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Carbon nanotube-based ternary-additive restructured hydrogel electrolyte for high-performance flexible Zn-air batteries

  • Nuo Shang
  • , Xinyuan Ma
  • , Dandan Li
  • , Ziming Ye
  • , Meng Li
  • , Xiaobing Kong
  • , Zhifan Jiang
  • , Ziqing Xia
  • , Yingying Ma
  • , Changchun Liao
  • , Keliang Wang
  • , Qian Wang
  • , Anyuan Cao*
  • *此作品的通讯作者
  • Peking University
  • Beijing Oriental Yuhong Waterproof Technology Co., Ltd.
  • Zhengzhou University
  • Beijing Institute of Technology
  • Tsinghua University

科研成果: 期刊稿件文章同行评审

摘要

The growing demand for flexible electronics and wearable devices has positioned flexible zinc-air batteries as a promising research focus, owing to their inherent safety, low cost, and high theoretical capacity. However, a key challenge remains in developing hydrogel electrolytes that simultaneously offer high ionic conductivity and effective water retention. Herein, we address this by structurally reforming a poly (acrylic acid)-AMPS hydrogel using a synergistic ternary additive system of hydroxylated carbon nanotubes, tannic acid, and potassium formate. Cryo-SEM analysis reveals that the modified hydrogel transforms from a dense-walled architecture into a rich, interpenetrating polymer-CNT network, reducing internal resistance and achieving a high ionic conductivity of 513.48 mS·cm⁻¹ . The restructured network exposes more oxygen-containing functional groups, significantly enhancing both water retention and electrolyte uptake. Molecular dynamics simulations confirm that the formate additive further disrupts the solvation structure of Zn²⁺, suppressing detrimental side reactions. Consequently, the assembled flexible Zn-air battery, delivers a peak power density of 124.61 mW·cm⁻² and a specific capacity of 756.12 mAh·gZn⁻¹ , with stable operation exceeding 90 h. This work provides a viable strategy for designing high-performance hydrogel electrolytes, demonstrating significant potential for advancing flexible aqueous metal-air batteries.

源语言英语
期刊论文编号112190
期刊Nano Energy
156
DOI
出版状态已出版 - 9月 2026
已对外发布

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