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ATR-FTIR 研究水在 Nafion 膜中的结合质子传导率测量在水合/脱水循环过程中。

ATR-FTIR study of water in Nafion membrane combined with proton conductivity measurements during hydration/dehydration cycle.

机构信息

Fuel Cell Nanomaterials Center, University of Yamanashi, Kofu, Japan.

出版信息

J Phys Chem B. 2011 Apr 21;115(15):4315-21. doi: 10.1021/jp112300c. Epub 2011 Mar 29.

Abstract

We have conducted combined time-resolved attenuated total reflection Fourier transform infrared (ATR-FTIR) and proton conductivity measurements of Nafion NRE211 membrane during hydration/dehydration cycles at room temperature. Conductivity change was interpreted in terms of different states of water in the membrane based on its δ(HOH) vibrational spectra. It was found that hydration of a dry membrane leads first to complete dissociation of the sulfonic acid groups to liberate hydrated protons, which are isolated from each other and have δ(HOH) vibrational frequency around 1740 cm(-1). The initial hydration is not accompanied by a significant increase of the proton conductivity. Further hydration gives rise to a rapid increase of the conductivity in proportion to intensity of a new δ(HOH) band around 1630 cm(-1). This was interpreted in terms of formation of channels of weakly hydrogen-bonded water to combine the isolated hydrophilic domains containing hydrated protons and hydrated sulfonate ions produced during the initial stage of hydration. Upon dehydration, proton conductivity drops first very rapidly due to loss of the weakly hydrogen bonded water from the channels to leave hydrophilic domains isolated in the membrane. Dehydration of the protons proceeds very slowly after significant loss of the proton conductivity.

摘要

我们在室温下对 Nafion NRE211 膜进行了水合/脱水循环的时间分辨衰减全反射傅里叶变换红外(ATR-FTIR)和质子电导率测量。根据其 δ(HOH)振动光谱,将电导率变化解释为膜中不同状态的水。结果发现,干燥膜的水合首先导致磺酸基团完全离解,释放出与彼此隔离的水合质子,其 δ(HOH)振动频率约为 1740cm(-1)。初始水合并不伴随着质子电导率的显著增加。进一步的水合导致电导率的快速增加,与约 1630cm(-1)处新的 δ(HOH)带的强度成正比。这可以解释为形成具有弱氢键的水通道,将含有水合质子和水合磺酸根离子的亲水性域结合在一起,这些质子和水合磺酸根离子是在水合的初始阶段产生的。在脱水过程中,由于通道中较弱的氢键水的损失,质子电导率首先迅速下降,使亲水性域在膜中相互隔离。在质子电导率显著下降后,质子的脱水过程非常缓慢。

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