科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ eScience Energy2026-01-16· Materials science

Hydrogen bond-anchored interfacial engineering for stable and high-performance aqueous zinc-ion batteries

Guoxin Yang, Xiangrong Zhang, Hanqi Zhang, Chengwei Wu, Ning Zhao, Yiming Fan, Feng Jin, Jiaqi Wang, Xiuxia Zhao, Shujiang Ding, Hongyang Zhao, Xiaofei Hu

原始摘要(英文原文)· Original abstract
Rechargeable aqueous Zn-ion batteries (AZIBs) are regarded as a sustainable energy storage for stationary energy storage applications, but they suffer from serious side reactions and uncontrolled Zn dendrite growth. Herein, a hydrogen bond-anchored phytic acid-zinc (PA-Zn)/hydrogel protective layer is established on Zn anodes, with the PA-Zn interlayer mediating the robust interfacial adhesion between the hydrogel and Zn substrate. The sulfonate-functionalized hydrogel framework (– SO 3 − ) accelerates Zn 2+ desolvation kinetics, homogenizes the ionic flux, and regulates the electric field distribution. The in situ -formed PA-Zn layer enhances Zn 2+ mobility through phosphate/carboxylate chelation while suppressing water-induced side reactions by creating a dehydrated interface. Serving as a stabilizing mediator, this interlayer also reinforces the hydrogel–electrode interface through hydrogen bonding, significantly enhancing the stability of Zn anodes. As a result, the PA-Hn@Zn anode exhibits a high average coulombic efficiency (CE) of 99.42% and excellent cycling stability of 2400 h. Moreover, PA-Hn@Zn||KVOH full cells retain a capacity of 1 62 mAh g −1 over 3000 cycles at 5 A g −1 . This hydrogen bond-anchored interfacial engineering strategy offers a promising pathway for developing advanced Zn anodes and promotes the commercialization of AZIBs. • The hydrogen-bond anchoring strategy constructs a stable hybrid hydrogel protective layer on Zn anodes, addressing the issues of poor interface adhesion and protective layer failure. • The sulfonate-functionalized hydrogel framework and in situ formed PA-Zn interlayer synergistically accelerate Zn 2+ desolvation kinetics and suppress water-induced side reactions. • The integrated design of the hybrid hydrogel layer enables ultralong cycling stability and high reversibility of Zn anodes, promoting the practical application of aqueous Zn-ion batteries.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Hydrogen bond-anchored interfacial engineering for stable and high-performance aqueous zinc-ion batteries — 科研速览 Science Skim