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Preparation and performance study of a PVDF–LATP ceramic composite polymer electrolyte membrane for solid-state batteries

机译:固态电池PVDF-LATP陶瓷复合高分子电解质膜的制备及性能研究

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Recently, safety issues in conventional organic liquid electrolytes and the interface resistance between the electrode and electrolyte have been the most challenging barriers for the expansion of lithium batteries to a wide range of applications. Here, an ion-conductive PVDF-based composite polymer electrolyte (CPE) consisting of lithium aluminum germanium phosphate (Li _(1.3) Al _(0.3) Ti _(1.7) (PO _(4) ) _(3) ) and polyvinylidene fluoride (PVDF) is prepared on a Li metal anode via a facile casting method. The ionic conductivity and electrochemical stability were enhanced by incorporating an appropriate amount of LATP into the PVDF-based composite polymer electrolyte, and the optimum content of LATP in the hybrid solid electrolyte was approximately 90 wt%. The corresponding solid-state battery based on an SEI-protected Li anode, the PVDF–LATP electrolyte, and a LiMn _(2) O _(4) (LMO) cathode exhibited excellent rate capability and long-term cycling performance, with an initial discharge capacity of 107.4 mA h g ~(?1) and a retention of 91.4% after 200 cycles.
机译:近来,常规有机液体电解质的安全性问题以及电极与电解质之间的界面电阻已成为锂电池向广泛应用扩展的最具挑战性的障碍。在此,由磷酸锂铝锗(Li _(1.3)Al _(0.3)Ti _(1.7)(PO _(4)_(3))和聚偏二氟乙烯(PVDF)通过便捷的铸造方法在锂金属阳极上制备。通过将适量的LATP掺入PVDF基复合聚合物电解质中,可以提高离子电导率和电化学稳定性,并且在混合固体电解质中LATP的最佳含量约为90 wt%。基于SEI保护的Li阳极,PVDF-LATP电解质和LiMn _(2)O _(4)(LMO)阴极的相应固态电池具有出色的倍率性能和长期循环性能,初始放电容量为107.4 mA hg〜(?1),在200个循环后的保留率为91.4%。

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