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Updated: May 27, 2025

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Regulating the hierarchical distribution of oxygen vacancies through Ce doping and NaBH4reduction to enhance
Jialu Zhang1, Yan Wang1, Wangfeng Cai1
1School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, People's Republic of China.
Abstract:
In this study, Co2NiO4with a tunable and hierarchical distribution of oxygen vacancies was synthesized via Ce doping and NaBH4reduction to enhance its electrochemical performance. Ce doping through a hydrothermal method gave rise to lattice distortions and uniform oxygen vacancies at asymmetric sites, thereby improving the mobility and concentration of carriers within Co2NiO4. Moreover, the NaBH4reduction process brought about a considerable number of oxygen vacancies and surface-active sites, both of which contributed to the increased conductivity and specific capacitance. Characterization results indicated that the Ce/Co2NiO4-Vo nanosheets with surface burrs exhibited an abundant distribution of oxygen vacancies, resulting in a boost of the material's specific capacitance while ensuring stability. At a 1 A g-1current density, these nanosheets achieved a maximum specific capacitance of 1493.6 F g-1. When tested at 10 A g-1, Ce/Co2NiO4-Vo retained 88.47% of its initial capacitance after undergoing 5000 cycles. The synthesized Ce/Co2NiO4-Vo was further combined with activated carbon (AC) to form an asymmetric supercapacitor configuration known as Ce/Co2NiO4-Vo//AC, attaining an 80.51 Wh kg-1energy density at 800 W kg-1power density. This study provides innovative strategies and highlights advancements in the high-performance supercapacitors and energy storage solutions.
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