Authors
Yanhong Su, Lingzi Xiao, Jiahua Mo, Husong Zhang, Guangxue Chen
Published in
Bioresource technology. Pages 135504. Jul 25, 2026. Epub Jul 25, 2026.
Abstract
Biomass waste-derived porous carbons have been widely explored as cathode materials for aqueous zinc-ion energy storage, but their rate capability is often limited by sluggish hydrated Zn2+ transport within poorly accessible pores. Herein, walnut green husk, an agricultural biomass by-product, was converted into high-performance, diffusion-accessible hierarchical porous carbon through a dual-regulation strategy involving basic magnesium carbonate templating and potassium citrate activation. The optimized walnut green husk-derived porous carbon (WGC-Mg3/PC3) exhibits a high specific surface area of 1451.93 m2 g-1 and a large total pore volume of 0.8298 cm3 g-1. It also shows an enlarged mesopore volume of 0.3107 cm3 g-1 and an optimized micropore-volume fraction of ∼62%, forming a balanced micro/mesoporous architecture for micropore-dominated storage and mesopore-assisted ion transport. When used as the cathode in a zinc-ion hybrid capacitor, WGC-Mg3/PC3 delivers 170 mAh g-1 at 0.1 A g-1, retains 51.7 mAh g-1 at 30 A g-1, and achieves 135.7 Wh kg-1 at 80 W kg-1. The device also maintains 98% capacity retention after 10,000 cycles at 5 A g-1. Kinetic analyses and ex situ characterizations indicate that the enhanced performance is associated with accessible ion-transport pathways, diffusion-involved Zn2+ storage kinetics, reversible interfacial precipitation/dissolution of Zn-containing basic sulfate species, and possible Zn-O interfacial interactions. This work demonstrates the conversion of walnut green husk into high-performance, diffusion-accessible carbon cathodes and shows that balancing micropore-derived storage sites with mesopore-assisted transport pathways helps alleviate hydrated Zn2+ diffusion limitations in porous carbon cathodes.
PMID:
42501902
Bibliographic data and abstract were imported from PubMed on 26 Jul 2026.
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