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Calcium-Functionalized MgCeAl-Supported Nickel Catalysts for Enhancing Syngas Production via Dry Reforming
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Metadata
Document Title
Calcium-Functionalized MgCeAl-Supported Nickel Catalysts for Enhancing Syngas Production via Dry Reforming
Name from Authors Collection
Affiliations
KU-Green Catalysts Group, Department of Chemical Engineering, Faculty of Engineering, Kasetsart University, Bangkok, 10900, Thailand; Institute of Materials Chemistry, Vienna University of Technology, Getreidemarkt 9/BC/01, Vienna, 1060, Austria; National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA), Pathum Thani, 12120, Thailand; Center for Advanced Studies in Nanotechnology for Chemical, Food and Agricultural Industries, KU Institute for Advanced Studies, Kasetsart University, Bangkok, 10900, Thailand
Source Title
Industrial and Engineering Chemistry Research
ISSN
8885885
Year
2025
Volume
64
Issue
24
Page
11782-11793
Open Access
All Open Access; Green Open Access; Hybrid Gold Open Access
Publisher
American Chemical Society
DOI
10.1021/acs.iecr.5c00941
Abstract
The dry reforming reaction offers a promising pathway to transform CO2 and CH4 gases into H2 and CO, which serve as vital reactants and fuel gases in various industrial chemical processes. This research focused on the modification of Ni-based catalysts with alkaline earth metal for a dry reforming reaction. Nickel impregnated into mixed MgCeAl (MCA) oxide supports, tailored with calcium (Ca), was fabricated through a soft template-assisted coprecipitation technique, employing cetyltrimethylammonium chloride (CTAC) as the template. The calcium modification of MCA oxides supporting the nickel catalyst augmented the reducibility of nickel and intensified the interaction between nickel and the oxide support. In evaluating performance, Ni/0.3Ca-MCA catalyst demonstrated superior CH4 and CO2 conversions, an optimal H2/CO ratio, and enhanced stability compared to other catalysts. This improvement can be attributed to the Ca addition, which likely enhances the basic sites on the catalyst, promoting CO2 adsorption and its simultaneous dissociation and thereby reducing coke formation. © 2025 The Authors. Published by American Chemical Society.
License
CC BY-NC-ND
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Authors
Publication Source
Scopus
Publication Source
Scopus