普鲁士蓝
材料科学
化学工程
膜
耐久性
复合数
电导率
质子交换膜燃料电池
电化学
肿胀 的
聚合物
纳米颗粒
离子电导率
相对湿度
离聚物
离子键合
复合材料
Nafion公司
降级(电信)
铁氰化钾
铁氰化物
质子输运
分解水
膨胀能力
离子交换
大气温度范围
作者
Haoyun Liu,Liangfei Xu,Boyang Yu,Longxin Jiang,Zunyan Hu,Chuan Fang,Guoqiang Zhang,Jianqiu Li,Minggao Ouyang
标识
DOI:10.1021/acsami.5c12444
摘要
The trade-off between performance and durability in proton exchange membrane fuel cells (PEMFCs) has been a persistent challenge, and addressing it is crucial for enhancing the applicability of PEMFCs across multiple scenarios. This study presents a synthesis strategy for incorporating Prussian Blue (PB) into proton exchange membranes (PEMs) to enhance both performance and durability. By homogeneously blending potassium ferricyanide with perfluorosulfonic acid resin and inducing in situ PB nanoparticle synthesis within the polymer matrix, the resulting composite membranes exhibit exceptional electrochemical performance and durability. Characterization via XRD and spectrometry confirms the successful integration and uniform distribution of PB in the polymer matrix. The composite membranes demonstrate enhanced water retention capacity, reduced swelling ratio, and superior ionic conductivity across a range of temperature and humidity conditions compared to those of pristine PEMs. The water uptake approximately linearly increases with the additive content, rising from 2.8% to 13.8%, thus increasing the conductivity of the composite membranes. Furthermore, they show remarkable resistance to chemical degradation in Fenton and OCV tests. The voltage loss rate decreases from 13.33% to 6.93% as the additive content increases, representing a 50% reduction in the voltage loss magnitude. This work offers an approach to developing high-performance, long-lasting, and cost-effective PEMs for commercial applications.
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