Tailored multifunctional molybdenum-iron nanosheets for enhanced membrane filtration and excellent electrocatalytic performance for hydrogen evolution reaction

  • Arfa Iqbal
  • , Emre Cevik
  • , Ayhan Bozkurt
  • , Ayyaz Mustafa
  • , Sarah Asiri
  • , Omar Alagha
  • , Talal F. Qahtan

Research output: Contribution to journalArticlepeer-review

14 Scopus citations

Abstract

During the last decade, immense interest has been given to overcoming water pollution and energy storage issues. Conventional water treatment technologies and hydrogen production (replacement of fossil fuels) exhibit certain limitations. Therefore, the present research focuses on the application of novel molybdenum-iron (MoFe) nanosheets in the removal of various water pollutants through membrane filtration technology. Furthermore, the used nanocomposite membranes during the water treatment were recycled for hydrogen production through hydrogen evolution reaction (HER). Membrane studies depicted excellent rejection of water contaminants through MoFe nanocomposite membrane, i.e., 94%–99% removal for dyes with flux rates up to 288 L/m2.h. Whereas 63.4%, 81.3%, and 98.7% removal were achieved for total dissolved solids, total organic carbon, and turbidity, respectively, and toxic metals exhibited 100% removal with a maximum flux rate of 260 L/m2.h. Moreover, a multi-cycle filtration run for the optimized membrane revealed excellent stability performance. HER studies exhibited the remarkable stability of MoFe-based catalysts during electrochemical activity, and their electrochemical kinetics was found to be quite comparable to platinum (Pt) catalysts. All findings supported the extraordinary potential of MoFe nanosheets in water treatment through membrane filtration and their further application as a sustainable option for hydrogen production during the HER process. Hence, the effectiveness of MoFe nanosheets signifies a promising solution for large-scale applications in both water and energy fields, which can not only enhance water purification and provide an affordable alternative to expensive catalysts used in HER but also overcome the limitations of traditional water treatment techniques and hydrogen production.

Original languageEnglish
Article number138486
JournalJournal of Cleaner Production
Volume421
DOIs
StatePublished - 1 Oct 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 6 - Clean Water and Sanitation
    SDG 6 Clean Water and Sanitation
  2. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Energy
  • Hydrogen evolution reaction
  • Membrane filtration
  • Nanosheets
  • Water pollution

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