier B.V. All rights reserved.
机译:在目前的研究中,分子动力学模拟研究了葡萄糖基深共晶溶剂(DES)在不同摩尔比(葡萄糖和氯化胆碱的混合物,摩尔比为1:3、1:1和3:1)下的结构和动力学性质。因此,为了理解共晶混合物形成中的有效相互作用,计算了不同物种的相互作用能和结构特性,如原子-原子径向分布函数(RDF)、物种之间的氢键网络和空间分布函数(SDF)。研究发现,葡萄糖分子的插入减少了胆碱阳离子周围氯离子的积累,最终减少了胆碱-氯离子对之间的相互作用。此外,还对DESs的热物理性质,如剪切粘度和密度,提供了可能的解释。通过计算离子和葡萄糖分子质心的均方位移(MSD)和速度自相关函数(VACF)来评估DES的动力学特性。然后利用MSD分析结果,应用爱因斯坦关系计算自扩散参数。模拟结果表明,提高温度可以减缓分子的迁移,降低分子运动对彼此的依赖性。这种不断增长的迁移趋势可能会导致分子的自扩散系数增加。结构分析表明,葡萄糖与氯化胆碱的比例为1:1可以提供维持混合物低熔点的最佳条件,因为这两种物质之间存在强大的氢键网络。(c)2021爱思唯尔B.V.保留所有权利。

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