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◆ Physical chemistry chemical physics : PCCP2026-09-01

Liquid microstructure and dynamics of LiCl-LiF-based fluxes: an ab initio molecular dynamics study.

Kai Lan, Huabiao Chen, Yu Liu, Yuanchun Huang

原始摘要(英文原文)· Original abstract
In this work, ab initio molecular dynamics (AIMD) simulations were performed to investigate the liquid microstructure and dynamics of LiCl-LiF-based refining fluxes, with particular attention to the effects of the LiCl/LiF ratio and the addition of AlF3 or CaF2 on the microstructure and ionic diffusion kinetics of the melt. The results show that the equimolar 62 wt% LiCl-38 wt% LiF composition has the lowest weighted-average diffusion coefficient of 1.188 Å2 ps-1 and the highest estimated viscosity of 1.035 cP. For the binary LiCl-LiF fluxes, increasing the LiCl/LiF ratio enhances overall ion diffusion and reduces viscosity, indicating that Li+ mobility is strongly affected by the balance between Li-F and Li-Cl coordination. The addition of AlF3 to the LiCl-LiF matrix forms strong Al-centered coordination units, redistributes fluoride species, and changes Li-F/Li-Cl coordination environment, thereby suppressing F- and Li+ diffusion in the ternary melt. In contrast, CaF2 introduces Ca-centered coordination units and modifies the redistribution of F- and Cl-, leading to reduced F-, Cl-, and Li+ diffusivities, similar to the transport behavior caused by decreasing the LiCl/LiF ratio. These results reveal a composition-dependent relationship between structure and transport in LiCl-LiF-based refining fluxes, and provide a basis for understanding transport-property regulation in multicomponent fluoride-chloride melts.
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Liquid microstructure and dynamics of LiCl-LiF-based fluxes: an ab initio molecular dynamics study. — 科研速览 Science Skim