Yue Wang, Yue Wang, Jianzhong Xu, Diguang Jia, Jinsong Sun, Xinyue Li, Wentao Yuan, Jixue Shen, Yuanyuan Wang, Yuanyuan Wang, Zhaoxi Shen, Ning Zhang
Aqueous zinc (Zn) metal batteries (AZMBs) are a promising candidate for large-scale energy storage, but the issues of Zn anodes involving nonuniform Zn plating/stripping, H 2 evolution, and low Zn utilization rate (ZUR) in aqueous electrolytes hinder their practical application. Herein, we report an in situ colloidal electrolyte via SO 4 2– -polycation electrostatic interaction to circumvent these challenges. Mechanistic studies reveal that the polycation-confined SO 4 2– diffusion significantly elevates the Zn 2+ transference number to 0.82, which can suppress anion-induced side reactions and minimize interfacial concentration gradients. Moreover, the polycations can form dynamic adsorption on Zn, disrupt the water’s original H-bond network, and create an H 2 O-poor electrical double layer, which homogenizes the electric field distribution and suppresses H 2 evolution on Zn. Consequently, the optimized electrolyte (Colloid-6) enables highly compact and (100)-plane-oriented Zn electrodeposits and uniform Zn stripping behavior even at 25 mAh cm –2, corresponding to 85.4% ZUR. The Zn electrodes in Colloid-6 achieve a long-term cycling life over 4200 h under 2 mAh cm –2, deep-cycling stability over 300 h under 25 mAh cm –2, and high-temperature adaptability (80 °C). Moreover, Colloid-6 with low water reactivity can inhibit the vanadium oxide cathode dissolution, thus supporting the stable operation of Zn//V 2 O 5 · n H 2 O full batteries under harsh conditions.