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Nickel Cobalt Hydroxide @Reduced Graphene Oxide Hybrid Nanolayers for High Performance Asymmetric Supercapacitors with Remarkable Cycling Stability

机译:氢氧化镍钴@还原石墨烯氧化物杂化纳米层,用于高性能非对称超级电容器,具有出色的循环稳定性

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摘要

Nanolayered structures present significantly enhanced electrochemical performance by facilitating the surface -dependent electrochemical reaction processes for super capacitors, which, however, causes capacitance fade upon cycling due to their poor chemical stability. In this work, we report a simple and effective approach to develop a stable, high performance electrode material by integrating 2D transition metal hydroxide and reduced graphene oxide sheets at nanometer scale. Specifically, a hybrid nanolayer of Ni-Co hydroxide @reduced graphene oxide (Ni,Co OH/rGO) with an average thickness of 1.37 nm is synthesized through an easy one -pot hydrothermal method. Benefiting from the face to face contact model between Ni-Co hydroxide and rGO sheets, such unique structure presents superior specific capacitance and cycling performance as compared to the pure Ni-Co hydroxide nanolayers. An asymmetric supercapacitor based on Ni,Co-OH/rGO and three-dimensional (3D) hierarchical porous carbon is developed, exhibiting a high energy density of 56.1 Wh kg(-1) along with remarkable cycling stability (80% retention after 17 000 cycles), which holds great promise for practical applications in energy storage devices.
机译:纳米层结构通过促进超级电容器的表面依赖性电化学反应过程而呈现出显着增强的电化学性能,但是由于其不良的化学稳定性,其在循环时引起电容衰减。在这项工作中,我们报告了一种简单有效的方法,该方法通过在纳米级集成2D过渡金属氢氧化物和还原氧化石墨烯片来开发稳定,高性能的电极材料。具体地,通过简单的一锅水热法合成平均厚度为1.37nm的Ni-Co氢氧化物还原的氧化石墨烯(Ni,Co OH / rGO)的杂化纳米层。得益于Ni-Co氢氧化物和rGO片材之间的面对面接触模型,与纯Ni-Co氢氧化物纳米层相比,这种独特的结构具有出色的比电容和循环性能。开发了一种基于Ni,Co-OH / rGO和三维(3D)分层多孔碳的不对称超级电容器,具有56.1 Wh kg(-1)的高能量密度以及出色的循环稳定性(17 000后保留80%周期),这在储能设备的实际应用中具有广阔的前景。

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