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February 25, 2026Catalysts2 citationsOpen Access

Nickel-Based Catalysts for Hydrogen Production Through Partial Oxidation: The Role of KIT-6 and Promoter Effects

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YAYasameen T. AhmedGAGhzzai AlmutairiAAAbdulaziz A. M. Abahussain

Key Points

  • The aim is to evaluate the impact of Gd on nickel-based catalysts in hydrogen production through partial oxidation of methane.
  • Synthesis of Ni/KIT-6 catalysts with varying Gd weight percentages (0.5–2 wt.%).
  • Characterization using N2 physisorption, X-ray diffraction (XRD), and H2-temperature programed reduction (H2-TPR).
  • Testing catalytic performance and optimization using response surface methodology (RSM).
  • Use of transmission electron microscopy (TEM) and Raman spectroscopy to analyze used catalysts.
  • The best catalyst formulation was found to be 5Ni + 1Gd/KIT-6, achieving 89.0% CH4 conversion and 87.4% H2 yield.
  • Gd at 1 wt.% controlled metallic particle size distribution and inhibited disordered carbon formation during high-temperature conditions.
  • A 24-hour stability test showed consistent H2 yield of 85–87% and minimal performance degradation, demonstrating improved operational stability.

Abstract

Partial oxidation of methane (POM) is a good way to make syngas because it uses exothermic reactions to keep itself going. This study made a series of Ni/KIT-6 catalyst precursors with Gd (0.5–2 wt.%) added to them and then carefully looked at how they changed into active catalysts. The first tests on the precursors using N2 physisorption, XRD, and H2-TPR showed that they had a high surface area and changed how they reduced. However, the high-temperature activation (700 °C) and reaction (682 °C) conditions caused thermal evolution and sintering. Tests of catalytic performance and RSM optimization found that the 5Ni + 1Gd/KIT-6 formulation was the best. Under the best conditions, it converted 89.0% of CH4 and 87.4% of H2. Using TEM and Raman spectroscopy to look at the used catalysts showed that 1 wt.% Gd was able to control the size distribution of the metallic particles and stop disordered carbon from forming, even after thermal recrystallisation. A 24 h stability test confirmed these findings, indicating a stable H2 yield (85–87%) and minimal performance degradation, thereby demonstrating that Gd promotion maintains the stability of the active metallic phase under operational stress.

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Cite This Study

Ahmed et al. (2026) studied this question.

synapsesocial.com/papers/699e919cf5123be5ed04f519https://doi.org/10.3390/catal16020201
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