节点文献

用于水系锌-碘电池中锌阳极和碘阴极耦合稳定化的准固态电解质设计(英文)

Unified quasi-solid electrolyte design for coupled stabilization of Zn anode and I2 cathode in aqueous Zn-I2 batteries

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 王盟安李涛张世从马赫贤徐阳沈翼魏晨昱张涛林天全

【Author】 Meng’an Wang;Tao Li;Shicong Zhang;Hexian Ma;Yang Xu;Yi Shen;Chenyu Wei;Tao Zhang;Tianquan Lin;Key Laboratory of Intelligent Creation for Extreme Energy Materials (MOE), School of Materials Science and Engineering, Shanghai Jiao Tong University;Zhangjiang Institute for Advanced Study (ZIAS), Shanghai Jiao Tong University;

【通讯作者】 林天全;

【机构】 Key Laboratory of Intelligent Creation for Extreme Energy Materials (MOE), School of Materials Science and Engineering, Shanghai Jiao Tong UniversityZhangjiang Institute for Advanced Study (ZIAS), Shanghai Jiao Tong University

【摘要】 Aqueous Zn-I2 batteries are promising candidates for large-scale energy storage owing to their high safety and low cost. However, uncontrolled zinc dendrite growth and severe polyiodide shuttle effects continue to hinder their long-term stability and Coulombic efficiency(CE). Here we report a unified quasi-solid electrolyte that simultaneously stabilizes both the Zn anode and the I2 cathode. The polymeric matrix,constructed from quaternized chitosan and tannic acid, provides abundant hydroxyl and quaternary ammonium groups that coordinate Zn2+and strongly immobilize polyiodide species through electrostatic and hydrogen-bonding interactions, thereby effectively suppressing the polyiodide shuttle. This dual regulation boosts the Zn2+transference number to 0.55, suppresses interfacial side reactions, and mitigates dendrite growth. Consequently, Zn symmetric cells exhibit ultralong cycling stability over 2000 h at a low current density of 0.25 m A cm-2, while Zn-I2 full cells deliver a high average CE of 99.87% and stable cycling for 4000 cycles at 1 A g-1. This work establishes a molecularly engineered quasi-solid electrolyte framework that bridges anode and cathode regulation, offering a general design principle to overcome the issues of dendrite growth and shuttle effect in aqueous metal-halogen batteries.

【Abstract】 Aqueous Zn-I2 batteries are promising candidates for large-scale energy storage owing to their high safety and low cost. However, uncontrolled zinc dendrite growth and severe polyiodide shuttle effects continue to hinder their long-term stability and Coulombic efficiency(CE). Here we report a unified quasi-solid electrolyte that simultaneously stabilizes both the Zn anode and the I2 cathode. The polymeric matrix,constructed from quaternized chitosan and tannic acid, provides abundant hydroxyl and quaternary ammonium groups that coordinate Zn2+and strongly immobilize polyiodide species through electrostatic and hydrogen-bonding interactions, thereby effectively suppressing the polyiodide shuttle. This dual regulation boosts the Zn2+transference number to 0.55, suppresses interfacial side reactions, and mitigates dendrite growth. Consequently, Zn symmetric cells exhibit ultralong cycling stability over 2000 h at a low current density of 0.25 m A cm-2, while Zn-I2 full cells deliver a high average CE of 99.87% and stable cycling for 4000 cycles at 1 A g-1. This work establishes a molecularly engineered quasi-solid electrolyte framework that bridges anode and cathode regulation, offering a general design principle to overcome the issues of dendrite growth and shuttle effect in aqueous metal-halogen batteries.

【基金】 supported by the Shanghai Pilot Program for Basic Research-Shanghai Jiao Tong University;the National Natural Science Foundation of China (BC0500463);the Shanghai Key Technology Research and Development Program (25DZ3002600)
  • 【文献出处】 Science Bulletin ,科学通报(英文版) , 编辑部邮箱 ,2026年06期
  • 【分类号】TM912;O646
  • 【下载频次】5
节点文献中: 

本文链接的文献网络图示:

本文的引文网络