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Electrodeposited Cu/MWCNT composite-film: a potential current collector of silicon-based negative-electrodes for Li-Ion batteries

机译:电沉积Cu / MWCNT复合膜:锂离子电池硅基负极的潜在集电器

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摘要

With the aim of developing the potential high theoretical capacity of Si as a negative electrode material for Li-ion batteries, a new type of composite current collector in which multi-walled carbon nanotubes (MWCNTs) are immobilized on a Cu surface was developed using an electroplating technique. For the Si electrode with a flat-Cu substrate, voltage plateaus related to the stepwise electrochemical lithiation were observed below 0.27 V ( vs. Li/Li ~(+) ), whereas the Cu/MWCNT substrate distinctly decreased the overvoltage to enhance charge/discharge capacities to approximately 1.6 times that obtained in the flat-Cu system. Field-emission scanning microscopy revealed that MWCNTs immobilized on the Cu surface extended inside the active material layer. Adhesion strength between the substrate and electrode mixture layer was reinforced by MWCNTs to increase the reversibility of change in electrode thickness before and after cycling: the expansion ratio was 200% and 134% for flat-Cu and Cu/MWCNT systems, respectively. Electrochemical impedance analysis demonstrated that MWCNTs served as an electron conduction pathway inside the electrode. By controlling the upper cutoff voltage from 2.0 V to 0.5 V, synergetic effects including improved adhesion strength and a more developed conduction pathway became noticeable: a reversible capacity of 1100 mA h g ~(?1) with 64% capacity retention was achieved even after the 100th cycle. The results indicate that the Cu/MWCNT is a promising current collector for expansion/contraction-type active materials for rechargeable batteries.
机译:为了开发作为锂离子电池负极材料的潜在的高理论容量的硅,开发了一种新型复合集电器,其中使用碳纳米管将多壁碳纳米管(MWCNT)固定在Cu表面上。电镀技术。对于具有平坦Cu衬底的Si电极,在0.27 V(vs. Li / Li〜(+))以下观察到与逐步电化学锂化有关的电压平稳期,而Cu / MWCNT衬底明显降低了过电压以增强电荷/放电容量约为扁平铜系统的1.6倍。场发射扫描显微镜显示,固定在Cu表面上的MWCNT在活性材料层内延伸。 MWCNT增强了基材和电极混合物层之间的粘合强度,从而提高了循环前后电极厚度变化的可逆性:扁平Cu和Cu / MWCNT系统的膨胀率分别为200%和134%。电化学阻抗分析表明,MWCNTs充当电极内部的电子传导途径。通过将最高截止电压控制在2.0 V至0.5 V,协同效应,包括改善的粘合强度和更发达的导电路径变得很明显:即使在高压处理后,仍可实现1100 mA hg〜(?1)的可逆容量和64%的容量保持率。第100个周期。结果表明,Cu / MWCNT是用于可再充电电池的膨胀/收缩型活性材料的有希望的集电器。

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