Achieve an atomic-level understanding of the anion/concentration effect on transport properties for aqueous zinc halide electrolytes
作者:Bochun Liang, Tairan Wang, Huan Chen, Yaqin Zhang, Xinyao Ma, Jun Fan · 发表于:Electrochimica Acta · 年份:2025 · DOI:10.1016/j.electacta.2025.146165 · 被引用次数:4 · 研究领域:Advanced battery technologies research、Advanced Battery Materials and Technologies、Thermal Expansion and Ionic Conductivity
Despite the growing research interest in aqueous zinc-ion batteries (AZIBs), the detailed atomic-level understanding of the structure-property relationship in AZIBs electrolytes remains incomplete. In this study, we employ molecular dynamics simulations to study the properties of three zinc halide salt electrolytes (ZnCl 2 , ZnBr 2 , and ZnI 2 ) at concentrations ranging from 0.44 m to 4 m. We observed the diffusion coefficients decrease as the concentration increases, and the overall diffusion coefficients follow the sequence of ZnI 2 > ZnBr 2 > ZnCl 2 . Further study revealed that this is attributed to the different degrees of ion clustering and the resultant disruption of the water network across different systems. Notably, we found that ionic conductivities of all three salts increase first and then decrease beyond an inflection point as the concentration rises, which is closely associated with the proportion of Zn 2+ in solvent-separated ion pairs (SSIPs). We further expanded this method to other electrolytes, such as Zn(CF 3 SO 3 ) 2 , ZnSO 4, and MgCl 2 , validating the method's applicability in divalent metal ion electrolytes. Ion-exchange dynamics analysis reveals the underly mechanisms of SSIPs that influence the ion transport behaviors. This work aims to deepen the understanding of aqueous zinc salt electrolytes and inform the design of high-performance AZIBs.