Highly stable hydrothermal Cu-Zn oxide catalysts for low-temperature methanol steam reforming in structured reformers for fuel-cell applications

Methanol steam reforming (MSR) was investigated over binary Cu-Zn mixed oxide catalysts prepared hydrothermally. Among the catalysts synthesized at different hydrothermal and calcination temperatures, HTM120 (120 °C hydrothermal treatment, 300 °C calcination) exhibited the most favorable combination of surface area, crystallite size and Cu-ZnO x interfacial characteristics, enabling high MSR activity around and below 200 °C. Seven independently prepared HTM120 batches yielded 97.0 ± 0.5% methanol conversion at 220 ο C. Under matched reactor conditions, HTM120 performed at least comparably to commercial HiFUEL R120. HTM120 retained 94.4% of its initial calculated H 2 productivity after 487 h time-on-stream and 30 startup/shutdown runs, while methanol conversion remained above 93%. In-situ MSR-DRIFTS revealed methoxy and formate surface species consistent with a methoxy-formate reaction sequence toward CO 2 and H 2 formation, with low CO production. These results identify hydrothermally Cu-Zn mixed oxides as promising catalysts for low-temperature structured methanol reformers for fuel-cell applications.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-30
DOI
https://doi.org/10.1016/j.ijhydene.2026.157862
Primary Topic
Catalysts for Methane Reforming
Type
article
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article

Highly stable hydrothermal Cu-Zn oxide catalysts for low-temperature methanol steam reforming in structured reformers for fuel-cell applications

Joan Papavasiliou, George Avgouropoulos, Wojciech Gac, Konstantinos Papageorgiou et al.
International Journal of Hydrogen Energy
Catalysts for Methane Reforming
article

Highly stable hydrothermal Cu-Zn oxide catalysts for low-temperature methanol steam reforming in structured reformers for fuel-cell applications

Joan Papavasiliou, George Avgouropoulos, Wojciech Gac, Konstantinos Papageorgiou, Haibin Li
article en

Abstract

Methanol steam reforming (MSR) was investigated over binary Cu-Zn mixed oxide catalysts prepared hydrothermally. Among the catalysts synthesized at different hydrothermal and calcination temperatures, HTM120 (120 °C hydrothermal treatment, 300 °C calcination) exhibited the most favorable combination of surface area, crystallite size and Cu-ZnO x interfacial characteristics, enabling high MSR activity around and below 200 °C. Seven independently prepared HTM120 batches yielded 97.0 ± 0.5% methanol conversion at 220 ο C. Under matched reactor conditions, HTM120 performed at least comparably to commercial HiFUEL R120. HTM120 retained 94.4% of its initial calculated H 2 productivity after 487 h time-on-stream and 30 startup/shutdown runs, while methanol conversion remained above 93%. In-situ MSR-DRIFTS revealed methoxy and formate surface species consistent with a methoxy-formate reaction sequence toward CO 2 and H 2 formation, with low CO production. These results identify hydrothermally Cu-Zn mixed oxides as promising catalysts for low-temperature structured methanol reformers for fuel-cell applications.

International Journal of Hydrogen EnergyVol. 280
Maria Curie-Skłodowska University (PL), University of Patras (GR), Shanghai Jiao Tong University (CN), State Key Laboratory of Ocean Engineering
Openalex Percentile: Top 33%
Catalysts for Methane Reforming
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Highly stable hydrothermal Cu-Zn oxide catalysts for low-temperature methanol steam reforming in structured reformers for fuel-cell applications — Joan Papavasiliou, George Avgouropoulos, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS