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Conductivity Optimization of Tysonite-type La1-xBaxF3-x Solid Electrolytes for Advanced Fluoride Ion Battery

机译:用于先进氟离子电池的卵岩型La1-XbaxF3-X固体电解质的电导率优化

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Use of lithium ion batteries is currently the method of choice when it comes to local stationary storage of electrical energy. In the search for an alternative system; fluoride ion batteries (FIBs) emerge as a candidate due to their high theoretical capacity, and no lithium is needed for its operation. To improve the cycling performance and lower the working temperature of a solid-state battery, one of the critical components is the electrolyte, which needs advanced performance. This paper aims at developing an electrolyte with enhanced ionic conductivity for fluoride ions, to be used in a FIB. Tysonite La1-xBaxF3-x, (0 <= x <= 0.15) solid solutions were synthesized by a facile wet chemical method, and its ionic conductivity was analyzed using electrochemical impedance spectroscopy. A composition study shows that the conductivity reaches a maximum of 1.26 X 10(-4) S.cm(-1) at 60 degrees C for the La0.95Ba0.05F2.95 pellet sintered at 800 degrees C for 20 h, Which is 1 order of magnitude higher than that for the as prepared pellet and 2 times higher than the conductivity of sintered ball-milled batches. The reason for this dramatic increment is the more efficient decrement of grain boundary resistance upon sintering. Morphological, chemical, and structural characterizations of solid electrolytes were studied by X-ray diffraction, scanning electron microscopy, energy dispersive Xray spectroscopy, physisorption by the Brunauer-Emmett-Teller method, and transmission electron microscopy. Electrochemical testing was carried out for the FIB cell using La0.95Ba0.05F2.95 as electrolyte due to its highest conductivity among the compositions, Ce as anode, and BiF3 as a cathode. The cycling performance was found to be considerably improved when compared to our earlier work, which used the ball-milled electrolyte.
机译:使用锂离子电池是目前谈到局部静止存储电能的选择方法。在寻找替代系统;氟离子电池(FIB)由于其高理论能力而作为候选者出现,并且不需要运行所需的锂。为了提高循环性能并降低固态电池的工作温度,关键部件之一是需要先进的性能的电解质。本文旨在开发具有增强的离子电导率的电解质,用于氟离子,以用于FIB。通过容易湿化学方法合成卵岩LA1-XbaxF3-X(0 <= x <= 0.15)固溶体,使用电化学阻抗光谱分析其离子电导率。组合物研究表明,在800℃下烧结20小时,电导率在60摄氏度下达到最多1.26×10(-4)S.cm(-1)。对于制备颗粒的1个数量级高,比烧结球磨批次的电导率高2倍。这种显着增量的原因是烧结时更有效地减少晶界阻力。通过X射线衍射,扫描电子显微镜,能量分散X射线光谱,由Brunauer-Emmett-Teller方法的理由和透射电子显微镜研究了固体电解质的形态学,化学和结构表征。使用La0.95ba0.05f2.95作为电解质对FIB电池进行电化学测试由于其组合物,Ce作为阳极的最高导电,并且Bif 3作为阴极。与我们之前的工作相比,发现循环性能相比,在使用滚珠碾磨的电解质的比较时得到了大大改善。

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