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一种基于泡沫镍上三维ZnMoO/CoO纳米杂化物的高性能不对称超级电容器电极。

A high-performance asymmetric supercapacitor electrode based on a three-dimensional ZnMoO/CoO nanohybrid on nickel foam.

作者信息

Li Pengxi, Ruan Chaohui, Xu Jing, Xie Yibing

机构信息

School of Chemistry and Chemical Engineering, Southeast University, Nanjing, 211189, China.

出版信息

Nanoscale. 2019 Jul 28;11(28):13639-13649. doi: 10.1039/c9nr03784e. Epub 2019 Jul 10.

Abstract

A two-step hydrothermal route was employed to fabricate a ZnMoO/CoO nanohybrid supported on Ni foam. The ZnMoO/CoO nanohybrid shows a three-dimensional criss-crossed structure. The specific surface area is enhanced from 45 m g of ZnMoO to 67 m g of the ZnMoO/CoO nanohybrid. Furthermore, the existence of electroactive CoO is in favor of reducing the charge transport resistance. The ZnMoO/CoO nanohybrid electrode possesses a high capacitance of 4.47 F cm at 2 mA cm, which is much higher than those of ZnMoO (1.07 F cm) and CoO (2.47 F cm). The ZnMoO/CoO nanohybrid electrode also exhibits an ultrahigh cycling stability with 100.5% capacitance retention after 5000 cycles at 20 mA cm. In addition, an asymmetric all-solid-state supercapacitor was assembled using the ZnMoO/CoO nanohybrid as the positive electrode and exfoliated graphite carbon paper as the negative electrode. The asymmetric supercapacitor exhibits a superior energy density of 58.6 W h kg at a power density of 800 W kg and a considerable cycling stability with 81.8% capacitance retention after 5000 cycles at 5 A g. The ZnMoO/CoO nanohybrid demonstrates its tremendous advantages and possibilities as a positive electrode material in energy storage applications. Moreover, for a better understanding of the electrochemical behavior, a combined study of experimental measurements and density functional theory calculations is also applied to illustrate the high-performance of the ZnMoO/CoO nanohybrid.

摘要

采用两步水热法制备了负载在泡沫镍上的ZnMoO/CoO纳米杂化物。ZnMoO/CoO纳米杂化物呈现出三维交叉结构。比表面积从ZnMoO的45 m²/g提高到ZnMoO/CoO纳米杂化物的67 m²/g。此外,电活性CoO的存在有利于降低电荷传输电阻。ZnMoO/CoO纳米杂化物电极在2 mA/cm²时具有4.47 F/cm²的高电容,远高于ZnMoO(1.07 F/cm²)和CoO(2.47 F/cm²)。ZnMoO/CoO纳米杂化物电极还表现出超高的循环稳定性,在20 mA/cm²下循环5000次后电容保持率为100.5%。此外,以ZnMoO/CoO纳米杂化物为正极,以剥离石墨碳纸为负极组装了不对称全固态超级电容器。该不对称超级电容器在功率密度为800 W/kg时表现出58.6 W h/kg的优异能量密度,在5 A/g下循环5000次后具有相当的循环稳定性,电容保持率为81.8%。ZnMoO/CoO纳米杂化物作为储能应用中的正极材料展现出巨大的优势和潜力。此外,为了更好地理解其电化学行为,还结合实验测量和密度泛函理论计算来说明ZnMoO/CoO纳米杂化物的高性能。

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