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首页> 外文期刊>Journal of power sources >Electrochemical and Surface Chemistry Analysis of Lithium Lanthanum Zirconium Tantalum Oxide (LLZTCO/Liquid Electrolyte (LE) Interfaces
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Electrochemical and Surface Chemistry Analysis of Lithium Lanthanum Zirconium Tantalum Oxide (LLZTCO/Liquid Electrolyte (LE) Interfaces

机译:锂钛氮氧化锂锂锂锂氧化锆(LLZTCO /液体电解质(LE)界面的电化学和表面化学分析

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摘要

A stable solid electrolyte/liquid electrolyte (SE/LE) interface is essential to enable hybrid electrolytes, where the SE protects Li metal anodes and the LE improves SE/cathode interfacial kinetics. However, previous reports have shown that the promising SE Lithium Lanthanum Zirconium Tantalum Oxide (LLZTO) reacts with LiPF6-based state-of-the-art LEs. This work aims to identify the source of this instability and propose approaches to ameliorate it. This is achieved by studying and isolating the effects of organic solvents and Li salts present in the LE on LLZTO. The results indicate that the reactions with the typical solvents are not as detrimental as with the corresponding salts. For example, LiPF6 salt reacts with LLZTO to form LiF, LaF3 and ZrF4, which leads to an increased SE/LE interfacial resistance (R-interface). The R-interface after reacting with LiPF6 and LiBOB salts is similar to 120 and 2000 Ohms.cm(2), respectively. However, LiTFSI salt is compatible with LLZTO with R-interface similar to 55 Ohms.cm(2). Furthermore, optimization of the LiTFSI salt concentration (3 M) results in an Rinterface of similar to 30 Ohms.cm(2). We demonstrate preliminary cycling of Li/LLZTO/LE/NCA cells with similar to 100% utilization and 98.5% capacity retention over 10 cycles. Overall, this study provides a step towards the successful implementation of hybrid electrolytes in Li metal batteries.
机译:稳定的固体电解质/液态电解质(SE / Le)界面对于能够实现杂化电解质,其中Se保护Li金属阳极和LE改善SE /阴极界面动力学。然而,之前的报道表明,有前途的SE锂镧氧化锆氧化钽(LLZTO)与基于Lipf6的最新的LES反应。这项工作旨在确定这种不稳定的来源,并提出改善它的方法。这是通过在LLZTO上研究和分离有机溶剂和Li盐的影响来实现。结果表明,典型溶剂的反应不如与相应盐一样有害。例如,LiPF6盐与LLZTO反应形成LiF,LaF3和ZrF4,这导致综合抗性(R型接口)增加。与LiPF6和LiBoB盐反应后的R型接口分别类似于120和2000欧姆(2)。然而,LITFSI盐与LLZTO与R型接口相容,类似于55欧姆(2)。此外,LITFSI盐浓度(3M)的优化导致类似于30欧姆(2)的rinterface。我们证明了Li / LLZTO / LE / NCA细胞的初步循环,其利用率类似于100%和98.5%超过10个循环的容量潴留。总体而言,该研究为李金属电池中的混合电解质成功实施了一步。

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