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High performance polyvinyl alcohol/calcium titanate nanocomposite anion-exchange membranes as separators in redox flow batteries

机译:高效聚乙烯醇/钛酸钙纳米复合阴离子交换膜作为氧化还原流量电池中的分离器

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摘要

Low ionic conductivity and poor chemical stability are the two key parameters that limit the use of many anion-exchange membranes in electrochemical applications like rechargeable batteries and fuel cells. Herein we report a method for the synthesis of a high performance anion-exchange membrane fabricated by incorporating calcium titanate nanoparticles (CaTiO~(3)) into polyvinyl alcohol (PVA) matrix. The CaTiO~(3)was synthesized by a new co-precipitation method from a solution of two simple precursors, viz potassium titanyl oxalate and calcium chloride. The XRD data of the synthesized nanoparticles indicate a phase pure orthorhombic perovskite structure. Morphological features investigated with SEM and TEM studies, reveal that the CaTiO~(3)is having spherical shape with a diameter of approximately 200?nm. The PVA/CaTiO~(3)nanocomposite membranes were fabricated by solution casting method from a well dispersed suspension of CaTiO~(3)in PVA and characterized by FT-IR spectroscopy, TGA, SEM, AC impedance analysis and tensile strength measurements. The membranes with 30?wt% CaTiO~(3)content possess ionic conductivity of 66?mS?cm_(?1)at room temperature. The electrochemical performance of an all-iron redox flow cell was studied using galvanostatic charge–discharge tests using the above nanocomposite membrane as separator and the system exhibited a coulombic efficiency of 75% during the charge–discharge cycles.
机译:低离子电导率和差的化学稳定性是限制在电化学应用中使用许多阴离子交换膜的两个关键参数,如可充电电池和燃料电池。在此,我们报告了一种通过将钛酸钙纳米粒子(CaTiO〜(3))掺入聚乙烯醇(PVA)基质中制备的高性能阴离子交换膜的方法。通过来自两种简单的前体,丙烷钾和氯化钙的溶液,通过新的共沉淀法合成CATIO〜(3)。合成纳米颗粒的XRD数据表明了相纯正交流钙钛矿结构。用SEM和TEM研究研究的形态学特征揭示了CATIO〜(3)具有直径约为200μm的球形形状。 PVA / CATIO〜(3)纳米复合膜通过溶液浇铸方法从PVA中的CATIO〜(3)的良好分散的悬浮液中制备,并通过FT-IR光谱,TGA,SEM,AC阻抗分析和拉伸强度测量。具有30μl%caIO〜(3)含量的膜在室温下具有66Ωms的离子电导率为66Ω·cm _(α1)。使用上述纳米复合膜作为分离器使用上述纳米复合膜的电镀电荷 - 放电试验研究了全铁氧化还原流动池的电化学性能,并且该系统在充放电循环期间表现出75%的库仑效率。

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