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New Three-Dimensional Porous Electrode Concept: Vertically-Aligned Carbon Nanotubes Directly Grown on Embroidered Copper Structures

机译:新的三维多孔电极概念:在刺绣铜结构上直接生长的垂直排列的碳纳米管

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摘要

New three-dimensional (3D) porous electrode concepts are required to overcome limitations in Li-ion batteries in terms of morphology (e.g., shapes, dimensions), mechanical stability (e.g., flexibility, high electroactive mass loadings), and electrochemical performance (e.g., low volumetric energy densities and rate capabilities). Here a new electrode concept is introduced based on the direct growth of vertically-aligned carbon nanotubes (VA-CNTs) on embroidered Cu current collectors. The direct growth of VA-CNTs was achieved by plasma-enhanced chemical vapor deposition (PECVD), and there was no application of any post-treatment or cleaning procedure. The electrochemical behavior of the as-grown VA-CNTs was analyzed by charge/discharge cycles at different specific currents and with electrochemical impedance spectroscopy (EIS) measurements. The results were compared with values found in the literature. The as-grown VA-CNTs exhibit higher specific capacities than graphite and pristine VA-CNTs found in the literature. This together with the possibilities that the Cu embroidered structures offer in terms of specific surface area, total surface area, and designs provide a breakthrough in new 3D electrode concepts.
机译:需要新的三维(3D)多孔电极概念来克服锂离子电池在形态(例如形状,尺寸),机械稳定性(例如柔韧性,高电活性物质负荷)和电化学性能(例如,低体积能量密度和速率能力)。在此,基于垂直排列的碳纳米管(VA-CNT)在绣花Cu集电器上的直接生长,引入了新的电极概念。 VA-CNT的直接生长是通过等离子体增强化学气相沉积(PECVD)实现的,并且没有应用任何后处理或清洁程序。通过在不同比电流下的充电/放电循环以及电化学阻抗谱(EIS)测量,分析了所生长的VA-CNT的电化学行为。将结果与文献中的值进行比较。与文献中发现的石墨和原始VA-CNT相比,已生长的VA-CNT具有更高的比容量。这与Cu绣花结构在比表面积,总表面积和设计方面所提供的可能性一起,为新的3D电极概念提供了突破。

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