Xuewei Bao, Jixue Shen, Wentao Yuan, Yi Wang, Xiaotong Li, Xianghao Ru, Zhaoxi Shen, Yuanyuan Wang, Lei Ma, Ning Zhang
Aqueous four-electron zinc-iodine (Zn-I) batteries have attracted extensive attention due to their high capacity, material abundance, and high safety. However, the Zn-I battery suffers from poor reversibility and severe self-discharge due to the polyiodides shuttle effect and high‑valent I+ hydrolysis facing by the conventional I2 cathode. Herein, a series of organic iodides is designed by complexing I3 - with quaternary ammonium cations with different alkyl chain lengths. Experimental and theoretical analyses reveal that these organic cations form stable complexes with I3 -, effectively suppressing the shuttle effect of polyiodides and thereby stabilizing Zn metal anode. Meanwhile, their hydrophobic alkyl chains create a physical barrier at the electrode-electrolyte interface, limiting water access and mitigating the I+ hydrolysis. Consequently, the as-designed (CH2)18N(CH3)3I3 (C18I3) cathode for four-electron Zn-I batteries manifest a high reversible capacity of 463.0 mAh g-1 at 0.5 A g-1 and excellent cycling stability with 80.0% capacity retention after 42800 cycles at 10 A g-1, significantly outperforming the conventional I2@active carbon counterpart. Moreover, the reaction mechanism involving the I-/I3 -/I0/I+ redox couples in the C18I3 cathode has been well elucidated by in situ characterizations. This work provides new guidelines for designing advanced cathode materials for Zn-I batteries.