首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Enhanced electrochemical performance of hybrid SnO2@MOx (M = Ni, Co, Mn) core-shell nanostructures grown on flexible carbon fibers as the supercapacitor electrode materials
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Enhanced electrochemical performance of hybrid SnO2@MOx (M = Ni, Co, Mn) core-shell nanostructures grown on flexible carbon fibers as the supercapacitor electrode materials

机译:混合SnO2 @ MOx(M = Ni,Co,Mn)核壳纳米结构在柔性碳纤维上生长作为超级电容器电极材料的增强电化学性能

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摘要

In this study, hierarchical SnO2@MOx (SnO2@NiO, SnO2@Co3O4, and SnO2@MnO2) heterostructures grown on carbon cloth (CC) for high performance supercapacitors were fabricated by a two-step solution-based method involving a hydrothermal process and a chemical bath deposition, which utilizes the better electronic conductivity of SnO2 nanosheets as the supporting backbone to deposit MOx for supercapacitor electrodes. Particularly, the as-formed SnO2@MOx heterostructure electrodes showed better electrochemical performance than bare SnO2 nanosheets. Remarkably, the SnO2@MnO2 heterostructure electrode showed the highest discharge areal capacitance (980 mF cm(-2) at 1 mA cm(-2)), good rate capability (still 767 mF cm(-2) at 20 mA cm(-2)), and excellent cycling stability (similar to 21.9% loss after 6000 repetitive cycles at a charge-discharge current density of 1 mA cm(-2)). The enhanced pseudocapacitive performance was mainly attributed to its unique hybrid structure, which provides fast ion and electron transfer, a large number of active sites, and good strain accommodation. The excellent electrochemical performance of the as-obtained heterostructures will undoubtedly make these hybrid structures attractive for high performance supercapacitors with high power and energy densities.
机译:在这项研究中,分层的SnO2 @ MOx(SnO2 @ NiO,SnO2 @ Co3O4和SnO2 @ MnO2)异质结构生长在碳布(CC)上,用于高性能超级电容器,是通过两步基于溶液的方法进行的,涉及水热过程,化学浴沉积,它利用SnO2纳米片的更好的电导率作为支撑骨架来沉积用于超级电容器电极的MOx。特别地,形成的SnO2 @ MOx异质结构电极显示出比裸露的SnO2纳米片更好的电化学性能。值得注意的是,SnO2 @ MnO2异质结构电极显示出最高的放电面积电容(在1 mA cm(-2)时为980 mF cm(-2)),良好的倍率能力(在20 mA cm(-时仍为767 mF cm(-2)) 2))和出色的循环稳定性(类似于在1 mA cm(-2)的充放电电流密度下重复6000次循环后损失21.9%)。伪电容性能的提高主要归因于其独特的混合结构,该结构提供了快速的离子和电子转移,大量的活性位点以及良好的应变适应性。如此获得的异质结构的优异电化学性能无疑将使这些混合结构对具有高功率和能量密度的高性能超级电容器具有吸引力。

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