Tailoring the electrochemical performance of rods-like Co-MOF: Fe-derived Co3O4: Fe electrodes for supercapacitor applications

被引:0
|
作者
Shah, Maryam [1 ,2 ]
Sonadia [1 ,2 ]
Iqbal, Zoya [1 ,2 ]
Ul-Hamid, Anwar [2 ,3 ]
Umair Mushtaq, Muhammad [2 ,3 ]
Azad, Fahad [1 ,2 ]
机构
[1] School of Natural Sciences (SNS), National University of Sciences and Technology (NUST), Islamabad, Pakistan
[2] Core Research Facilities, King Fahad University of Petroleum and Minerals, Dhahran,31261, Saudi Arabia
[3] School of Resources and Environmental Engineering, State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control on Chemical Process, East China University of Science and Technology, Shanghai,200237, China
关键词
Anodes - Capacitor storage - Supercapacitor;
D O I
10.1016/j.fuel.2024.133574
中图分类号
学科分类号
摘要
With the increasing global demand for energy, there is a critical need for efficient and sustainable energy storage solutions. Supercapacitors (SCs) have emerged as promising candidates due to their high-power density, long cycle life, and environmental friendliness. This study explores the development of iron-doped cobalt metal–organic frameworks (Co-MOFs: Fe) and their derived oxides supported on Ni foam as high-performance supercapacitor electrodes. The impact of conversion temperature on electrochemical properties of Co-MOFs: Fe derived Co3O4: Fe was evaluated. The results disclosed that the conversion at 500 °C significantly enhances the surface area, specific capacitance, and charge transfer efficiency of the electrodes. It exhibited the highest specific capacity of ∼ 2135.08 F g−1 at a current density of 1 A/g, along with excellent cycling stability of 87 %. Subsequently, an asymmetric supercapacitor was constructed with the MOF-derived Co3O4: Fe at 500 °C as anode and activated carbon as cathode materials. The device exhibited a specific capacitance of 233.98 F g−1 at 1 A/g with an energy density of ∼ 51.99 Wh/kg, power density of 500.14 W/kg, and a significant capacity retention of ∼ 89 % over 10,000 cycles. These findings validate the potential of Co-MOF: Fe derived Fe-doped Co3O4 as potential materials for practical energy storage applications. © 2024 Elsevier Ltd
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