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用于质子交换膜燃料电池的磺化聚砜/层状双氢氧化物复合膜中水分子动力学的核磁共振研究

NMR Investigation of Water Molecular Dynamics in Sulfonated Polysulfone/Layered Double Hydroxide Composite Membranes for Proton Exchange Membrane Fuel Cells.

作者信息

Simari Cataldo

机构信息

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

National Reference Centre for Electrochemical Energy Storage (GISEL)-INSTM, Via G. Giusti 9, 50121 Firenze, Italy.

出版信息

Membranes (Basel). 2023 Jul 22;13(7):684. doi: 10.3390/membranes13070684.

Abstract

The development of nanocomposite membranes based on hydrocarbon polymers is emerging as one of the most promising strategies for overcoming the performance, cost, and safety limitations of Nafion, which is the current benchmark in proton exchange membranes for fuel cell applications. Among the various nanocomposite membranes, those based on sulfonated polysulfone (sPSU) and Layered Double Hydroxides (LDHs) hold promise regarding their successful utilization in practical applications due to their interesting electrochemical performance. This study aims to elucidate the effect of LDH introduction on the internal arrangement of water molecules in the hydrophilic clusters of sPSU and on its proton transport properties. Swelling tests, NMR characterization, and Electrochemical Impedance Spectroscopy (EIS) investigation allowed us to demonstrate that LDH platelets act as physical crosslinkers between -SOH groups of adjacent polymer chains. This increases dimensional stability while simultaneously creating continuous paths for proton conduction. This feature, combined with its impressive water retention capability, allows sPSU to yield a proton conductivity of ca. 4 mS cm at 90 °C and 20% RH.

摘要

基于烃类聚合物的纳米复合膜的开发正成为克服纳滤膜性能、成本和安全限制的最有前景的策略之一,纳滤膜是目前用于燃料电池应用的质子交换膜的基准。在各种纳米复合膜中,基于磺化聚砜(sPSU)和层状双氢氧化物(LDHs)的纳米复合膜因其有趣的电化学性能而有望在实际应用中成功应用。本研究旨在阐明引入LDH对sPSU亲水簇中水分子内部排列及其质子传输性质的影响。溶胀试验、核磁共振表征和电化学阻抗谱(EIS)研究使我们能够证明LDH片层充当相邻聚合物链的-SOH基团之间的物理交联剂。这提高了尺寸稳定性,同时为质子传导创造了连续路径。这一特性,再加上其令人印象深刻的保水能力,使得sPSU在90°C和20%相对湿度下的质子电导率约为4 mS/cm。

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