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基于 ZnO/CuO 和 ZnO/CuO/rGO 异质结构的电泳制备环保型柔性超级电容器电极薄膜

Electrophoretic Fabrication of ZnO/CuO and ZnO/CuO/rGO Heterostructures-based Thin Films as Environmental Benign Flexible Electrode for Supercapacitor.

机构信息

Sabanci University, SUNUM Nanotechnology Research and Application Center, Tuzla, 34956, Istanbul, Turkey.

Department of Mechanical Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong; School of Chemical Engineering, Yeungnam University, Gyeongsan, Gyeongbuk, 38541, Republic of Korea.

出版信息

Chemosphere. 2023 May;322:138149. doi: 10.1016/j.chemosphere.2023.138149. Epub 2023 Feb 18.

DOI:10.1016/j.chemosphere.2023.138149
PMID:36804630
Abstract

Sustainable fabrication of flexible hybrid supercapacitor electrodes is extensively investigated during the current era to solve global energy problems. Herein, we used a cost-effective and efficient electrophoretic deposition (EPD) approach to fabricate a hybrid supercapacitor electrode. ZnO/CuO and ZnO/CuO/rGO heterostructure were prepared by sol-gel synthesis route and were electrophoretically deposited on indium tin oxide (ITO) substrate as a thin uniform layer using 1 V for 20 min at 50 mV/s. ZnO/CuO and ZnO/CuO/rGO heterostructure coated ITOs were then employed as the working electrode in a three-electrode setup for supercapacitor measurements. The fabricated electrodes have been investigated by Galvanostatic charge-discharge (GCD), electrochemical impedance spectroscopy (EIS), and cyclic voltammetry (CV) to study their charge storage properties. ZnO/CuO revealed a specific capacitance of 1945 F g at 2 mV/s and 999 F g at 5 A g. However, an increased specific capacitance of 2305 F g was measured for ZnO/CuO/rGO heterostructure at 2 mV/s and 1235 F g at 5 A g. The lower internal resistance was observed for ZnO/CuO/rGO heterostructure, indicating good conductivity of the electrode material. Thus, the overall results of the current study suggest that EPD-assisted ZnO/CuO/rGO heterostructure hybrid electrode possess a substantial potential for energy storage as a supercapacitor.

摘要

在当前时代,广泛研究了可持续制造柔性混合超级电容器电极,以解决全球能源问题。在此,我们使用了一种具有成本效益和高效率的电泳沉积(EPD)方法来制造混合超级电容器电极。通过溶胶-凝胶合成路线制备了 ZnO/CuO 和 ZnO/CuO/rGO 异质结构,并通过电泳沉积在氧化铟锡(ITO)基板上作为薄而均匀的层,使用 1 V 在 50 mV/s 下沉积 20 分钟。然后,将 ZnO/CuO 和 ZnO/CuO/rGO 异质结构涂覆的 ITO 用作三电极设置中的工作电极,用于超级电容器测量。通过恒电流充放电(GCD)、电化学阻抗谱(EIS)和循环伏安法(CV)研究了制备的电极,以研究其电荷存储性能。在 2 mV/s 时,ZnO/CuO 表现出 1945 F g 的比电容,在 5 A g 时为 999 F g。然而,在 2 mV/s 时,ZnO/CuO/rGO 异质结构的比电容增加到 2305 F g,在 5 A g 时为 1235 F g。ZnO/CuO/rGO 异质结构观察到较低的内阻,表明电极材料具有良好的导电性。因此,当前研究的总体结果表明,EPD 辅助的 ZnO/CuO/rGO 异质结构混合电极具有作为超级电容器进行储能的巨大潜力。

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