Ru-Promoted Ni/ZIF-8 Catalysts for C–C Coupling in the Upgrading of Acetone–Butanol–Ethanol Mixtures

Catalytic upgrading of acetone–butanol–ethanol (ABE) mixtures provides a route to higher-value oxygenates for chemicals and fuel precursors. Here, Ni-, Ru-, and Ni–Ru-loaded ZIF-8 catalysts were prepared and evaluated for ABE upgrading, with particular emphasis on C7 oxygenate formation and the roles of reductive activation and acid–base properties. In situ Ni K-edge X-ray absorption spectroscopy showed that Ru facilitated Ni reduction during H2 activation, while CO2-TPD indicated increased basicity upon Ni incorporation. Among the activated catalysts, bimetallic 4Ni2RuZ8_act gave the highest 2-heptanone yield, exceeding the combined yields of the corresponding monometallic catalysts and suggesting a synergistic Ni–Ru effect. A pathway involving n-butanol dehydrogenation, C–C coupling with acetone-derived species to form 3-hepten-2-one, and subsequent hydrogenation to 2-heptanone was proposed. At 240 °C for 20 h using 20 mg of catalyst, 4Ni2RuZ8_act achieved 61.8% acetone conversion and produced 432 µmol of 2-heptanone. Reuse decreased both values by approximately 20%, accompanied by partial ZIF-8 degradation and ZnO formation. These results demonstrate the potential of multifunctional Ni–Ru/ZIF-8 catalysts for ABE upgrading toward C7 oxygenates while identifying structural stability as a key challenge for further development.

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Publication Details

Journal
Catalysts
Published
2026-10-07
DOI
https://doi.org/10.3390/catal16100887
Primary Topic
Catalysis for Biomass Conversion
Type
article
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article

Ru-Promoted Ni/ZIF-8 Catalysts for C–C Coupling in the Upgrading of Acetone–Butanol–Ethanol Mixtures

Pongtanawat Khemthong, Sanchai Prayoonpokarach, Yingyot Poo‐arporn, Krittanun Deekamwong et al.
Catalysts
Catalysis for Biomass Conversion
article

Ru-Promoted Ni/ZIF-8 Catalysts for C–C Coupling in the Upgrading of Acetone–Butanol–Ethanol Mixtures

Pongtanawat Khemthong, Sanchai Prayoonpokarach, Yingyot Poo‐arporn, Krittanun Deekamwong, Jatuporn Wittayakun, Chaiyasit Phawa, Wanwisa Limphirat, Siriporn Kosawatthanakun, Sirinuch Loiha, Piyanat Seejandee
article en

Abstract

Catalytic upgrading of acetone–butanol–ethanol (ABE) mixtures provides a route to higher-value oxygenates for chemicals and fuel precursors. Here, Ni-, Ru-, and Ni–Ru-loaded ZIF-8 catalysts were prepared and evaluated for ABE upgrading, with particular emphasis on C7 oxygenate formation and the roles of reductive activation and acid–base properties. In situ Ni K-edge X-ray absorption spectroscopy showed that Ru facilitated Ni reduction during H2 activation, while CO2-TPD indicated increased basicity upon Ni incorporation. Among the activated catalysts, bimetallic 4Ni2RuZ8_act gave the highest 2-heptanone yield, exceeding the combined yields of the corresponding monometallic catalysts and suggesting a synergistic Ni–Ru effect. A pathway involving n-butanol dehydrogenation, C–C coupling with acetone-derived species to form 3-hepten-2-one, and subsequent hydrogenation to 2-heptanone was proposed. At 240 °C for 20 h using 20 mg of catalyst, 4Ni2RuZ8_act achieved 61.8% acetone conversion and produced 432 µmol of 2-heptanone. Reuse decreased both values by approximately 20%, accompanied by partial ZIF-8 degradation and ZnO formation. These results demonstrate the potential of multifunctional Ni–Ru/ZIF-8 catalysts for ABE upgrading toward C7 oxygenates while identifying structural stability as a key challenge for further development.

CatalystsVol. 16(10)
National Science and Technology Development Agency (TH), Khon Kaen University (TH), Synchrotron Light Research Institute (TH), National Nanotechnology Center (TH), Suranaree University of Technology (TH)
Openalex Percentile: Top 23%
Catalysis for Biomass Conversion
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