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April 18, 2026Environmental Science and Pollution Research0 citationsOpen Access

Renewable fuel gases and important organic compounds production from ethanol dehydrogenation using nickel oxide, a green-synthesized catalyst

CGCarla M. B. GomesDZDenise Aparecida ZempulskiCDCaroline Da Ros Montes D’Oca

Key Points

  • The research aims to explore the role of green-synthesized NiO nanoparticles in ethanol dehydrogenation for hydrogen and organic compound production.
  • Utilized green-synthesized NiO nanoparticles as a catalyst for ethanol dehydrogenation.
  • Conducted experiments at varying temperatures and catalyst concentrations.
  • Measured hydrogen selectivity and calorific value of fuel gas mixtures.
  • Monitored reaction kinetics over 1 to 8 hours.
  • Achieved 97.4% selectivity for hydrogen production at 10% NiO and 260 °C.
  • At 10% NiO and 280 °C, a calorific value of 1,231.6 kJ was recorded.
  • Noted a transition in gas products from propane to hydrogen and then to methane.
  • Observed production of organic compounds, including 1,1-diethoxyethane and 1-butanol.

Abstract

Abstract Bioethanol dehydrogenation is a promising route for clean and renewable hydrogen production, aligning with low-carbon economy goals. Additionally, it promotes the synthesis of valuable organic compounds from bioethanol. This study investigated the use of green-synthesized NiO nanoparticles as a catalyst for ethanol dehydrogenation. The highest selectivity for hydrogen production (97.4%) was achieved using 10% NiO at 260 °C. However, at 10% NiO and 280 °C, the fuel gas mixture yielded a higher calculated calorific value (1,231.6 kJ). This condition was used to evaluate the reaction’s kinetic over a period of 1 to 8 reaction-hours. During these experiments, a progressive increase in gas volume was observed, along with a transition in the gas products from propane to hydrogen, followed by methane. These changes correlated with ethanol conversion to organic compounds (1,1-diethoxyethane and 1-butanol) in the liquid phase, as well as catalyst’s crystal structure alterations, from Ni 2+ face-centered-cubic (FCC) to metallic nickel FCC and hexagonal close-packed (HCP) phase.

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Cite This Study

Gomes et al. (2026) studied this question.

synapsesocial.com/papers/69e3201440886becb653f2fdhttps://doi.org/10.1007/s11356-026-37421-8
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