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Understanding of Nanophase Separation and Hydrophilic Morphology in Nafion and SPEEK Membranes: A Combined Experimental and Theoretical Studies

机译:了解Nafion和SPEEK膜的纳米相分离和亲水形态:结合实验和理论研究

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摘要

The understanding of the relationship between the chemical structure and the hydrophilic structure is crucial for the designing of high-performance PEMs. Comparative studies in typical Nafion and sulfonated poly (ether ether ketone) (SPEEK) were performed using a combined experimental and theoretical method. SPEEK showed suppressed fuel crossover and good mechanical property but low water uptake, weak phase separation, and inadequate proton conductivity. Molecular dynamics (MD) simulation approaches were employed to get a molecular-level understanding of the structure–property relationship of SPEEK and Nafion membranes. In SPEEK membranes, the local aggregation of hydrophilic clusters is worse, and much stronger electrostatic interaction between Os–Hh was verified, resulting in less delocalized free H3O+ and much lower DH3O+. In addition, the probability of H2O–H3O+ association varied with water content. Particularly, SPEEK exhibited much lower H9O4+ probability at various relative water contents, leading to lower structural diffusivity than Nafion. Eventually, SPEEK possessed low vehicular and structural diffusivities, which resulted in a low proton conductivity. The results indicated that the structure of hydrated hydronium complexes would deform to adapt the confining hydrophilic channels. The confinement effect on diffusion of H2O and H3O+ is influenced by the water content and the hydrophilic morphologies. This study provided a new insight into the exploration of high-performance membranes in fuel cell.
机译:了解化学结构和亲水结构之间的关系对于设计高性能PEM至关重要。使用组合的实验和理论方法,对典型的Nafion和磺化聚醚醚酮(SPEEK)进行了比较研究。 SPEEK显示出抑制的燃料穿越和良好的机械性能,但吸水率低,相分离弱和质子传导性不足。分子动力学(MD)模拟方法被用来从分子水平上了解SPEEK和Nafion膜的结构-性质关系。在SPEEK膜中,亲水簇的局部聚集作用更差,Os-Hh之间的静电相互作用更强,从而导致游离H3O + 的离域更少,而DH3O +更低。另外,H2O–H3O + 缔合的概率随含水量而变化。特别是,SPEEK在各种相对含水量下表现出低得多的H9O4 + 概率,从而导致结构扩散系数比Nafion更低。最终,SPEEK具有较低的车辆和结构扩散率,从而导致较低的质子传导率。结果表明,水合水合配合物的结构会发生变形,以适应封闭的亲水通道。水分和亲水形态对H2O和H3O + 扩散的限制作用。该研究为探索燃料电池高性能膜提供了新的见解。

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