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Synthesis and characterization of sulphonated poly (ether ether ketone)-phosphorized (zirconia) nano-composites as polymer electrolyte for fuel cell application

机译:磺化聚醚醚酮-磷化氧化锆纳米复合材料的合成及表征

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Polymer blends of Sulphonated Poly Ether Ether Ketone (SPEEK)/Phos-phorized Zirconia (PZD) with varying concentrations of PZD, were considered as materials for synthesizing Polymer Electrolyte Membranes (PEM). The PZD was added to check for variations in the mechanical stability, solvent absorption and proton conductivity of the composites with virgin SPEEK. The membranes were cast from solution using N,Methyl-2-Pyrrolidone (NMP) as solvent. Preliminary lab results showed a decrease in Ion Exchange Capacity (IEC) for composites from virgin SPEEK, a decrease in the water and methanol absorption was evident in the composites. FTIR confirmed the presence of sulphonic acid groups in the membranes and XRay Diffraction (XRD) confirmed the amorphous nature of the composites. Scanning Electron Microscopy (SEM) showed good homogeneity of the composites without any phase separations. Thermal analysis confirmed thermal stability of the composites membranes upto 250°C and tensile test measurements showed higher tensile strength for the composites than virgin SPEEK. Electrochemical Impedance (EIS) showed an increase in proton conductivity for the composites when compared to virgin SPEEK. After characterization, Membrane Electrode Assembly (MEA) was fabricated with Nafion, SPEEK, SPEEK-PZD for performance evaluation of the membranes. The composites showed higher current density when compared to virgin SPEEK and Nafion.
机译:磺化聚醚醚酮(SPEEK)/磷化氧化锆(PZD)与不同浓度的PZD的聚合物共混物被认为是合成聚合物电解质膜(PEM)的材料。添加PZD来检查原始SPEEK复合材料的机械稳定性,溶剂吸收性和质子传导性的变化。使用N,甲基-2-吡咯烷酮(NMP)作为溶剂,由溶液浇铸膜。实验室的初步结果显示,原始SPEEK的复合材料的离子交换容量(IEC)降低,复合材料中水和甲醇吸收的降低明显。 FTIR证实了膜中存在磺酸基,X射线衍射(XRD)证实了复合材料的无定形性质。扫描电子显微镜(SEM)显示复合材料具有良好的均匀性,没有任何相分离。热分析证实了复合材料膜在高达250°C的温度下具有热稳定性,并且拉伸试验测量结果表明,复合材料的拉伸强度高于原始SPEEK。与原始SPEEK相比,电化学阻抗(EIS)显示复合材料的质子传导率增加。表征后,用Nafion,SPEEK,SPEEK-PZD制造膜电极组件(MEA),以评估膜的性能。与原始的SPEEK和Nafion相比,复合材料显示出更高的电流密度。

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