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Molecular modeling of the thermophysical and transport properties of ionic liquids.

机译:离子液体的热物理性质和传输性质的分子模型。

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Ionic liquids (ILs) are an exciting class of compounds with unique properties that makes them attractive for industrial applications. Among their valuable features, an immeasurably low vapor pressure and a liquid state at or near ambient conditions are found at the top of the list. In this research dissertation, thermophysical and transport properties of ionic liquids are theoretically investigated by means of molecular simulation techniques. Quantum calculations are used as a supportive tool to force field development work. This research task is not done in the darkness but rather is guided and supported by collateral experimental studies. Cations studied include imidazolium-, pyridinium- and triazolium-based structures with different inorganic anions such as hexafluorophosphate, bis(trifluoromethanesulfonyl)imide, nitrate and perchlorate. Static properties computed include gravimetric densities, volumetric expansivities, isothermal compressibilities, heat capacities, cohesive energy densities as well as the liquid structure. Analysis of the dynamic properties of ionic liquid systems is also carried out yielding information on the rotational dynamics and transport properties such as self-diffusivity.; This work forms part of a national quest for an insight into the structure-property relationship of energetic ionic liquids (EILs) headed by the US Air Force. EILs with a high nitrogen content offer several advantages over current technologies such as hydrazine. Applications may be found in armed conflict as well as in many other energetical needs provided that EILs are found to be hypergolic. Due to the fact that hypergolic fuels carry their own oxidizer, they are ideal for space applications. Triazolium-based ionic liquids are the starting class of energetic ionic liquids and are investigated as part of this dissertation. Not much experimental data is available for this class of compounds. This is partially due to the inherent danger of the experimental measurements. Therefore, a safe computer simulation can provide a great deal of insight into the property-structure relationship and the liquid structure of the system. Validation experience obtained with imidazolium- and pyridinium-based ionic liquids gives confidence in the static and dynamic property prediction of triazolium-based ionic liquids.; In addition, a molecular modeling study of ethane-based hydrofluorocarbons for vapor-liquid equilibria is presented. There exists industrial interest in applications of mixtures of these refrigerants with ionic liquids and thus, molecular modeling can help elucidating design problems. A force field for 1,1,1,2-tetrafluoroethane (R-134a) is proposed and validated against experimental liquid and gas densities, vapor pressures and heat of vaporizations using Gibbs ensemble Monte Carlo simulations.
机译:离子液体(ILs)是一类令人兴奋的化合物,具有独特的性能,使其在工业应用中具有吸引力。在它们的重要特征中,在列表的顶部发现了不可估量的低蒸气压和处于或接近环境条件的液态。本文通过分子模拟技术对离子液体的热物理性质和传输性质进行了理论研究。量子计算被用作强制领域开发工作的辅助工具。这项研究任务不是在黑暗中完成的,而是由附带的实验研究指导和支持的。研究的阳离子包括具有不同无机阴离子(例如六氟磷酸根,双(三氟甲磺酰基)酰亚胺,硝酸根和高氯酸根)的咪唑鎓,吡啶鎓和三唑鎓基结构。计算的静态特性包括重量密度,体积膨胀率,等温压缩率,热容,内聚能密度以及液体结构。还对离子液体系统的动力学特性进行了分析,得出了有关旋转动力学和传输特性(例如自扩散性)的信息。这项工作是美国寻求以美国空军为首的高能离子液体(EIL)的结构-性质关系的全国性探索的一部分。与现有技术(例如肼)相比,高氮含量的EIL具有许多优势。只要发现EIL具有高矫正性,就可以在武装冲突以及许多其他充满活力的需求中找到应用程序。由于高目标燃料带有自己的氧化剂,因此非常适合太空应用。三唑类离子液体是高能离子液体的起始类别,并作为本论文的一部分进行了研究。这类化合物的实验数据不多。这部分是由于实验测量的固有危险。因此,安全的计算机仿真可以提供有关系统的特性-结构关系和液体结构的大量信息。使用咪唑鎓和吡啶鎓类离子液体获得的验证经验使人们对三唑鎓类离子液体的静态和动态特性预测充满信心。另外,提出了用于气液平衡的乙烷基氢氟烃的分子模型研究。在这些制冷剂与离子液体的混合物的应用中存在工业兴趣,因此,分子建模可以帮助阐明设计问题。提出了一种1,1,1,2-四氟乙烷(R-1​​34a)的力场,并使用Gi​​bbs集合蒙特卡罗模拟对了实验液体和气体密度,蒸气压和汽化热进行了验证。

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