Issue 7, 2023

Sulfonated covalent organic framework packed Nafion membrane with high proton conductivity for H2/O2 fuel cell applications

Abstract

Developing novel proton exchange membranes with low activation energy and high performance is of great significance. This study reports a multichannel proton conduction membrane constructed from a 2D COF (ZUT-COF-SO3H) with high water retention as nanofillers, which exhibits high stability, low activation energy (0.086 eV), and excellent proton conductivity (0.1338 S cm−1). Compared to commercial Nafion, the 2.4-fold increase in proton conduction capacity is mainly attributed to COF nanochannels and high-loaded sulfonates providing additional transport paths for protons, resulting in a power density of 304.056 mW cm−2 in proton exchange fuel cells at a current density of 640.179 mA cm−2. The introduction of sulfonated COFs can not only effectively solve the proton channel limitation of traditional polymer materials but also provide abundant proton transport sites, which provides a new strategy for constructing high-performance proton transport membranes in H2/O2 fuel cells.

Graphical abstract: Sulfonated covalent organic framework packed Nafion membrane with high proton conductivity for H2/O2 fuel cell applications

Supplementary files

Article information

Article type
Paper
Submitted
28 Oct 2022
Accepted
03 Jan 2023
First published
04 Jan 2023

J. Mater. Chem. A, 2023,11, 3446-3453

Sulfonated covalent organic framework packed Nafion membrane with high proton conductivity for H2/O2 fuel cell applications

Z. Shao, X. Xue, K. Gao, J. Chen, L. Zhai, T. Wen, S. Xiong, H. Hou and L. Mi, J. Mater. Chem. A, 2023, 11, 3446 DOI: 10.1039/D2TA08435J

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