储能
煅烧
阴极
化学工程
多孔性
材料科学
纳米技术
大孔隙
碳纤维
纳米孔
化学
法拉第效率
吸附
热稳定性
介孔材料
电极
活性炭
氧化还原
降级(电信)
碳纳米泡沫
比表面积
灵活性(工程)
炭黑
能量转换
阳极
作者
Ping Wu,Hong Lin,Qing‐Hua Wang
出处
期刊:Chemsuschem
[Wiley]
日期:2025-09-23
卷期号:18 (21): e202501455-e202501455
被引量:3
标识
DOI:10.1002/cssc.202501455
摘要
Zinc–iodine (Zn–I 2 ) batteries are promising for grid‐scale energy storage but suffer from severe polyiodide shuttling and rapid self‐discharge. Here, a thermally activated carbon cloth (CC450) that simultaneously addresses iodine confinement and reaction kinetics through precisely engineered hierarchical porosity is reported. By optimizing oxidative calcination at 450 °C in air, CC450 develops a unique pore structure with nanopores for strong I 3 − adsorption and interconnected macropores for rapid ion transport, while maintaining the intrinsic conductivity and flexibility of CC. The CC450 cathode achieves an exceptional balance of performance metrics: high areal capacity, ultralow self‐discharge (3.05% in 24 h), and outstanding cycling stability (94.63% capacity retention over 1000 cycles), which represents the best‐reported performance for binder‐free carbon electrodes in Zn–I 2 batteries. Mechanistic studies reveal that CC450's 12‐fold reduction in charge‐transfer resistance and low activation energy for I − oxidation stem from its optimal surface chemistry and pore hierarchy. The self‐discharge tests and UV–vis spectroscopy confirm efficient iodine shuttle suppression. Unlike complex nanomaterial‐based hosts, CC450 is fabricated through a scalable ambient‐air process, offering immediate industrial relevance. This work provides critical insights into pore‐engineered carbon hosts for metal–iodine batteries and establishes a generalizable strategy for achieving high‐energy, long‐life energy storage systems.
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