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Optimization of MnO2/CNW composite electrodes for energy storage application

机译:MnO2 / CNW复合电极优化储能应用

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Nanostructured MnO2 thin films were electrodeposited on carbon nanowalls (CNWs), which were grown first by microwave plasma enhanced chemical vapor deposition (MPECVD) on three-dimensional nickel foam substrates. The optimization theme for producing composite MnO2/CNW on large area electrodes for electrochemical supercapacitors is presented. The MnO2/CNW nanocomposite electrodes were characterized by X-ray diffraction, Raman spectroscopy, scanning electron microscopy, cyclic voltammetry, galvanostatic charge-discharge, and electrochemical impedance spectroscopy. The control of the growth time of CNW is found to be key point for the optimization of the MnO2 electrodeposition process in view to enhance the supercapacitive behavior of MnO2/CNW nanocomposite electrodes. The capacitive behavior and morphology of MnO2 were strongly affected by the incorporation of CNWs. The MnO2/CNW nanocomposite electrodes showed better rate capability than MnO2 electrode. The MnO2/CNW nanocomposite electrode with CNW deposition time, 18 sec, showed the optimum capacitive behaviour. A specific capacitance of 851 F/g at a current density of 1 mA/cm2, equivalent series resistance of 3.19 Ω, and charge transfer resistance of 1.02 Ω are obtained for MnO2/CNW (18 sec) electrode. This electrode also retained a stable capacitance, as its loss is only 8 % over 2000 cycles by charging and discharging at 3 mA/cm2, indicative of long term electrochemical cycling stability which suggests its possible choice as a promising electrode for supercapacitors.
机译:纳米结构MNO 2 薄膜在碳纳米瓦尔(CNW)上电沉积,通过微波等离子体增强的三维镍泡沫基板上的微波等离子体增强的化学气相沉积(MPECVD)在碳纳米瓦尔(CNW)上。提出了用于电化学超级电容器大面积电极上制造复合MnO 2 / CNW的优化主题。通过X射线衍射,拉曼光谱,扫描电子显微镜,循环伏安法,电镀电荷 - 放电和电化学阻抗光谱,以及电化学阻抗光谱,表征MNO 2 / CNW纳米复合电极。发现CNW的生长时间的控制是用于优化MnO 2 电沉积工艺的关键点,以提高MnO 2 / CNW纳米复合材料的超级电容性行为电极。 MnO 2 的电容性行为和形态受CNW掺入的影响。 MNO 2 / CNW纳米复合电极显示出比MNO 2 电极更好的速率能力。 MNO 2 / CNW纳米复合电极具有CNW沉积时间,18秒,显示出最佳的电容性能。在电流密度为1mA / cm 2 ,等效串联电阻为3.19Ω的特定电容,并且为MnO 2获得1.02Ω的电荷转移电阻 / CNW(18秒)电极。该电极还保留了稳定的电容,因为其损耗仅通过充电和排出3mA / cm 2 ,表示长期电化学循环稳定性,这表明其可能选择其选择超级电容器的有希望的电极。

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