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Potentiostatic and Galvanostatic Electrodeposition of Manganese Oxide for Supercapacitor Application: A Comparison Study

机译:超级电容器应用中锰氧化物的恒电和恒电沉积:比较研究

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摘要

The structural and electrochemical properties of manganese oxide (MnO2) electrodeposited by potentiostatic and galvanostatic conditions are studied. X‒ray diffraction analyses confirm identical MnO2 phase (ramsdellite) are deposited under potentiostatic and galvanostatic conditions. Under comparable current density during electrodeposition, MnO2 deposited by galvanostatic condition shows smaller crystallite size, less compact layered structure, higher surface area and wider band gap, in comparison to the potentiostatic deposition. The MnO2 morphology difference under different electrodeposition conditions contributes to different capacitive behaviors. The lower compactness of MnO2 deposited galvanostatically renders facile ions diffusion, leading to higher specific capacitance with low equivalent series resistance. The findings suggest galvanostatic electrodeposition is suitable to produce MnO2 nanostructure for supercapacitor application.
机译:研究了在恒电位和恒电流条件下电沉积锰氧化物(MnO2)的结构和电化学性能。 X射线衍射分析证实在恒电位和恒电流条件下沉积了相同的MnO2相(斜方锰矿)。在电沉积过程中可比较的电流密度下,与恒电位沉积相比,通过恒电流条件沉积的MnO2显示出较小的微晶尺寸,较少的层状结构,较高的表面积和较宽的带隙。不同电沉积条件下的MnO2形态差异会导致不同的电容行为。沉积于恒电流中的MnO2的较低致密性使其易于离子扩散,从而导致较高的比电容和较低的等效串联电阻。这些发现表明,恒电流电沉积适合于生产用于超级电容器的MnO2纳米结构。

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