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Incorporation of nano-Al2O3 within the blend of sulfonated-PVdF-co-HFP and Nafion for high temperature application in DMFCs

机译:将纳米Al2O3掺入磺化的PVdF-co-HFP和Nafion的共混物中以用于DMFC中的高温应用

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Nano-Al2O3 was incorporated into the blend of sulfonated-PVdF-co-HFP/Nafion using NMP (1-methyl-2-pyrrolidone) as a common solvent with the aim to develop an alternate membrane to be used in a single cell direct methanol fuel cell (DMFC). Furthermore, the synthesized nano-composite membranes were subjected to different tests such as FTIR, XRD, water uptake, swelling, IEC (ion exchange capacity), proton conductivity and methanol crossover. The water uptake results indicated that with an increase in the nano-Al2O3 content (up to 5% w/w) in the blend, the water uptake of the nanocomposite matrix rapidly increased up to 34.8%. Sample S-5 composed of 5% (w/w) Al2O3 exhibited comparable proton conductivity/IEC, low methanol permeability and high membrane selectivity over the corresponding Nafion-117 membrane. In addition, the prospective nanocomposite membrane also exhibited comparable mechanical stability. Moreover, the maximum current density at 0.2 V in a single cell DMFC, which was operated with atmospheric air (without preheating/humidification) at the cathode, was recorded as 285 mA cm(-2) and 270 mA cm(-2) at 90 degrees C and 110 degrees C, respectively. Comparing the power densities of the single cell fitted with the membrane of Nafion-1 17 (28 mW cm(-2)) and blend of sulfonated-PVdF-co-HFP and Nafion (32 mW cm(-2)), the single cell with the composite membrane S-5 showed an optimum power density (57 mW cm(-2)) at +0.2 V at a high temperature of 90-110 degrees C. These results indicate that the composite membrane could effectively reduce the anhydrous conditions at high operating temperatures.
机译:使用NMP(1-甲基-2-吡咯烷酮)作为常见溶剂,将纳米Al2O3掺入磺化的PVdF-co-HFP / Nafion的共混物中,目的是开发一种可用于单细胞直接甲醇的替代膜燃料电池(DMFC)。此外,对合成的纳米复合膜进行了不同的测试,例如FTIR,XRD,吸水率,溶胀,IEC(离子交换容量),质子传导率和甲醇交换。吸水率结果表明,随着共混物中纳米Al2O3含量的增加(最高5%w / w),纳米复合材料基质的吸水率迅速增加至34.8%。与相应的Nafion-117膜相比,由5%(w / w)Al2O3组成的样品S-5表现出可比的质子传导率/ IEC,低甲醇渗透性和高膜选择性。另外,预期的纳米复合膜还表现出相当的机械稳定性。此外,在阴极在大气(无预热/加湿)下运行的单电池DMFC中,在0.2 V时的最大电流密度记录为285 mA cm(-2)和270 mA cm(-2)。分别为90摄氏度和110摄氏度。比较装有Nafion-1 17膜(28 mW cm(-2))以及磺化PVdF-co-HFP和Nafion(32 mW cm(-2))的混合物的单电池的功率密度带有复合膜S-5的电池在90°C至110°C的高温下+0.2 V时显示最佳功率密度(57 mW cm(-2))。这些结果表明,复合膜可以有效地减少无水条件在高工作温度下。

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