Xinhao Yang, Francisco Muñoz, Pamela Vargas, Teresa Palomar, Nataly C. Rosero-Navarro
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引用次数: 0
摘要
氟化物通常被认为是增强固态电池电解质电化学稳定性的界面添加剂。在本研究中,我们合成了硼酸锂玻璃状固体电解质,并研究了氟化铝(AlF3)的加入对其对锂金属电极稳定性的影响。样品保持其无定形性质,重达9.20 wt。玻璃中氟的百分比。硼酸锂玻璃,有或没有AlF3,表现出优异的电化学性能,在电流密度为0.01至1 mA cm(⁻²)时,在160°C下保持稳定的锂电压谱。值得注意的是,具有最高锂离子含量的硼酸锂玻璃具有最高的相对离子电导率,并且在对称LiǀglassǀLi电池中,在160°C下电流密度为1 mA cm⁻²时稳定循环长达500小时。然而,在硼酸锂玻璃中加入AlF3会显著影响其电化学稳定性。在长期的对称电池测试中,含有alf3的硼酸锂玻璃在0.3 mA cm(⁻²)下发生了短路,显示出意想不到的低稳定性。这些发现为评估氟掺入对固态电池电解质性能的影响提供了有价值的见解。
Electrochemical Stability and Ionic Conductivity of AlF3 Containing Lithium Borate Glasses: Fluorine Effect, Strength or Weakness?
Fluorides are commonly regarded as interfacial additives that enhance the electrochemical stability of solid-state battery electrolytes. In this study, we synthesized lithium borate glassy solid electrolytes and investigated the effect of adding aluminum fluoride (AlF3) on its stability against lithium metal electrodes. Samples maintained their amorphous nature, with up to 9.20 wt.% of fluorine in the glass. Lithium borate glasses, with and without AlF3, demonstrated an excellent electrochemical performance, sustaining a stable lithium voltage profile at current densities from 0.01 to 1 mA cm⁻² at 160°C. Notably, the lithium borate glass with the highest lithium ion content achieved the highest relative ionic conductivity and cycled stably for up to 500 h at current densities of 1 mA cm⁻² at 160°C in symmetric LiǀglassǀLi cells. However, the addition of AlF3 to lithium borate glass significantly compromises its electrochemical stability. In long-term symmetrical cell tests, the AlF3-containing lithium borate glass exhibited short-circuiting under 0.3 mA cm⁻², revealing unexpectedly poor stability. These findings offer valuable insights for evaluating the impact of fluorine incorporation on the performance of solid-state battery electrolytes.