化学
水溶液
阴极
电解质
化学工程
阳极
吸附
阳离子聚合
电化学
无机化学
纳米技术
氧化还原
沉积(地质)
纳米颗粒
表面工程
支撑电解质
作者
Yufeng Chen,Renming Liu,Jiahui Hu,Dan Luo,Dongdong Wang,Zhongwei Chen
摘要
Abstract Electrolyte additive engineering is regarded as an effective strategy for dual-interface optimization in four-electron aqueous zinc–iodine batteries (AZIBs). However, realizing durable Ah-level AZIBs with industrial-grade parameters (≥10 mg cm–2 I2 cathode mass loading, ≥5 mAh cm–2 Zn anode areal capacity) remains a significant hurdle. Here, we compare various nitrogen-containing cationic ligands to evaluate their synergistic regulation on iodine immobilization and Zn nucleation. This screening successfully establishes N-methylimidazolium chloride (MImCl) as a premier electrolyte additive for stabilizing dual-interface coordination. Upon discharging, the adsorption of MIm+ on the I2 cathode enables electrostatic binding with polyiodides and ICl2–. This interaction not only suppresses the polyiodide shuttle but also shields the I+ species from hydrolysis, promoting a robust and reversible four-electron I–/I0/I+ redox chemistry at elevated I2 mass loading. On the Zn anode, MIm+ preferentially adsorbs onto its surface during charging, accelerating Zn2+ deposition kinetics for dendrite suppression while passivating parasitic reactions, realizing uniform large-capacity Zn plating/stripping. As a result, the engineered 1.4 Ah four-electron Zn||I2 pouch cells achieve an excellent cyclability of 800 cycles and an ultrahigh cathode-mass-specific energy density of 455 Wh kg–1, surpassing most aqueous Zn-based systems in the Ah-class regime.
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