电解质
阴极
化学工程
材料科学
聚合物电解质
水溶液
储能
扩散
降级(电信)
动力学
高能
聚合物
离子
工作(物理)
共价有机骨架
纳米技术
电化学
自愈水凝胶
多孔性
化学
无机化学
作者
Juan Chu,Xupeng Zhang,Yingze Guo,Jie Yu,Lan Wang,Heng‐Guo Wang
摘要
ABSTRACT Aqueous ammonium‐ion batteries (AAIBs) have garnered considerable attention for sustainable energy storage, leveraging the rapid diffusion kinetics of NH 4 + ions enabled by Grotthuss‐type proton transport through reversible hydrogen‐bonding interactions. Nevertheless, their practical deployment is often constrained by irreversible side reactions and structural degradation from conventional liquid electrolytes and inorganic cathodes. Herein, we report a dual‐zone design strategy of integrating a tailored hydrogel electrolyte with a redox‐active covalent organic framework (COF) cathode to promote durable NH 4 + storage in AAIBs. In the electrolyte, a pH‐modulated polyacrylamide‐based hydrogel electrolyte with a uniform 3D network suppresses anion‐induced salting‐out effects and facilitates dynamic hydrogen‐bond‐enabled NH 4 + migration. Complementarily, a hexaazatrinaphthalene (HATN)‐based COF (HATN‐COF) cathode with abundant C═O/C═N groups provides multiple reversible hydrogen‐bonding sites for stable NH 4 + storage. As expected, the assembled cell achieves a high initial capacity of 420 mAh g −1 at 0.05 A g −1 and retains a high reversible capacity of 126 mAh g −1 at 2 A g −1 with 70.8% capacity retention after 1300 cycles. This work demonstrates that the dual‐zone design strategy holds great potential for advancing high‐performance AAIBs.
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