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A versatile electrochemical method to synthesize Co-CoO core-shell nanowires anodes for lithium ion batteries with superior stability and rate capability

机译:一种具有优异稳定性和速率能力的锂离子电池用锂离子电池合成Co-CoO核 - 壳纳米线阳极的多功能电化学方法

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摘要

A novel electrochemical method is proposed to synthesize nanostructured cobalt electrodes for lithium-ion batteries (LIBs). An array of cobalt nanowires (CoNWs) supported by a nanostructured copper current collector was obtained by the sequential electrodeposition of cobalt and copper into the nanopores of alumina templates and selective etching of alumina. The illustrated method can be implemented with one-side open alumina templates generated by one-step aluminium anodization, thus excluding the application alumina membranes and their coating by sputter metal deposition. The cobalt electrodeposition conditions allow to directly form Co-CoO core-shell nanowires, with metallic cobalt nanowires covered by a thin cobalt oxide film. The direct electrochemical growth of copper nanowires connected to CoNWs ensured high electronic conductivity and specific surface area of the resulting electrode, leading to a low interfacial impedance when used in lithium cell. This nanostructure and the enhanced lithium diffusion enabled by the nanowires morphology contributed to achieve a specific capacity of 1500?mAhg?1after 200 cycles at 2?Ag-1, and complete restore of the capacity at 2?Ag-1after cycling at the ultra-high current density of 450?Ag-1. The faradaic and capacitive contributions to charge storage were estimated by the analysis of cyclic voltammetry experiments carried out at different scan rates. Based on this latter analysis, pseudo-capacitive effects appear to play a pivotal role in determining the total recorded capacity. The advantages of the proposed method to sustain the large scale application of nanowires electrodes in lithium batteries are thoroughly discussed.
机译:提出了一种新型电化学方法,用于合成用于锂离子电池(LIBS)的纳米结构钴电极。由纳米结构铜集电器支撑的钴纳米线(CONWS)的阵列通过钴和铜的顺序电沉积在氧化铝模板的纳米孔中获得和氧化铝的选择性蚀刻。所示的方法可以用一步开放的氧化铝模板用一步铝阳极氧化产生的一侧开放氧化铝模板来实现,因此通过溅射金属沉积涂覆氧化铝膜及其涂层。钴电沉积条件允许直接形成Co-CoO核 - 壳纳米线,其中金属钴纳米线被薄钴氧化物膜覆盖。连接到CONWS的铜纳米线的直接电化学生长确保了当在锂电池中使用时的高电子导电性和比表面积,导致低界面阻抗。通过纳米线形态实现的该纳米结构和增强的锂扩散有助于在2〜Ag-1的特定容量下达到1500℃的特定容量,并在超微循环的循环时完全恢复容量。高电流密度为450?Ag-1。通过在不同扫描速率下进行的循环伏安法实验分析循环伏安法实验来估算对电荷存储的游艇和电容贡献。基于后一种分析,伪电容效应似乎在确定总记录的容量方面发挥关键作用。彻底讨论了所提出的方法来维持锂电池中纳米线电极的大规模应用的优点。

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