多金属氧酸盐
Nafion公司
化学
纳米技术
膜
燃料电池
阳离子聚合
离子键合
超分子化学
质子交换膜燃料电池
离子液体
聚合物
化学工程
化学稳定性
表面改性
电导率
混合材料
质子输运
功率密度
多孔性
相容性(地球化学)
质子
制作
氢燃料
磺酸盐
氢键
合成膜
氢
化学改性
聚电解质
作者
Qixin Zhao,Bo Li,Dhruv Menon,Chunmei Zhu,Mohammad Reza Alizadeh Kiapi,Xu Chen,De-Liang Long,Jianfeng Liu,Zhou Xiao,Dongsheng Yang,David Fairen‐Jiménez,Hong-Ying Zang,Weimin Xuan
标识
DOI:10.1038/s41557-026-02169-8
摘要
Abstract Proton-exchange membranes are critical for high-performance fuel cells, yet simultaneous enhancement of their power density and operational stability remains challenging. Here we introduce a supramolecular engineering approach for constructing polyoxometalate–organic frameworks through precise integration of trigonal-shaped cationic tectons and polyoxometalate anions. Size-matched anchoring of polyoxometalates via directional C–H···anion hydrogen bonds—enabled by shape-persistent tectons—creates ordered one-dimensional channels lined with imidazolium groups. Post-synthetic modification with sulfonate groups enabled our frameworks to achieve high proton conductivity, with proton transport governed by channel-selective hydration, percolated hydrogen-bond networks and host–guest interactions under confinement. The porous ionic structure and flexible hybrid nature of these frameworks provide exceptional solution processability and compatibility with polymer matrices. Integration into Nafion resins dramatically enhances the proton conductivity and chemical stability of the resulting hybrid membranes, as well as enhancing the peak power density and current density over commercial Nafion. This strategy provides a promising blueprint for developing fillers in proton-exchange membrane design to advance fuel cells towards decarbonization targets.
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