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SnO_2 nanoparticles dispersed carboxylated Poly(arylene ether sulfones) nanocomposites for proton exchange membrane fuel cell (PEMFC) applications

机译:SnO_2纳米颗粒分散羧化聚(亚芳基醚砜)纳米复合材料,用于质子交换膜燃料电池(PEMFC)应用

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The new poly (arylene ether sulfone) (CPAEs) polymer, and carboxylated through simple Thiol Ene reaction, is characterized by FTIR, H-1 NMR. The SnO2 nanoparticles are synthesized via alkaline and template free, one-pot hydrothermal method and characterized using HRTEM analysis. SnO2 nanoparticles in dispersed CPAEs polymer is synthesized and examined by PXRD, SEM and TGA analyses. Further, the typical properties of bare CPAEs and 1%, 2% and 3% SnO2 NPs of dispersed CPAEs nanocomposite membranes such as water uptake, swelling ratio, ion exchange capacity, proton conductivity and oxidative stability are evaluated. The PXRD pattern suggests the successful formation of amorphous natured CPAEs polymer and tetragonal rutile structured in SnO2 NPs. It is observed that the SEM images indicate SnO2 NPs, bare CPAEs polymers as spherical and form wavelike morphology. It is also noted that the HR-TEM image has identified SnO2 NPs as non-uniform in size with an average particle size of 4 nm. 3% SnO2 NPs loaded with CPAEs nanocomposite membrane exhibits an IEC value at 0.78 mmol/g-1 and a proton conductivity value of around 1.49 x 10(-3) S/cm(-1) at 100 degrees C. It shows excellent oxidative stability with a value of 12.3% degradation after being exposed to Fenton reagent at 68 degrees C for 8 h. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:新的聚(亚芳基醚砜)(CPAE)聚合物和通过简单的硫醇反应羧化,其特征在于FTIR,H-1 NMR。通过碱性和模板,单罐水热法合成SnO2纳米粒子,并使用HRTEM分析表征。通过PXRD,SEM和TGA分析合成和检查分散的CPAES聚合物中的SnO2纳米粒子。此外,评估了分散的CPAES纳米复合膜的裸CPAE和1%,2%和3%SNO2 NP的典型性质,例如水吸收,溶胀比,离子交换容量,质子电导率和氧化稳定性。 PXRD模式表明,在SnO2 NPS中成功形成无定形的CPAES聚合物和四方金红石。观察到SEM图像表示SnO2 NPS,裸CPAES聚合物作为球形和形成波状形态。还应注意,HR-TEM图像已将SNO2 NPS鉴定为不均匀的尺寸,平均粒径为4nm。加载有CPAES纳米复合膜的3%SNO2 NPS在0.78mmol / g-1的IEC值下,在100摄氏度下显示出约1.49×10(-3)S / cm(-1)的质子电导率值。它显示出优异的氧化剂在68℃下暴露于芬顿试剂后,稳定性为12.3%的降解8小时。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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