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首页> 外文期刊>Physical chemistry chemical physics: PCCP >A magnetic resonance and electrochemical study of the role of polymer mobility in supporting hydrogen transport in perfluorosulfonic acid membranes
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A magnetic resonance and electrochemical study of the role of polymer mobility in supporting hydrogen transport in perfluorosulfonic acid membranes

机译:聚合物迁移率在全氟磺酸膜氢输送中作用的磁共振和电化学研究

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Perfluorosulfonic acid (PFSA) materials have been used in polymer electrolyte membrane fuel cells (PEMFCs) as electrolyte materials due to their mechanical durability and high proton conductivity. To understand the fundamental chemistry at a molecular level in material performance properties, we have developed and validated method for evaluating local dynamics using F-19 double-quantum solid-state nuclear magnetic resonance (ssNMR) spectroscopy. The local dynamics information can be separated and analyzed in terms of fluorine interactions with respect to the different temperatures and hydration levels. The polymer side chain is proven to be more locally mobile which is reflected by the lower apparent dipolar coupling constant (D-app) compared to the backbone. This observation agrees with the micro-phase separation morphology evolution. In the current study, different types of PFSA materials were explored and compared. The dynamics investigation of the PFSA materials has been conducted at various conditions. In operando membrane performance analyses were performed in parallel at Ballard Power Systems. PFSA membranes were prepared into membrane electrode assemblies (MEAs), with catalyst layers and gas diffusion layers. From the cyclic voltammetry measurements, the H-2 crossover values were extracted. These data reveal a strong correlation between the proton conductivity and the site-specific PFSA side chain local dynamics. Moreover, a correlation was drawn between increasing side chain mobility (lower D-app), and increased H-2 permeability. The link between the fundamental dynamics study and this key PFSA performance analysis provides insight into proton transport mechanisms.
机译:由于其机械耐久性和高质子电导率,全氟磺酸(PFSA)材料已用于聚合物电解质膜燃料电池(PEMFC)作为电解质材料。要了解物质性能特性的分子水平的基本化学,我们已经开发了使用F-19双量子固态核磁共振(SSNMR)光谱来评估局部动态的验证方法。局部动力学信息可以在与不同温度和水合水平的氟相互作用中分离和分析。经过证明聚合物侧链是更局部移动的,其与骨架相比,由下表观偶极偶联常数(D-APP)反射。该观察结果同意微相分离形态演化。在目前的研究中,探讨了不同类型的PFSA材料并进行比较。 PFSA材料的动力学研究已经在各种条件下进行。在Operando膜性能分析中,在巴拉德动力系统下并行进行。将PFSA膜制成膜电极组件(MEA),催化剂层和气体扩散层。从循环伏安法测量中,提取H-2交叉值。这些数据揭示了质子电导率与特定于站点的PFSA侧链局部动态之间的强相关性。此外,在增加侧链迁移率(下D-APP)之间并增加了H-2渗透率之间的相关性。基本动态研究与此关键的PFSA性能分析之间的联系提供了对质子传输机制的洞察力。

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