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Combined Steam and CO2 Reforming of Methane over the Hierarchical Ni-ZrO2 Nanosheets Al2O3 Catalysts at Ultralow Temperature and under Low Steam
Combined Steam and CO2 Reforming of Methane over the Hierarchical Ni-ZrO2 Nanosheets Al2O3 Catalysts at Ultralow Temperature and under Low Steam
Author
Sumarasingha W. Tungkamani S. Ratana T. Supasitmongkol S. Phongaksorn M.
Affiliations
Department of Industrial Chemistry Faculty of Applied Science King Mongkut抯 University of Technology North Bangkok Bangkok 10800 Thailand; Research and Development Center for Chemical Engineering Unit Operation and Catalyst Design (RCC) King Mongkut抯 University of Technology North Bangkok Bangkok 10800 Thailand; National Energy Technology Center (ENTEC) National Science and Technology Development Agency (NSTDA) 111 Thailand Science Park Phahonyothin Road Klong 1 Pathum Thani Klong Luang 12120 Thailand
Type
Article
Source Title
ACS Omega
ISSN
24701343
Year
2023
Volume
8
Issue
49
Page
46425-46437
Open Access
All Open Access Gold
Publisher
American Chemical Society
DOI
10.1021/acsomega.3c03676
Abstract
This research developed hierarchical 10 wt % Ni-1 wt % ZrO2/Al2O3 catalysts for combined steam and CO2 reforming of methane (CSCRM) reaction to produce syngas for gas-to-liquid (GTL) application under the ultralow temperature and low steam condition. The hierarchical nanosheet catalysts were prepared via a novel impregnation technique assisted by ammonia vapor diffusion with various times (1 6 and 12 h) to develop the different magnitude of hierarchical nanosheets on the surface. Then CSCRM at 600 ?C was performed on the catalysts for 6 h. The results evidenced the improvement of H2 selectivity reaching an appropriate H2/CO ratio (1.9-2.0) in FT subunits in the GTL process when nanosheets existed on the surface due to the increase in H2O adsorption-dissociation sites. The good dispersion of hierarchical nanosheets accompanied by the ZrO2 promoter successfully enhanced the CH4 conversion and the coke prevention through the spread nanosheets because of the increase in the number of active sites and the surface interaction. The interaction of hierarchical nanosheets created the H2O activation-dissociation sites that allowed CO2 to be selective on the oxygen vacancy sites producing more OH* and OH* on the catalyst surface to resist the carbon deposition during CSCRM operation. ? 2023 The Authors. Published by American Chemical Society