材料科学
电化学
电解质
溶解
阴极
磁滞
化学工程
过渡金属
电极
氧化还原
相间
金属
X射线吸收光谱法
无机化学
同步加速器
吸收(声学)
电池(电)
合金
吸收光谱法
电化学窗口
介电谱
快离子导体
自行车
氟化物
动力学
分析化学(期刊)
纳米技术
电化学动力学
作者
Keng Xu,Kangxuan Xia,Ru Xiao,Ryan Grant,Ruihao Deng,Ruixin Wu,Ratnottam Das,Bowen Shao,Enyuan Hu,Fudong Han
摘要
ABSTRACT Mixed metal fluorides have been considered as a promising candidate to lower the voltage hysteresis of conversion‐type iron fluoride cathodes, but their cycling stability is limited due to transition metal dissolution and interphase growth in liquid electrolyte batteries. Here, we study the role of incorporating CuF 2 and NiF 2 in the electrochemical performance of FeF 3 cathode in halide‐based solid‐state batteries to test whether we can transfer the kinetic benefit of low voltage hysteresis to solid‐state batteries while using solid electrolyte to eliminate transition metal dissolution and stabilize the interphase. Synchrotron X‐ray absorption spectroscopy results indicated the redox reactions are attributed to Cu 0 /Cu + and Fe 0 /Fe 2+ in 25CuF 2 ‐75FeF 3 and Ni 0 /Ni 2+ and Fe 0 /Fe 3+ in 10NiF 2 ‐90FeF 3 . While no apparent improvement in electrode kinetics can be observed, the incorporation of CuF 2 and NiF 2 can largely improve the cycling stability of FeF 3 cathodes. The results demonstrate the advantages of using solid‐state concept to improve the cycling stability of conversion‐type cathodes.
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