材料科学
膜
超分子化学
肿胀 的
质子
剥脱关节
Nafion公司
电导率
锚固
纳米技术
纳米纤维素
导电体
化学工程
质子输运
质子交换膜燃料电池
工作(物理)
共价键
石墨烯
纳米复合材料
共价有机骨架
复合数
聚酰亚胺
合理设计
聚合物
聚合
弯曲
高分子化学
密度泛函理论
相对湿度
化学物理
表面改性
超分子聚合物
热传导
作者
Nan Li,Sufeng Zhang,Chi Duan,Yali Liu,Jinhong Zhao,Tanyanyu Wang
摘要
ABSTRACT Achieving high proton conductivity with dimensional stability remains a critical challenge for nanocellulose‐based proton exchange membranes (NC‐PEMs), as necessary acid functionalization invariably triggers severe swelling. Here we report a supramolecular engineering strategy that integrates sulfonated nanocellulose (SO 3 H‐NC) with a —2D covalent organic framework (TFP‐DABA), yielding a SO 3 H‐NC@TFP‐DABA membrane that overcomes this long‐standing trade‐off. Mechanistically, SO 3 H‐NC acts as a functional intercalator to induce the exfoliation of TFP‐DABA layers, exposing shielded acidic sites and reorganizing the hydrogen‐bond network into a continuous, multidimensional proton‐transport pathway. Simultaneously, TFP‐DABA framework imposes rigid dimensional confinement, effectively constraining the hydration‐induced swelling of the SO 3 H‐NC. Consequently, the optimized SO 3 H‐NC@TFP‐DABA 3/7 membrane delivers record‐breaking proton conductivities of 590.6 and 281.5 mS cm −1 at 80°C under 98% and 33% relative humidity (RH), respectively, corresponding to 13.4‐ and 5.1‐fold enhancements over Nafion 212. The superior transport efficiency facilitates a peak power density of 240 mW cm −2 in single‐cell tests, a threefold performance increase over the commercial standard. Meanwhile, the membrane maintains a swelling ratio of below 5%, nearly four times lower than that of Nafion 212. This work establishes a practical supramolecular design principle for constructing bio‐PEMs that are highly conductive yet dimensionally stable across a wide range of humidity conditions.
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