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Integrating Electric Ambipolar Effect for High-Performance Zinc Bromide Batteries

  • Wenda Li
  • , Hengyue Xu
  • , Shanzhe Ke
  • , Hongyi Zhang
  • , Hao Chen
  • , Gaijuan Guo
  • , Xuanyi Xiong
  • , Shiyao Zhang
  • , Jianwei Fu
  • , Chengbin Jing
  • , Jiangong Cheng
  • , Shaohua Liu*
  • *此作品的通讯作者
  • East China Normal University
  • Tsinghua University
  • Xinjiang University
  • School of Materials Science and Engineering
  • CAS - Shanghai Institute of Microsystem and Information Technology

科研成果: 期刊稿件文章同行评审

摘要

The coupling of fast redox kinetics, high-energy density, and prolonged lifespan is a permanent aspiration for aqueous rechargeable zinc batteries, but which has been severely hampered by a narrow voltage range and suboptimal compatibility between the electrolytes and electrodes. Here, we unprecedentedly introduced an electric ambipolar effect for synergistic manipulation on Zn2+ ternary-hydrated eutectic electrolyte (ZTE) enabling high-performance Zn-Br2 batteries. The electric ambipolar effect motivates strong dipole interactions among hydrated perchlorates and bipolar ligands of L-carnitine (L-CN) and sulfamide, which reorganized primary cations solvation sheath in a manner of forming Zn[(L-CN)(SA)(H2O)4]2+ configuration and dynamically restricting desolvated H2O molecules, thus ensuring a broadened electrochemical window of 2.9 V coupled with high ionic conductivity. Noticeably, L-CN affords an electrostatic shielding effect and an in situ construction of organic–inorganic interphase, endowing oriented Zn anode plating/stripping reversibly for over 2400 h. Therefore, with the synergy of electro/nucleophilicity and exceptional compatibility, the ZTE electrolyte dynamically boosts the conversion redox of Zn-Br2 batteries in terms of high specific capacity and stable cycling performance. These findings open a window for designing electrolytes with synergetic chemical stability and compatibility toward advanced zinc-ion batteries. (Figure presented.)

源语言英语
期刊论文编号143
期刊Nano-Micro Letters
17
1
DOI
出版状态已出版 - 12月 2025

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