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Enhanced Supercapacitive Performance of Higher-Ordered 3D-Hierarchical Structures of Hydrothermally Obtained ZnCo2O4 for Energy Storage Devices

机译:储能装置水热获得ZnCo2O4的高阶3D层级结构的超电容性能增强

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摘要

The demand for eco-friendly renewable energy resources as energy storage and management devices is increased due to their high-power density and fast charge/discharge capacity. Recently, supercapacitors have fascinated due to their fast charge–discharge capability and high-power density along with safety. Herein, the authors present the synthesis of 3D-hierarchical peony-like ZnCo O structures with 2D-nanoflakes by a hydrothermal method using polyvinylpyrrolidone. The reaction time was modified to obtain two samples (ZCO-6h and ZCO-12h) and the rest of the synthesis conditions were the same. The synthesized structures were systematically studied through various techniques: their crystalline characteristics were studied through XRD analysis, their morphologies were inspected through SEM and TEM, and the elemental distribution and oxidation states were studied by X-ray photoelectron spectroscopy (XPS). ZCO-12h sample has a larger surface area (55.40 m ·g ) and pore size (24.69 nm) than ZCO-6h, enabling high-speed transport of ions and electrons. The ZCO-12h electrode showed a high-specific capacitance of 421.05 F·g (31.52 C·g ) at 1 A·g and excellent cycle performance as measured by electrochemical analysis. Moreover, the morphologic characteristics of the prepared hierarchical materials contributed significantly to the improvement of specific capacitance. The excellent capacitive outcomes recommend the 3D-ZnCo O hierarchical peony-like structures composed of 2D-nanoflakes as promising materials for supercapacitors with high-performance.
机译:由于其高功率密度和快速充电/放电容量,对作为能源存储和管理设备的环保型可再生能源的需求不断增加。近年来,超级电容器因其快速的充电和放电能力,高功率密度以及安全性而着迷。本文中,作者介绍了使用聚乙烯吡咯烷酮通过水热法合成具有2D纳米片的3D层次牡丹状ZnCo O结构。修改反应时间以获得两个样品(ZCO-6h和ZCO-12h),其余合成条件相同。通过各种技术对合成结构进行了系统研究:通过XRD分析了其晶体特性,通过SEM和TEM检查了它们的形貌,并通过X射线光电子能谱(XPS)研究了元素的分布和氧化态。 ZCO-12h样品比ZCO-6h具有更大的表面积(55.40 m·g)和孔径(24.69 nm),可实现离子和电子的高速传输。 ZCO-12h电极在1 A·g下显示出高比电容为421.05 F·g(31.52 C·g),并且通过电化学分析测得的电极具有出色的循环性能。而且,所制备的分级材料的形态特征显着地有助于比电容的改善。出色的电容性结果推荐由2D纳米片组成的3D-ZnCo O分层牡丹状结构,是高性能超级电容器的有希望的材料。

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