Incorporation of multilayered double hydroxides/sepiolite augments proton conductivity performance in low sulfonated polyether sulfone octyl sulfonamide

被引:0
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作者
khaled Charradi
Walid Mabrouk
Imen Ben Kacem
Nizar Bellakhal
Youssef O. Al-Ghamdi
Riadh Marzouki
Sherif M. A. S. Keshk
机构
[1] Technoparc Borj Cedria,Nanomaterials and Systems for Renewable Energy Laboratory, Research and Technology Center of Energy
[2] Technologic Parc Borj Cedria,Laboratory Water, Membranes and Environmental Biotechnology, Water Research and Technologies Center
[3] University of Carthage,Ecochimie Laboratory, National Institute of Applied Sciences and Technology
[4] Majmaah University,Department of Chemistry, College of Science Al
[5] King Khalid University,Zulfi
[6] Become: Deep Tech & Nanoscience,Department of Chemistry, College of Science
关键词
Composite membrane; LSPSO; Layered double hydroxides; Sepiolite; Proton conductivity;
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中图分类号
学科分类号
摘要
Low-sulfonation-level polyether sulfone octyl sulfonamide (LSPSO) was blended with a layered double hydroxides (LDHs, Mg2AlCl)/sepiolite nanostructure clay as a filler to create an electrolyte membrane for fuel cell applications. Comprehensive characterization of the composite membranes was conducted, encompassing Fourier-transform infrared spectroscopy, X-ray diffraction, mechanical stability assessment, thermal gravimetric analysis, ion exchange capability, swelling characteristics, water uptake performance, and electrochemical impedance spectroscopy analysis. In comparison to the pristine LSPSO membrane, the presence of LDHs/sepiolite nanoarchitecture material within LSPSO exhibited superior water retention and proton conductivity values, especially at elevated temperatures. The proton conductivity of the composite membranes reached approximately 250 mS/cm, while the unmodified LSPSO membrane only achieved 35 mS/cm at 100 °C. Moreover, LSPSO composite membranes demonstrated enhanced chemical and thermal stability along with higher proton conductivity when compared to pristine LSPSO membranes. These findings highlight the potential of developing tailored LSPSO composite membranes to advance the prospects of commercial applications in proton exchange membrane fuel cells.
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页码:97 / 107
页数:10
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