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Rational design of spontaneous reactions for protecting porous lithium electrodes in lithium–sulfur batteries

机译:保护锂硫电池中多孔锂电极的自发反应的合理设计

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摘要

A rechargeable lithium anode requires a porous structure for a high capacity, and a stable electrode/electrolyte interface against dendrite formation and polysulfide crossover when used in a lithium-sulfur battery. Here, we design two simple steps of spontaneous reactions for protecting porous lithium electrodes. First, a reaction between molten lithium and sulfur-impregnated carbon nanofiber forms a fibrous network with a lithium shell and a carbon core. Second, we coat the surface of this porous lithium electrode with a composite of lithium bismuth alloys and lithium fluoride through another spontaneous reaction between lithium and bismuth trifluoride, solvated with phosphorous pentasulfide, which also polymerizes with lithium sulfide residual in the electrode to form a solid electrolyte layer. This protected porous lithium electrode enables stable operation of a lithium-sulfur battery with a sulfur loading of 10.2 mg cm−2 at 6.0 mA cm−2 for 200 cycles.
机译:当用于锂硫电池时,可再充电锂阳极需要具有高容量的多孔结构,并且需要稳定的电极/电解质界面以防止枝晶形成和多硫化物交叉。在这里,我们设计了两个简单的自发反应步骤来保护多孔锂电极。首先,熔融锂和硫磺浸渍的碳纳米纤维之间的反应形成具有锂壳和碳核的纤维网络。其次,通过锂与三氟化铋之间的另一种自发反应,用五硫化二磷溶剂化,用锂铋合金和氟化锂的复合材料覆盖该多孔锂电极的表面,该五硫化二磷还与电极中残留的硫化锂聚合形成固体。电解质层。这种受保护的多孔锂电极可以使硫载量为10.2 mg cm -2 的锂离子电池在6.0 mA cm -2 下稳定运行200个循环。

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