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首页> 外文期刊>ACS Omega >Refined Force Field for Liquid Sulfolane with Particular Emphasis to Its Transport Characteristics
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Refined Force Field for Liquid Sulfolane with Particular Emphasis to Its Transport Characteristics

机译:液体磺甘油的精制力场,特别强调其运输特性

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An all-atom force field dedicated to capturing the properties of multifunctional sulfolane is necessary. In addition to being an excellent solvent and extractor, sulfolane is also a frequently investigated component for battery electrolytes in recent times. Given this, theoretically capturing its transport properties is essential. However, given the rather high shear viscosity of liquid sulfolane and its polar aprotic nature, formulating an appropriate non-polarizable force field for this compound remains a challenge. Starting from a generic force field, we report a refined force field for sulfolane which quantitatively captures its bulk properties, resulting in significantly improved estimates for self-diffusion constant and shear viscosity of sulfolane in comparison to force fields reported hitherto. Density, self-diffusion constant, and shear viscosity were determined between temperatures (303 and 398) K and at 1 bar pressure. All properties determined from the refined force field are in good agreement with experiments. The refined model employs atomic site charges obtained from the density-derived electrostatic and chemical (DDEC6) method for liquid sulfolane modeled using quantum density functional theory. Lennard-Jones parameters were refined using quantum potential energy scans. Despite possessing a large dipole moment, the large molecular size of sulfolane partially disrupts intermolecular dipolar ordering in liquid sulfolane. Molecular dipoles of near neighbor sulfolane, however, retain a partial preference for antiparallel orientation even at the highest temperatures investigated here.
机译:一种专用于捕获多官能磺胺的性质的全原子力场是必要的。除了作为优异的溶剂和提取器之外,磺胺也是近期电池电解质的经常研究的组分。鉴于这一点,理论上捕获其传输属性至关重要。然而,鉴于液体磺化盐的相当高的剪切粘度及其极性非质子性质,配制该化合物的适当不可极化的力场仍然是一个挑战。从通用力领域开始,我们报告了磺甘油的精制力场,其定量地捕获其堆积性质,导致诸如迄今为止报告的力领域的苏仑的自扩散常数和剪切粘度显着改善了估计。在温度(303和398)K和1巴压力之间测定密度,自扩散常数和剪切粘度。从精制力场确定的所有性质与实验吻合良好。通过使用量子密度功能理论模拟的液体磺胺,精制模型采用从密度衍生的静电和化学(DDEC6)方法获得的原子点电荷。 Lennard-Jones参数采用量子势能扫描精制。尽管具有大的偶极矩,但磺胺的大分子大小部分地破坏了液体磺胺中的分子间偶极排序。然而,即使在此处研究的最高温度下,近邻磺胺近邻磺胺的分子偶极均仍然保持对反平行取向的部分偏好。

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