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Free standing Si (Ge) nanowire/Cu nanowire composites as lithium ion battery anodes

机译:作为锂离子电池阳极的自由站立Si(GE)纳米线/ Cu纳米线复合材料

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摘要

Silicon (Si) and germanium (Ge) can alloy with lithium to achieve high theoretical specific capacities (3579 mAh/g for Li15Si4 and 1384 mAh/g for Li15Ge4), which are several times greater than commercial graphite (372 mAh/g). However, they exhibit significant volume and crystal structural change during cycling processes, leading to structural pulverization and loss of electrical conduction paths between individual active materials and current collector. We report a non-carbon based free standing electrodes fabricated by directly mixing Si and Ge nanowires with Cu nanowires as lithium ion battery anodes. The one dimensional nanostructure of Si (Ge) and Cu provide good charge transport along their length and many contact points were formed between NWs after annealing process. The nanowire composites have several advantages compared to the conventional electrode that slurry materials are coated on a metal foil. For example, the weight is lighter than conventional electrodes because it does not need a current collector and is fabricated without any additives, and binders. Moreover, the space among the nanowires can accommodate the volume contraction of Si (Ge) during alloying and dealloying process and enhance the electrolyte penetration. (C) 2019 Taiwan Institute of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:硅(Si)和锗(GE)可以合金与锂合作,以实现高理论特异性容量(3579mAh / g的Li15Si4和Li 15Ge4的1384mAh / g),这比商业石墨(372mAh / g)大数倍。然而,它们在循环过程中表现出显着的体积和晶体结构变化,导致各个活性材料和集电器之间的结构粉碎和导电路径的损失。我们通过用Cu纳米线用Cu纳米线作为锂离子电池阳极直接混合Si和Ge纳米线来报告非碳基的自由站电极。 Si(Ge)和Cu的一维纳米结构沿着它们的长度提供良好的电荷传输,并且在退火过程之后在NWS之间形成许多接触点。与浆料材料涂覆在金属箔上的常规电极相比,纳米线复合材料具有几个优点。例如,重量比传统电极轻,因为它不需要集电器,而没有任何添加剂和粘合剂制造。此外,纳米线之间的空间可以在合金化和造化过程中容纳Si(Ge)的体积收缩,并增强电解质渗透。 (c)2019年台湾化工工程师研究所。 elsevier b.v出版。保留所有权利。

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