首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Alkaline solid polymer electrolyte membranes based on structurally modified PVA/PVP with improved alkali stability
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Alkaline solid polymer electrolyte membranes based on structurally modified PVA/PVP with improved alkali stability

机译:基于结构改进的PVA / PVP的碱性固体聚合物电解质膜,具有改善的碱稳定性

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摘要

Novel alkaline solid polymer electrolyte membranes that can conduct anions (OH~-) have been prepared from poly(vinyl alcohol)/poly(vinylpyrrolidone) (PVA/PVP) by blending and chemical cross-linking, followed by doping in aqueous KOH solution. The physicochemical properties of these membranes have been studied in detail by FTIR, TG, and SEM analyses. The ionic conductivity was found to be greatly dependent on the concentration of KOH and the interpenetrated PVP in the PVA matrix. A maximum conductivity of up to 0.53 S cm~(-1) at room temperature was achieved for PVA/PVP in a mass ratio of 1:0.5 after doping in 8 m aqueous KOH solution. The membrane showed perfect alkaline stability without losing its integrity even upon exposure to 10 m KOH solution at up to 120 °C. Scanning electron micrographs revealed a highly ordered microvoid structure uniformly dispersed on the membrane surface with a pore size of ca. 200 nm after heat-curing, which imparted the membrane with good liquid electrolyte (KOH) retention ability. FTIR spectra showed that these high ionic conductivities may be attributed to the presence of excess free KOH in the polymer matrix in addition to KOH bound to the polymer. Almost constant, highly stable, ionic conductivity while maintaining mechanical integrity was retained at room temperature for more than one month.
机译:由聚乙烯醇/聚乙烯吡咯烷酮(PVA / PVP)共混和化学交联,然后在KOH水溶液中掺杂制得了可以传导阴离子(OH〜-)的新型碱性固体聚合物电解质膜。这些膜的物理化学性质已通过FTIR,TG和SEM分析进行了详细研究。发现离子电导率很大程度上取决于KVA的浓度和PVA基质中互穿的PVP。掺杂在8 m KOH水溶液中后,PVA / PVP的质量比为1:0.5,室温下的最大电导率达到0.53 S cm〜(-1)。该膜即使在最高120°C的10 m KOH溶液中暴露,也表现出完美的碱性稳定性,而不会失去其完整性。扫描电子显微照片显示出高度有序的微孔结构均匀地分散在膜表面上,孔径为。热固化后200 nm,赋予膜良好的液体电解质(KOH)保留能力。 FTIR光谱表明,这些高离子电导率可能归因于除了结合到聚合物上的KOH之外,聚合物基质中存在过量的游离KOH。在保持机械完整性的同时,几乎恒定,高度稳定的离子电导率在室温下保持了一个多月。

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