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利用离子液体基中间层克服固态电池中固-固界面所带来的界面限制

Overcoming the Interfacial Limitations Imposed by the Solid-Solid Interface in Solid-State Batteries Using Ionic Liquid-Based Interlayers.

作者信息

Pervez Syed Atif, Kim Guktae, Vinayan Bhaghavathi P, Cambaz Musa A, Kuenzel Matthias, Hekmatfar Maral, Fichtner Maximilian, Passerini Stefano

机构信息

Helmholtz Institute Ulm, Helmholtzstraße, 11, Ulm, D-89081, Germany.

Karlsruhe Institute of Technology, P.O. Box 3640, Karlsruhe, D-76021, Germany.

出版信息

Small. 2020 Apr;16(14):e2000279. doi: 10.1002/smll.202000279. Epub 2020 Feb 27.

DOI:10.1002/smll.202000279
PMID:32105407
Abstract

Li-garnets are promising inorganic ceramic solid electrolytes for lithium metal batteries, showing good electrochemical stability with Li anode. However, their brittle and stiff nature restricts their intimate contact with both the electrodes, hence presenting high interfacial resistance to the ionic mobility. To address this issue, a strategy employing ionic liquid electrolyte (ILE) thin interlayers at the electrodes/electrolyte interfaces is adopted, which helps overcome the barrier for ion transport. The chemically stable ILE improves the electrodes-solid electrolyte contact, significantly reducing the interfacial resistance at both the positive and negative electrodes interfaces. This results in the more homogeneous deposition of metallic lithium at the negative electrode, suppressing the dendrite growth across the solid electrolyte even at high current densities of 0.3 mA cm . Further, the improved interface Li/electrolyte interface results in decreasing the overpotential of symmetric Li/Li cells from 1.35 to 0.35 V. The ILE modified Li/LLZO/LFP cells stacked either in monopolar or bipolar configurations show excellent electrochemical performance. In particular, the bipolar cell operates at a high voltage (≈8 V) and delivers specific capacity as high as 145 mAh g with a coulombic efficiency greater than 99%.

摘要

锂石榴石是用于锂金属电池的很有前景的无机陶瓷固体电解质,对锂金属阳极表现出良好的电化学稳定性。然而,它们脆性和坚硬的性质限制了它们与两个电极的紧密接触,因此对离子迁移呈现出高界面电阻。为了解决这个问题,采用了在电极/电解质界面处使用离子液体电解质(ILE)薄中间层的策略,这有助于克服离子传输的障碍。化学稳定的ILE改善了电极与固体电解质的接触,显著降低了正负极界面处的界面电阻。这导致金属锂在负极上更均匀地沉积,即使在0.3 mA cm的高电流密度下也能抑制穿过固体电解质的枝晶生长。此外,改善的锂/电解质界面使对称锂/锂电池的过电位从1.35 V降低到0.35 V。ILE改性的Li/LLZO/LFP电池以单极或双极配置堆叠时表现出优异的电化学性能。特别是,双极电池在高电压(≈8 V)下运行,具有高达145 mAh g的比容量,库仑效率大于99%。

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