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High Mass-Loading Biomass-Based Porous Carbon Electrodes for Supercapacitors: Review and Perspectives

期刊

SMALL
卷 19, 期 22, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202300336

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biomass-based porous carbon; high mass-loading electrodes; supercapacitors

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Biomass-based porous carbon (BPC) is a promising electrode material for supercapacitors due to its renewability and flexible nano/microstructure tunability. High mass-loading electrodes with high areal capacitance are preferred for commercial supercapacitor designs in order to improve energy density. However, the thickness of the electrode presents challenges such as blocked ion transport channels, poor charging dynamics, poor electrode structural stability, and complex preparation processes. Bridging the gap between theoretical research and practical applications of BPC electrodes is crucial in the development of supercapacitors.
Biomass-based porous carbon (BPC) with renewability and flexible nano/microstructure tunability has attracted increasing attention as efficient and cheap electrode materials for supercapacitors. To meet commercial needs, high mass-loading electrodes with high areal capacitance are preferred when designing supercapacitors. The increased mass percentage of active materials can effectively improve the energy density of supercapacitors. However, as the thickness of the electrode increases, it will face the following challenges including severely blocked ion transport channels, poor charging dynamics, poor electrode structural stability, and complex preparation processes. A bridge between theoretical research and practical applications of BPC electrodes for supercapacitors needs to be established. In this review, the advances of high mass-loading BPC electrodes for supercapacitors are summarized based on different biomass precursors. The key performance evaluation parameters of the high mass-loading electrodes are analyzed, and the performance influencing factors are systematically discussed, including specific surface area, pore structure, electrical conductivity, and surface functional groups. Subsequently, the promising optimization strategies for high mass-loading electrodes are summarized, including the structure regulation of electrode materials and the optimization of other supercapacitor components. Finally, the major challenges and opportunities of high mass-loading BPC electrodes in the future are discussed and outlined.

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