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用于燃料电池应用的磺化聚醚醚酮/有机硅层状材料纳米复合膜的传输性能和机械特性

Transport Properties and Mechanical Features of Sulfonated Polyether Ether Ketone/Organosilica Layered Materials Nanocomposite Membranes for Fuel Cell Applications.

作者信息

Simari Cataldo, Enotiadis Apostolos, Nicotera Isabella

机构信息

Department of Chemistry and Chemical Technologies, University of Calabria, 87036 Rende, CS, Italy.

National Center for Scientific Research "Demokritos", 15310, Ag. Paraskevi Attikis, Athens, Greece.

出版信息

Membranes (Basel). 2020 Apr 29;10(5):87. doi: 10.3390/membranes10050087.

Abstract

In this work, we study the preparation of new sulfonated polyether ether ketone (sPEEK) nanocomposite membranes, containing highly ionic silica layered nanoadditives, as a low cost and efficient proton exchange membranes for fuel cell applications. To achieve the best compromise among mechanical strength, dimensional stability and proton conductivity, sPEEK polymers with different sulfonation degree (DS) were examined. Silica nanoplatelets, decorated with a plethora of sulfonic acid groups, were synthesized through the one-step process, and composite membranes at 1, 3 and 5 wt% of filler loadings were prepared by a simple casting procedure. The presence of ionic layered additives improves the mechanical strength, the water retention capacity and the transport properties remarkably. The nanocomposite membrane with 5% wt of nanoadditive exhibited an improvement of tensile strength almost 160% (68.32 MPa,) with respect to pristine sPEEK and a ten-times higher rate of proton conductivity (12.8 mS cm) under very harsh operative conditions (i.e., 90 °C and 30% RH), compared to a filler-free membrane. These findings represent a significant advance as a polymer electrolyte or a fuel cell application.

摘要

在本工作中,我们研究了新型磺化聚醚醚酮(sPEEK)纳米复合膜的制备,该复合膜含有高离子性的二氧化硅层状纳米添加剂,作为用于燃料电池应用的低成本高效质子交换膜。为了在机械强度、尺寸稳定性和质子传导率之间取得最佳平衡,我们研究了不同磺化度(DS)的sPEEK聚合物。通过一步法合成了带有大量磺酸基团的二氧化硅纳米片,并通过简单的浇铸工艺制备了填充量为1 wt%、3 wt%和5 wt%的复合膜。离子层状添加剂的存在显著提高了机械强度、保水能力和传输性能。与无填料膜相比,含5 wt%纳米添加剂的纳米复合膜在非常苛刻的操作条件下(即90°C和30%相对湿度),拉伸强度提高了近160%(68.32 MPa),质子传导率提高了10倍(12.8 mS/cm)。这些发现对于聚合物电解质或燃料电池应用而言是一项重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9f4/7281369/e991dc3ef10b/membranes-10-00087-g001.jpg

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