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Design of a high-efficiency magnetically separable Fe3O4@Al2O3/Co-Cs catalyst for sustainable hydrogen generation via NaBH4 hydrolysis: experimental and DFT insights

  • Houssem Lakhali*
  • , Ayhan Abdullah Ceyhan
  • , Ömer Şahin
  • *Corresponding author for this work
  • Konya Technical University

Research output: Contribution to journalArticlepeer-review

Abstract

We report the first successful synthesis of a novel magnetically recoverable nanocatalyst, Fe3O4@Al2O3/Co–Cs, incorporating cesium (Cs) as a co-catalytic promoter for efficient and sustainable hydrogen generation via NaBH4 hydrolysis. In this system, magnetite (Fe3O4) serves as a magnetic core, enabling facile separation and recyclability, whereas the Al2O3 shell enhances thermal stability, structural integrity, and active-site dispersion. Cobalt (Co) acts as the primary active metal, whereas Cs is introduced here for the first time in NaBH4 hydrolysis as an electronic promoter, significantly enhancing electron transfer and accelerating the hydrogen generation rate (HGR). Comprehensive characterization using FTIR, XRD, FE-SEM/EDX, and BET analyses confirmed the successful formation of a hierarchical core–shell structure. FE-SEM images revealed a flower-like morphology composed of aggregated nanosheets and nanoparticles that promoted efficient mass transfer and gas diffusion. Catalytic performance tests conducted at 30 °C demonstrated a high hydrogen generation rate of 17.24 L g−1 min−1. The apparent activation energy was determined to be 27.18 kJ mol−1, indicating favorable reaction kinetics under mild conditions. Thermodynamic analysis revealed a low enthalpy of adsorption (ΔHads = 35.66 ± 0.01 kJ mol−1) and a small entropy change (ΔS° = 0.09022 ± 0.01 kJ mol−1 K−1), suggesting favorable interactions between the reactants and catalyst surface. Density functional theory (DFT) calculations further confirmed that the Fe3O4@Al2O3/Co–Cs system exhibited enhanced adsorption strength and reduced activation barriers, facilitating NaBH4 hydrolysis through efficient charge transfer, intermediate stabilization, and synergistic catalytic effects. Overall, this study highlights the novel role of cesium as an alkali metal promoter in NaBH4 hydrolysis, opening new opportunities for the design of advanced non-noble metal catalysts for hydrogen generation.

Original languageEnglish
Article number139900
JournalFuel
Volume427
DOIs
Publication statusPublished - 1 Jan 2027

Bibliographical note

Publisher Copyright:
© 2026 Elsevier Ltd.

Keywords

  • Core-shell
  • DFT analysis
  • Hydrogen generation
  • Hydrothermal method
  • Magnetic catalyst
  • NaBH

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