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Pt/Ce-Sm-Ox catalysts for stable steam-assisted biogas reforming: comparative performance and carbon accumulation.

Created on 03 Oct 2026

Authors

Bing Han, Chao Li, Guoming Gao, Yan Chen, Wenjian Liu, Yunyu Guo

Published in

Bioresource technology. Pages 135995. Oct 02, 2026. Epub Oct 02, 2026.

Abstract

Steam-assisted biogas reforming can tune syngas composition, but long-term operation is limited by catalyst deactivation and carbon accumulation. To compare the effects of Ce-, Sm-, and combined Ce/Sm-containing oxide environments under identical conditions, Pt/CeO2, Pt/Sm2O3, and Pt/Ce-Sm-Ox catalysts containing a nominal Pt loading of 1 wt% were prepared by a citrate-assisted sol-gel method. Under a CH4/CO2/H2O/N2 feed ratio of approximately 3:2:2.7:1, Pt/Ce-Sm-Ox achieved approximately 91 % CH4 conversion and 55 % CO2 conversion at 800 °C. During the 100 h test, the CH4 and CO2 conversions remained within 90 %-92 % and 52 %-56 %, respectively, and the H2/CO ratio was approximately 1.8. The spent Pt/Ce-Sm-Ox catalyst showed an apparent oxidative mass loss of approximately 1 wt%, compared with an apparent oxidative mass loss of approximately 19.3 wt% for spent Pt/CeO2. Hydrogen temperature-programmed reduction (H2-TPR) and carbon dioxide temperature-programmed desorption (CO2-TPD) showed formulation-dependent reducibility and CO2-desorption behaviour, while the density of the post-reaction electron paramagnetic resonance (EPR)-active defect-related centres over Pt/Ce-Sm-Ox was approximately 1.9 times that over Pt/CeO2. Together with the results of in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS), post-reaction microscopy, and Raman spectroscopy, these observations support, but do not prove, a working hypothesis involving complementary roles of Pt and the Ce/Sm-containing oxide.

PMID:
42826798
Bibliographic data and abstract were imported from PubMed on 03 Oct 2026.

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