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High-Energy All-Solid-State Lithium Batteries with Ultralong Cycle Life

机译:具有超长循环寿命的高能全固态锂电池

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High energy and power densities are the greatest challenge for all-solid-state lithium batteries due to the poor interfacial compatibility between electrodes and electrolytes as well as low lithium ion transfer kinetics in solid materials. Intimate contact at the cathode-solid electrolyte interface and high ionic conductivity of solid electrolyte are crucial to realizing high-performance all-solid-state lithium batteries. Here, we report a general interfacial architecture, i.e., Li7P3S11 electrolyte particles anchored on cobalt sulfide nanosheets, by an in situ liquid-phase approach. The anchored Li2P3S11 electrolyte particle size is around 10 nm, which is the smallest sulfide electrolyte particles reported to date, leading to an increased contact area and intimate contact interface between electrolyte and active materials. The neat Li7P3S11 electrolyte synthesized by the same liquid-phase approach exhibits a very high ionic conductivity of 1.5 x 10(-3) S cm(-1) with a particle size of 0.4-1.0 mu m. All-solid-state lithium batteries employing cobalt sulfide-Li7P3S11 nanocomposites in combination with the neat Li7P3S11 electrolyte and Super P as the cathode and lithium metal as the anode exhibit excellent rate capability and cycling stability, showing reversible discharge capacity of 421 mAh g(-1) at 1.27 mA cm(-2) after 1000 cycles. Moreover, the obtained all-solid-state lithium batteries possesses very high energy and power densities, exhibiting 360 Wh kg(-1) and 3823 W kg(-1) at current densities of 0.13 and 12.73 mA cm(-2), respectively. This contribution demonstrates a new interfacial design for all-solid-state battery with high performance.
机译:高能量和功率密度是全固态锂电池的最大挑战,这是因为电极和电解质之间的界面相容性差,以及固体材料中的锂离子传递动力学低。阴极-固体电解质界面的紧密接触和固体电解质的高离子电导率对于实现高性能全固态锂电池至关重要。在这里,我们报告了一种一般的界面结构,即通过原位液相方法锚定在硫化钴纳米片上的Li7P3S11电解质颗粒。锚定的Li2P3S11电解质颗粒尺寸约为10 nm,这是迄今为止报道的最小的硫化物电解质颗粒,导致电解质和活性材料之间的接触面积增加以及紧密的接触界面。通过相同的液相方法合成的纯净的Li7P3S11电解质显示出1.5 x 10(-3)S cm(-1)的极高离子电导率,粒径为0.4-1.0μm。采用硫化钴-Li7P3S11纳米复合材料与纯Li7P3S11电解质,Super P为阴极,锂金属为阳极的全固态锂电池具有出色的倍率性能和循环稳定性,可逆放电容量为421 mAh g(- 1)1000次循环后为1.27 mA cm(-2)。此外,所获得的全固态锂电池具有很高的能量和功率密度,在电流密度分别为0.13和12.73 mA cm(-2)时分别显示360 Wh kg(-1)和3823 W kg(-1)。 。这一贡献证明了用于高性能全固态电池的新界面设计。

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