Facile self-templating large scale preparation of biomass-derived 3D hierarchical porous carbon for advanced supercapacitors

Corn husk, a renewable biomass, has been successfully explored as a low-cost crude carbon source to prepare advanced higher-value 3D HPCs by means of KOH pre-treatment and direct pyrolysis, the synthesis route is simple, self-templating and easy to scale-up for industrialization. The CHHPCs present...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2015-01, Vol.3 (35), p.18154-18162
Hauptverfasser: Song, Shijiao, Ma, Fangwei, Wu, Guang, Ma, Di, Geng, Weidan, Wan, Jiafeng
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Sprache:eng
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Zusammenfassung:Corn husk, a renewable biomass, has been successfully explored as a low-cost crude carbon source to prepare advanced higher-value 3D HPCs by means of KOH pre-treatment and direct pyrolysis, the synthesis route is simple, self-templating and easy to scale-up for industrialization. The CHHPCs present many advantages for supercapacitor applications, including higher surface area (928 m super(2) g super(-1)), hierarchical porosity consisting of macro, meso, and micropores, a turbostratic carbon structure, uniform pore size, 3D architecture and rich O-doping (17.1 wt%). The supercapacitor performance of CHHPCs was evaluated in a 6 M KOH electrolyte and 1 M Na sub(2)SO sub(4) electrolyte. The CHHPCs exhibit a high specific capacitance of 356 F g super(-1) and 300 F g super(-1) at 1 A g super(-1), 20 A g super(-1), respectively, ultra-high rate capability with 88% retention rate from 1 to 10 A g super(-1) and outstanding cycling stability with 95% capacitance retention after 2500 cycles. The CHHPCs symmetric supercapacitor display a high energy density of 21 W h kg super(-1) at a power density of 875 W kg super(-1) and retains as high as 11 W h kg super(-1) at 5600 W kg super(-1) in 1 M Na sub(2)SO sub(4) electrolyte. The facile, efficient and template-free synthesis strategy for novel 3D-HPCs from biomass sources may promote commercial application of 3D-HPCs in the fields of supercapacitors, lithium ion batteries, fuel cells and sorbents.
ISSN:2050-7488
2050-7496
DOI:10.1039/c5ta04721h