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Preparation, characterization and properties of PVDF-g-PAMPS/PMMA-co-PAMPS/silica nanoparticle as a new proton exchange nanocomposite membrane

机译:新型质子交换纳米复合膜PVDF-g-PAMPS / PMMA-co-PAMPS /二氧化硅纳米粒子的制备,表征与性能

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In this study, preparation and characterization of PVDF/PMMA-co-PAMPS/silica nanocomposite membranes as a new proton exchange membrane were investigated. Polyvinylidene fluoride (PVDF) containing pendant sulfonic acid groups was synthesized by grafting through RAFT polymerization of 2-acrylamido-2-methyl-propanesulfonic acid (AMPS) from vinyl pendent groups of already modified PVDF as a macro-monomer. The synthesized PVDF graft copolymer (PVDF-g-PAMPS) was blended with miscible copolymer containing sulfonated segments (PMMA-co-PAMPS) and sulfonic acid functionalized silica nanoparticles in order to achieve high performance nanocornposite proton exchange membrane. It was found that the addition of PMMA-co-PAMPS copolymer resulted in a significant increase in porosity and slight reduction in crystallinity of the nanocomposite membranes, which favored the water uptake and proton transport at ambient temperature. Both the water uptake and the ion-exchange capacity (IEC) of the nanocomposite membranes were increased by increasing silica nanoparticles loading. The maximum proton conductivity was 20 mS/cm at 25 degrees C for the nanocomposite membrane containing 10% silica nanoparticles. Also, this nanocomposite membrane showed a power density as high as 34.3 mW/cm(2) at peak current density of 140 mA/cm(2). The thermal and mechanical properties of these nanocomposite membranes were also studied. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项研究中,研究了PVDF / PMMA-co-PAMPS /二氧化硅纳米复合膜作为新型质子交换膜的制备和表征。含有侧基磺酸基的聚偏二氟乙烯(PVDF)是通过RAFT聚合从已经改性的PVDF的乙烯基侧基中作为大分子单体通过2-丙烯酸酰胺基-2-甲基丙烷磺酸(AMPS)接枝而合成的。将合成的PVDF接枝共聚物(PVDF-g-PAMPS)与包含磺化链段的可混溶共聚物(PMMA-co-PAMPS)和磺酸官能化的二氧化硅纳米粒子共混,以实现高性能的纳米角质子交换膜。发现添加PMMA-共-PAMPS共聚物导致纳米复合膜的孔隙率显着增加并且结晶度略微降低,这有利于环境温度下的水吸收和质子传输。纳米复合膜的吸水率和离子交换容量(IEC)均通过增加二氧化硅纳米颗粒的负载量而增加。对于含有10%二氧化硅纳米颗粒的纳米复合膜,在25℃下最大质子传导率是20mS / cm。同样,这种纳米复合膜在140 mA / cm(2)的峰值电流密度下显示出高达34.3 mW / cm(2)的功率密度。还研究了这些纳米复合膜的热和机械性能。 (C)2015 Elsevier B.V.保留所有权利。

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