<p>Herein, we successfully synthesized a CeO<sub>2</sub>@(Cr–Fe/Co)-B catalyst for hydrogen generation via NaBH<sub>4</sub> and KBH<sub>4</sub> hydrolysis using a hydrothermal method. To investigate the catalytic activity and hydrogen generation rate (HGR) of the catalyst, various parameters, including the&#xa0;catalyst amount, temperature, reusability, and the concentrations of MOH and MBH<sub>4</sub> (M = Na, K), were tested. The catalyst was comprehensively characterized using FE-SEM, EDX, XRD, BET, TEM, XPS, and FTIR. The CeO<sub>2</sub>@(Cr–Fe/Co)-B catalyst exhibited a non-uniform, highly agglomerated, spherical morphology. TEM analysis revealed a core–shell structure with CeO<sub>2</sub> as the core and an 8–16&#xa0;nm (Cr–Fe/Co)-B shell. BET analysis confirmed the mesoporous nature of the catalyst, with a 27.19&#xa0;nm pore diameter enabling efficient diffusion and interaction during reactions. The catalyst demonstrated excellent performance, achieving an HGR of 13.05 L g<sub>metal</sub>⁻<sup>1</sup>&#xa0;min⁻<sup>1</sup> for NaBH<sub>4</sub> hydrolysis with an activation energy of 18.59&#xa0;kJ&#xa0;mol⁻<sup>1</sup> and 9.06 L g<sub>metal</sub>⁻<sup>1</sup>&#xa0;min⁻<sup>1</sup> for KBH<sub>4</sub> hydrolysis with an activation energy of 30.02&#xa0;kJ&#xa0;mol⁻<sup>1</sup>. Five consecutive experiments were conducted to evaluate the reusability of CeO<sub>2</sub>@(Cr–Fe/Co)-B for catalytic hydrolysis of NaBH<sub>4</sub> and KBH<sub>4</sub>.</p> Graphical abstract <p></p>

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Core–shell doping of cerium oxide with (Cr–Fe/Co)-B catalyst for enhanced hydrogen evolution in borohydride hydrolysis systems: performance and catalytic efficiency

  • Ömer Şahin,
  • Ayhan Abdullah Ceyhan,
  • Houssem Lakhali

摘要

Herein, we successfully synthesized a CeO2@(Cr–Fe/Co)-B catalyst for hydrogen generation via NaBH4 and KBH4 hydrolysis using a hydrothermal method. To investigate the catalytic activity and hydrogen generation rate (HGR) of the catalyst, various parameters, including the catalyst amount, temperature, reusability, and the concentrations of MOH and MBH4 (M = Na, K), were tested. The catalyst was comprehensively characterized using FE-SEM, EDX, XRD, BET, TEM, XPS, and FTIR. The CeO2@(Cr–Fe/Co)-B catalyst exhibited a non-uniform, highly agglomerated, spherical morphology. TEM analysis revealed a core–shell structure with CeO2 as the core and an 8–16 nm (Cr–Fe/Co)-B shell. BET analysis confirmed the mesoporous nature of the catalyst, with a 27.19 nm pore diameter enabling efficient diffusion and interaction during reactions. The catalyst demonstrated excellent performance, achieving an HGR of 13.05 L gmetal1 min⁻1 for NaBH4 hydrolysis with an activation energy of 18.59 kJ mol⁻1 and 9.06 L gmetal1 min⁻1 for KBH4 hydrolysis with an activation energy of 30.02 kJ mol⁻1. Five consecutive experiments were conducted to evaluate the reusability of CeO2@(Cr–Fe/Co)-B for catalytic hydrolysis of NaBH4 and KBH4.

Graphical abstract