Li Pengxi, Ruan Chaohui, Xu Jing, Xie Yibing
School of Chemistry and Chemical Engineering, Southeast University, Nanjing, 211189, China.
Nanoscale. 2019 Jul 28;11(28):13639-13649. doi: 10.1039/c9nr03784e. Epub 2019 Jul 10.
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.
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。