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Effect of Elevated Temperatures on the States of Water and Their Correlation with the Proton Conductivity of Nafion

机译:高温对水态的影响及其与Nafion质子电导率的关系

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For the first time, we report the effects of elevated temperatures, from 80 to 100 °C, on the changes in the states of water and ion–water channels and their correlation with the proton conductivity of Nafion NR212, which was investigated using a Fourier transform infrared spectroscopy study. Experimentally, three types of water aggregates, protonated water (H~(+)(H_(2)O)_(n )), nonprotonated hydrogen (H)-bonded water (H_(2)O···H_(2)O), and non-H-bonded water, were found in Nafion, and the existence of those three types of water was confirmed through ab initio molecular dynamics simulation. We found that the proton conductivity of Nafion increased for up to 80 °C, but from 80 to 100 °C, the conductivity did not increase; rather, all of those elevated temperatures showed identical conductivity values. The proton conductivities at lower relative humidities (RHs) (up to 50%) remained nearly identical for all elevated temperatures (80, 90, and 100 °C); however, from 60% RH (over λ = 4), the conductivity remarkably jumped for all elevated temperatures. The results indicated that the amount of randomly arranged water gradually increased and created more H-bonded water networks in Nafion at above 60% RH. From the deconvolution of the O–H bending band, it was found that the volume fraction f _(i ?(i =each?deconvoluted?band)) of H-bonded water for elevated temperatures (>80–100 °C) increased remarkably higher than for 60 °C.
机译:我们首次报道了从80到100°C的高温对水和离子水通道状态的变化及其与Nafion NR212质子电导率的相关性的影响,这是使用傅立叶研究的。变换红外光谱研究。实验上,三种类型的水聚集,质子化水(H〜(+)(H_(2)O)_(n)),非质子化氢(H)键合的水(H_(2)O···H_在Nafion中发现了(2)O)和非H键水,并通过从头算分子动力学模拟证实了这三种水的存在。我们发现,Nafion的质子传导率在最高80°C时会增加,但从80到100°C时,电导率并没有增加。相反,所有这些升高的温度都显示出相同的电导率值。对于所有升高的温度(80、90和100°C),较低的相对湿度(RHs)(最高50%)下的质子电导率几乎保持不变。但是,从60%RH(超过λ= 4)开始,在所有升高的温度下,电导率均显着跃升。结果表明,相对湿度大于60%时,Nafion中随机排列的水量逐渐增加,并创建了更多的H键水网络。从O–H弯曲带的反卷积,发现高温下H键水的体积分数 f _( i?( i =每卷反卷积谱带)) (> 80–100°C)明显高于60°C。

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