TY - JOUR
T1 - Carbon nanotube-based ternary-additive restructured hydrogel electrolyte for high-performance flexible Zn-air batteries
AU - Shang, Nuo
AU - Ma, Xinyuan
AU - Li, Dandan
AU - Ye, Ziming
AU - Li, Meng
AU - Kong, Xiaobing
AU - Jiang, Zhifan
AU - Xia, Ziqing
AU - Ma, Yingying
AU - Liao, Changchun
AU - Wang, Keliang
AU - Wang, Qian
AU - Cao, Anyuan
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9
Y1 - 2026/9
N2 - 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.
AB - 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.
KW - Carbon nanotube
KW - Flexible battery
KW - Hydrogel electrolyte
KW - Zn-air battery
UR - https://www.scopus.com/pages/publications/105044209404
U2 - 10.1016/j.nanoen.2026.112190
DO - 10.1016/j.nanoen.2026.112190
M3 - Article
AN - SCOPUS:105044209404
SN - 2211-2855
VL - 156
JO - Nano Energy
JF - Nano Energy
M1 - 112190
ER -