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Carbon-Based Materials for Supercapacitors: Recent Progress, Challenges and Barriers

A.G. OlabiMechanical Engineering and Design, School of Engineering and Applied Science, Aston University, Aston Triangle, Birmingham B4 7ET, UKQaisar AbbasSchool of Computing, Engineering and Physical Sciences, University of the West of Scotland, Paisley PA1 2BE, UKMohammad Ali AbdelkareemChemical Engineering Department, Faculty of Engineering, Minia University, Minya 61519, EgyptAbdul Hai AlamiSustainable Energy & Power Systems Research Centre, RISE, University of Sharjah, Sharjah P.O. Box 27272, United Arab EmiratesMojtaba MirzaeianSchool of Computing, Engineering and Physical Sciences, University of the West of Scotland, Paisley PA1 2BE, UKEnas Taha SayedChemical Engineering Department, Faculty of Engineering, Minia University, Minya 61519, Egypt
2022en
ABI

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Swift developments in electronic devices and future transportation/energy production directions have forced researchers to develop new and contemporary devices with higher power capacities, extended cycle lives, and superior energy densities. Supercapacitors are promising devices with excellent power densities and exceptionally long cycle lives. However, commercially available supercapacitors, which commonly use high-surface-area carbon-based electrodes and organic solutions as electrolytes, suffer from inferior energy densities due to the limited accessibility of surface area and constrained operating potential window of electrolytes. To address the issue of inferior energy densities, new high-capacity electrode materials and new/state-of-the-art electrolytes, such as ionic liquids, gel polymers, or even solid-state electrolytes, have been developed and evaluated vigorously in recent years. In this brief review, different types of supercapacitors, according to their charge storage mechanisms, have been discussed in detail. Since carbon-based active materials are the key focus of this review, synthesis parameters, such as carbonisation, activation, and functionalisation, which can impact a material’s physiochemical characteristics, ultimately affecting the performance of supercapacitors, are also discussed. Finally, the synthesis and applications of different carbon-based materials, i.e., carbon nanotubes, graphene, and activated carbon, have been reviewed, followed by conclusions and outlook.

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