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首页> 外文期刊>Electrochimica Acta >Sputtered Synthesis of MnO2 Nanorods as Binder Free Electrode for High Performance Symmetric Supercapacitors
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Sputtered Synthesis of MnO2 Nanorods as Binder Free Electrode for High Performance Symmetric Supercapacitors

机译:溅射合成MnO2纳米棒作为高性能对称超级电容器的无粘结剂电极

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摘要

Among numerous active electrode materials, manganese oxides are promising electrodes in super-capacitors. Manganese oxides research has thus far focused on the synthesis of one-dimensional (1-D) metal oxide nanostructured materials, which can have superior electrochemical performance. Several chemical methods are used to synthesize metal oxide nanostructured which involve toxic reagents, solvents and introduction of byproducts. However, physical method offers an eco-friendly path to develop contamination free 1-D metal oxide nanostructured materials. Here, we report the fabrication of binder free supercapacitor electrode of MnO2 nanorods on Nickel (Ni) coated porous anodic aluminum oxide (AAO) by DC magnetron sputtering for first time. Ni coated porous AAO substrate act as excellent current collector, enhancing the specific capacitance of MnO2 to 649 F/g. The binder free symmetric supercapacitor device delivered a high areal capacitance (112.6 mF/cm(2)), specific capacitance (194.23 Fg(-1)), good cyclic ability (89.83%) retention in capacitance after 5000 cycles), energy density (4.2 Whkg(-1)), and power density (1.4 kWkg(-1) at 0.718 Whkg(-1)). These outstanding electrochemical performances, suggest their tremendous potential as supercapacitor electrode in energy storage application. (C) 2016 Published by Elsevier Ltd.
机译:在众多的活性电极材料中,锰氧化物是超级电容器中很有希望的电极。迄今为止,锰氧化物的研究一直集中于一维(1-D)金属氧化物纳米结构材料的合成,该材料可以具有优异的电化学性能。几种化学方法用于合成纳米结构的金属氧化物,包括有毒试剂,溶剂和副产物的引入。然而,物理方法为开发无污染的一维金属氧化物纳米结构材料提供了一条生态友好的道路。在这里,我们首次报道了通过直流磁控溅射在镍(Ni)涂层多孔阳极氧化铝(AAO)上制备MnO2纳米棒的无粘合剂超级电容器电极的过程。镀镍多孔AAO基板可作为出色的集电器,将MnO2的比电容提高到649 F / g。无粘结剂的对称超级电容器装置提供了高的面电容(112.6 mF / cm(2)),比电容(194.23 Fg(-1)),良好的循环能力(5000循环后保留在电容中的循环能力(89.83%)),能量密度( 4.2 Whkg(-1))和功率密度(0.718 Whkg(-1)时为1.4 kWkg(-1))。这些出色的电化学性能表明它们在储能应用中作为超级电容器电极具有巨大的潜力。 (C)2016由Elsevier Ltd.出版

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