4.7 Article

Towards high-performance supercapacitors with cellulose-based carbon for zinc-ion storage

Journal

JOURNAL OF ENERGY STORAGE
Volume 50, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.est.2022.104252

Keywords

Cellulose; Porous carbon; Zinc ion; Supercapacitor

Categories

Funding

  1. Forestry Science and Technology Innovation and Extension Project of Jiangsu Province [LYKJ [2021] 04]
  2. PostgraduateResearch & Practice Innovation Program of Jiangsu Province [KYCX21_0899]

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Aqueous zinc-ion hybrid supercapacitors (ZHSs) are promising energy storage devices with high energy/power density, stability, and safety. The key to improving their performance lies in designing a carbon cathode. By using a cotton pulp paper and ZnCl2, a porous cellulose-derived carbon (CDC) with abundant pore structures is prepared, resulting in a high capacitance in ZHSs. Furthermore, a solid-state ZHS is assembled by incorporating ZnCl2 into a cellulose hydrogel, exhibiting high capacity, energy density, and excellent stability.
Aqueous zinc-ion hybrid supercapacitors (ZHSs) are desirable as promising energy storage devices due to their high energy/power density, stability, and safety. Designing a carbon cathode is the key to improving the performance of ZHSs. A cotton pulp paper is used as the starting material to prepare the porous cellulose-derived carbon (CDC) by a ZnCl2 molten salt activation method. Different zinc salts are then employed as aqueous electrolytes to match the CDC for improving the capacitance performance. The CDC-assembled ZHS using a ZnCl2 electrolyte reaches a high capacitance of 357 F g(-1) at the current density of 0.5 A g(-1). The excellent capacitance of CDC in ZHSs can be attributed to the abundant mesoporous and macroporous structures. Using the cotton pulp paper and ZnCl2, a ZnCl2-included cellulose hydrogel can also be assembled as a solid-state electrolyte. The solid-state ZHS with CDC shows an extremely high capacity of 247 mAh g(-1) and energy density of 243 W h kg(-1)& nbsp;at the power density of 492 W kg(-1), as well as excellent stability with a capacity retention of 85% after 20,000 cycles.

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