Thermodynamics and transport in molten chloride salts and their mixtures

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL Physical Chemistry Chemical Physics Pub Date : 2024-12-18 DOI:10.1039/D4CP04180A
C. Cockrell, M. Withington, H. L. Devereux, A. M. Elena, I. T. Todorov, Z. K. Liu, S. L. Shang, J. S. McCloy, P. A. Bingham and K. Trachenko
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Abstract

Molten salts are important in a number of energy applications, but the fundamental mechanisms operating in ionic liquids are poorly understood, particularly at higher temperatures. This is despite their candidacy for deployment in solar cells, next-generation nuclear reactors, and nuclear pyroprocessing. We perform extensive molecular dynamics simulations over a variety of molten chloride salt compositions at varying temperature and pressures to calculate the thermodynamic and transport properties of these liquids. Using recent developments in the theory of liquid thermophysical properties, we interpret our results on the basis of collective atomistic dynamics (phonons). We find that the properties of ionic liquids are well explained by their collective dynamics, as in simple liquids. In particular, we relate the decrease of heat capacity, viscosity, and thermal conductivity to the loss of transverse phonons from the liquid spectrum. We observe the singular dependence of the isochoric heat capacity on the mean free path of phonons, and the obeyance of the Stokes–Einstein equation relating the viscosity to the mass diffusion. The transport properties of mixtures are more complicated compared to simple liquids, however viscosity and thermal conductivity are well guided by fundamental bounds proposed recently. The kinematic viscosity and thermal diffusivity lie very close to one another and obey the theoretical fundamental bounds determined solely by fundamental physical constants. Our results show that recent advances in the theoretical physics of liquids are applicable to molten salts mixtures, and therefore that the evolution and interplay of properties common to all liquids may act as a guide to a deeper understanding of these mixtures.

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熔融氯盐及其混合物的热力学和传输
熔盐在许多能源应用中都很重要,但在离子液体中运行的基本机制却知之甚少,特别是在高温下。尽管它们可以应用于太阳能电池、下一代核反应堆和核热处理。我们在不同温度和压力下对各种熔融氯盐组成进行了广泛的分子动力学模拟,以计算这些液体的热力学和输运性质。利用液体热物理性质理论的最新发展,我们在集体原子动力学(声子)的基础上解释了我们的结果。我们发现离子液体的性质可以用它们的集体动力学很好地解释,就像在简单液体中一样。特别是,我们将热容,粘度和导热系数的降低与液体光谱中横向声子的损失联系起来。我们观察到等时热容对声子平均自由程的奇异依赖,以及关于粘度与质量扩散的斯托克斯-爱因斯坦方程的服从。与简单液体相比,混合物的输运性质更为复杂,但粘度和热导率受到最近提出的基本边界的很好指导。运动粘度和热扩散率彼此非常接近,并且服从仅由基本物理常数决定的理论基本边界。我们的研究结果表明,液体理论物理学的最新进展适用于熔盐混合物,因此,所有液体共同性质的演变和相互作用可能作为对这些混合物更深入理解的指导。
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来源期刊
Physical Chemistry Chemical Physics
Physical Chemistry Chemical Physics 化学-物理:原子、分子和化学物理
CiteScore
5.50
自引率
9.10%
发文量
2675
审稿时长
2.0 months
期刊介绍: Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.
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