Cui Liu, Zhou Leping, Du Xiaoze
School of Energy, Power and Mechanical Engineering, North China Electric Power University, Beijing 102206, China.
Key Laboratory of Power Station Energy Transfer Conversion and System (North China Electric Power University), Ministry of Education, Beijing 102206, China.
J Phys Chem B. 2024 Sep 5;128(35):8484-8493. doi: 10.1021/acs.jpcb.4c02413. Epub 2024 Aug 27.
CaCl-NaCl molten salt is one of the widely used electrolytes, and the effect of the electric field on it needs to be considered in the environment of manufacturing metals and alloys as well as in battery applications. To be closer to the state of the CaCl-NaCl molten salt system in practical applications, this study uses the training-based deep potential, combined with the ionic structure, to analyze the electric field effects on the drift velocity, ionic mobility, ion diffusion, and viscosity of the CaCl-NaCl system by molecular dynamics simulations. It is shown that the electric field has a stronger effect on the ion diffusion behavior parallel to the direction of the electric field in the CaCl-NaCl molten salt system. Due to the looser coordinate structure of Na, the interaction force between Na-Cl is small compared with that between Ca-Cl. Na is easily driven and more sensitive to the electric field, whose drift velocity, ionic mobility, and diffusion coefficient are larger than those of the other two ions, with an order of Na > Cl > Ca. All ionic drift velocities increase linearly as electric field intensity increases and the ionic mobilities tend to be constant. The diffusion coefficient parallel to the direction of the electric field exponentially increases and the viscosity tends to exponentially decrease with the increase in the electric field intensity. This work is important for accurately predicting the properties and performance of molten salts and their improvement for applications such as solar thermal energy conversion.
氯化钙-氯化钠熔盐是一种广泛使用的电解质,在金属和合金制造环境以及电池应用中,需要考虑电场对其的影响。为了更接近氯化钙-氯化钠熔盐体系在实际应用中的状态,本研究采用基于训练的深度势,并结合离子结构,通过分子动力学模拟分析电场对氯化钙-氯化钠体系的漂移速度、离子迁移率、离子扩散和粘度的影响。结果表明,在氯化钙-氯化钠熔盐体系中,电场对平行于电场方向的离子扩散行为影响更强。由于钠的配位结构较松散,钠-氯之间的相互作用力比钙-氯之间的小。钠容易被驱动,对电场更敏感,其漂移速度、离子迁移率和扩散系数大于其他两种离子,顺序为钠>氯>钙。随着电场强度增加,所有离子的漂移速度呈线性增加,离子迁移率趋于恒定。平行于电场方向的扩散系数随电场强度增加呈指数增加,粘度趋于指数下降。这项工作对于准确预测熔盐的性质和性能以及改进其在太阳能热转换等应用方面具有重要意义。