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Towards Scalable Binderless Electrodes: Carbon Coated Silicon Nanofiber Paper via Mg Reduction of Electrospun SiO2 Nanofibers

机译:迈向可伸缩的无粘结剂电极:通过电纺制SiO2纳米纤维的Mg降低碳包覆的硅纳米纤维纸

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摘要

The need for more energy dense and scalable Li-ion battery electrodes has become increasingly pressing with the ushering in of more powerful portable electronics and electric vehicles (EVs) requiring substantially longer range capabilities. Herein, we report on the first synthesis of nano-silicon paper electrodes synthesized via magnesiothermic reduction of electrospun SiO2 nanofiber paper produced by an in situ acid catalyzed polymerization of tetraethyl orthosilicate (TEOS) in-flight. Free-standing carbon-coated Si nanofiber binderless electrodes produce a capacity of 802 mAh g−1 after 659 cycles with a Coulombic efficiency of 99.9%, which outperforms conventionally used slurry-prepared graphite anodes by over two times on an active material basis. Silicon nanofiber paper anodes offer a completely binder-free and Cu current collector-free approach to electrode fabrication with a silicon weight percent in excess of 80%. The absence of conductive powder additives, metallic current collectors, and polymer binders in addition to the high weight percent silicon all contribute to significantly increasing capacity at the cell level.
机译:随着越来越强大的便携式电子产品和电动汽车(EV)的出现,它们需要更大的续航能力,因此对能量密度更高和可伸缩的锂离子电池电极的需求日益迫切。在此,我们报道了通过在原位酸催化飞行中原硅酸四乙酯(TEOS)聚合生产的静电纺丝SiO2纳米纤维纸的镁热还原法合成的纳米硅纸电极的首次合成。自立式碳包覆的Si纳米纤维无粘结剂电极在659次循环后可产生802 mAh g -1 的容量,库伦效率为99.9%,比传统使用的浆料制备石墨阳极高出两倍以上以活性物质为基础。硅纳米纤维纸阳极提供了一种完全无粘合剂和无铜集电器的电极制造方法,硅重量百分比超过80%。除了高重量百分比的硅之外,不存在导电粉末添加剂,金属集电器和聚合物粘合剂都有助于显着提高电池水平的容量。

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