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Solid-State Lithium and Li-Ion Batteries with Solid Nano-Composite Electrolytes

机译:具有固态纳米复合电解质的固态锂和锂离子电池

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摘要

Solid electrolytes with Li-ion conductivity exceeding 1 mS/cm are a prerequisite to enable solid-state Li-ion batteries. In solid composite electrolytes (SCEs), the interface between an ionic conductor and a dielectric matrix can be engineered to enhance this ionic conductivity. The solid composite electrolyte developed at imec contains a monolithic, mesoporous, silica matrix filled with a non-volatile ionic liquid and an organic Li-salt. The material is made by a sol-gel process, similar to that for ionogels, with that difference that no acid is used but water. The resulting aqueous gel is carefully dried from water and solvents, resulting in the solid nano-composite electrolyte where the ionic liquid and the lithium salt are confined in the pores and channels of the mesoporous silica matrix. The slow sol-gel reaction and drying allows the adsorption of an ordered molecular layer on the fully hydrolyzed silica surface. Interfacial ice layers induce strong adsorption and ordering of the ionic liquid molecules through H-bonding, rendering them immobile and solid-like as for the interfacial ice layer itself. The dipole over the adsorbate results in solvation of the Li+ ions for enhanced conduction. We demonstrate that when the silica surface is appropriately hydroxylated, the Li-ion conductivity of the nano-SCE can be several times higher than that of the pure ionic liquid electrolyte itself. By this process solid nano-SCEs with conductivities between 0.4 and 8 mS/cm have been realized.Cells can be made by impregnating the liquid sol-gel precursor solution inside the powder-based electrodes, very similar to the application of liquid electrolytes. The sol-gel reaction and drying take place in-situ inside the electrodes allowing the nano-SCE to fill the spaces and contract the porous electrode together, providing an all-around contact with the active material. As such, functional solid-state cells are demonstrated consisting of a nano-SCE with a TFSI-based ionic liquid and Li salt, LFP and NCA cathodes and Li, Li-alloy and LTO anodes. C-rate and cycling performance of the solid-state cells with the nano-SCE is shown.
机译:锂离子电导率超过1 mS / cm的固体电解质是启用固态锂离子电池的先决条件。在固体复合电解质(SCE)中,可以设计离子导体和介电基质之间的界面,以增强该离子导电性。在imec开发的固体复合电解质包含填充有非挥发性离子液体和有机锂盐的整体中孔二氧化硅基质。该材料是通过溶胶-凝胶工艺制成的,与离子凝胶类似,区别在于不使用酸而是用水。将所得的含水凝胶小心地从水和溶剂中干燥,得到固体纳米复合电解质,其中离子液体和锂盐被限制在中孔二氧化硅基质的孔和通道中。缓慢的溶胶-凝胶反应和干燥允许在完全水解的二氧化硅表面上吸附有序分子层。界面冰层通过氢键诱导离子液体分子的强烈吸附和有序排列,使它们像界面冰层本身一样不动且呈固体状。被吸附物上的偶极子会导致Li +离子的溶剂化,从而增强传导性。我们证明,当二氧化硅表面适当地羟基化时,纳米SCE的锂离子电导率可以比纯离子液体电解质本身的锂电导率高几倍。通过这种方法,已经实现了电导率在0.4和8 mS / cm之间的固态纳米SCE。可以通过将液态溶胶-凝胶前体溶液浸渍在粉末状电极内部来制备电池,这与液态电解质的应用非常相似。溶胶-凝胶反应和干燥在电极内部就地发生,从而使纳米SCE填充空间并使多孔电极收缩在一起,从而与活性材料实现全方位接触。这样,已证明功能性固态电池由具有TFSI基离子液体和Li盐的纳米SCE,LFP和NCA阴极以及Li,Li合金和LTO阳极组成。显示了具有纳米SCE的固态电池的C速率和循环性能。

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  • 来源
  • 会议地点 Strasbourg(FR)
  • 作者单位

    imec, Kapeldreef 75, Leuven, B-3001 Belgium;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium;

    Panasonic Corporation, Technology Innovation Division, 1006, Kadoma, Kadoma City, Osaka, 571-8508 Japan;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium,KU Leuven, Centre for Surface Chemistry and Catalysis, Leuven, B-3001 Belgium;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium;

    Panasonic Corporation, Technology Innovation Division, 1006, Kadoma, Kadoma City, Osaka, 571-8508 Japan;

    Panasonic Corporation, Technology Innovation Division, 1006, Kadoma, Kadoma City, Osaka, 571-8508 Japan;

    imec, Kapeldreef 75, Leuven, B-3001 Belgium,KU Leuven, Centre for Surface Chemistry and Catalysis, Leuven, B-3001 Belgium;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-26 14:32:39

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