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Multishelled Nickel-Cobalt Oxide Hollow Microspheres with Optimized Compositions and Shell Porosity for High-Performance Pseudocapacitors

机译:高性能伪电容器的优化成分和壳孔率的多壳镍钴氧化物空心微球

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Nickel-cobalt oxides/hydroxides have been considered as promising electrode materials for a high-performance supercapacitor. However, their energy density and cycle stability are still very poor at high current density. Moreover, there are few reports on the fabrication of mixed transition-metal oxides with multishelled hollow structures. Here, we demonstrate a new and flexible strategy for the preparation of hollow Ni-Co-O microspheres with optimized Ni/Co ratios, controlled shell porosity, shell numbers, and shell thickness. Owing to its high effective electrode area and electron transfer number (n(3/2) A), mesoporous shells, and fast electron/ion transfer, the triple-shelled Ni-Co-1.5-O electrode exhibits an ultrahigh capacitance (1884 F/g at 3A/g) and rate capability (77.7%, 3-30A/g). Moreover, the assembled sandwiched Ni-Co-1.5-O//RGO@Fe3O4 asymmetric supercapacitor (ACS) retains 79.4% of its initial capacitance after 10 000 cycles and shows a high energy density of 41.5 W h kg(-1) at 505 W kg(-1). Importantly, the ACS device delivers a high energy density of 22.8 W h kg(-1) even at 7600 W kg(-1), which is superior to most of the reported asymmetric capacitors. This study has provided a facile and general approach to fabricate Ni/Co mixed transition-metal oxides for energy storage.
机译:镍-钴氧化物/氢氧化物已被认为是用于高性能超级电容器的有前途的电极材料。但是,它们的能量密度和循环稳定性在高电流密度下仍然非常差。此外,关于具有多壳空心结构的混合过渡金属氧化物的制备的报道很少。在这里,我们展示了一种新型且灵活的策略,用于制备具有优化的Ni / Co比,可控的壳体孔隙率,壳体数量和壳体厚度的空心Ni-Co-O微球。由于其高有效电极面积和电子转移数(n(3/2)A),介孔壳以及快速的电子/离子转移,三层Ni-Co-1.5-O电极表现出超高电容(1884 F / g(3A / g)和速率能力(77.7%,3-30A / g)。此外,组装的夹层式Ni-Co-1.5-O//RGO@Fe3O4不对称超级电容器(ACS)在1万次循环后仍保留其初始电容的79.4%,并在505时显示41.5 W h kg(-1)的高能量密度体重(-1)。重要的是,即使在7600 W kg(-1)的情况下,ACS装置仍可提供22.8 W h kg(-1)的高能量密度,这优于大多数报道的非对称电容器。这项研究提供了一种简便而通用的方法来制造用于能量存储的Ni / Co混合过渡金属氧化物。

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