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Anhydrous Proton Conducting Materials Based on Sulfonated Dimethylphenethylchlorosilane Grafted Mesoporous Silica/Ionic Liquid Composite

机译:磺化二甲基苯乙基氯硅烷接枝介孔二氧化硅/离子液体复合材料的无水质子传导材料

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Efficient membrane proton conductivity at elevated temperatures (>100 °C) and reduced humidification conditions is a critical issue hindering fuel cell commercialization. Herein, proton conducting materials consisting of high surface area acid catalyzed mesoporous silica functionalized with sulfonated dimethylphenethylchlorosilane was investigated under anhydrous conditions. The organic moiety covalently bonded to the silica substrate via active hydroxyl groups on the silica pore surface. The structure and dynamic phases of the attached organic molecule were characterized and qualitatively determined by XRD, TEM, FT-IR, and solid state NMR. The amount of grafted organic molecules was estimated to be 2.45 μmol m~(-2) by carbon elemental analysis. The so-formed composite materials showed adequate thermal stability up to 300 °C as determined by TGA. Under anhydrous conditions, ionic conductivity of the composite material upon ionic liquid impregnation reaches a peak value of 1.14 x 10~(-2) S cm~(-1) at 160 °C associated with the activation energy of 9.24 kJ mol~(-1) for proton transport.
机译:高温(> 100°C)和减湿条件下有效的膜质子传导性是阻碍燃料电池商业化的关键问题。本文中,在无水条件下研究了质子传导性材料,该质子传导性材料由高表面积酸催化的,用磺化二甲基苯乙基氯硅烷官能化的介孔二氧化硅组成。有机部分通过二氧化硅孔表面上的活性羟基共价结合到二氧化硅基质上。通过XRD,TEM,FT-IR和固态NMR表征并定性确定了附着的有机分子的结构和动态相。通过碳元素分析估计接枝的有机分子的量为2.45μmolm〜(-2)。通过TGA测定,如此形成的复合材料在高达300℃下显示出足够的热稳定性。在无水条件下,离子液体浸渍后复合材料的离子电导率在160°C时达到1.14 x 10〜(-2)S cm〜(-1)的峰值,活化能为9.24 kJ mol〜(- 1)用于质子运输。

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