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Understanding Coke Deposition Vis-a-Vis DRM Activity over Magnesia-Alumina Supported Ni-Fe, Ni-Co, Ni-Ce, and Ni-Sr Catalysts

delete2023-10-30
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OA
AI
Y
Yousef Mohammed Alanazi
N
Naitik Patel
A
Anis H. Fakeeha
J
Jehad K. Abu‐Dahrieh *
A
Ahmed A. Ibrahim
A
Ahmed E. Abasaeed
R
Rawesh Kumar
A
Ahmed S. Al‐Fatesh *
DOI:10.3390/nano13212874delete
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Abstract

Abstract

En 中文
The catalytic conversion of CH4 and CO2 into H-2-rich syngas is known as the dry reforming of methane (DRM). The dissociation of CH4 over active sites, coupled with the oxidation or polymerization of CH4-x (x = 1-4), plays a crucial role in determining in determining the DRM product yield and coke deposition. Herein, a series of bimetallic-supported catalysts are prepared by the dispersion of Ni-M (M = Ce, Co, Fe, and Sr) over 60 wt% MgO-40 wt% Al2O3 (60Mg40Al) support. Catalysts are tested for DRM and characterized with XRD, surface area and porosity, temperature-programmed reduction/desorption, UV-VIS-Raman spectroscopy, and thermogravimetry. 2.5Ni2.5Sr/60Mg40Al and 2.5Ni2.5Fe/60Mg40Al, and 2.5Ni2.5Ce/60Mg40Al and 2.5Ni2.5Co/60Mg40Al have similar CO2 interaction profiles. The 2.5Ni2.5Sr/60Mg40Al catalyst nurtures inert-type coke, whereas 2.5Ni2.5Fe/60Mg40Al accelerates the deposition of huge coke, which results in catalytic inferiority. The higher activity over 2.5Ni2.5Ce/60Mg40Al is due to the instant lattice oxygen-endowing capacity for oxidizing coke. Retaining a high DRM activity (54% H-2-yield) up to 24 h even against a huge coke deposition (weight loss 46%) over 2.5Ni2.5Co/60Mg40Al is due to the timely diffusion of coke far from the active sites or the mounting of active sites over the carbon nanotube.
Keywords:
MgO-Al2O3 support
Ni-Ce
Ni-Co
Ni-Fe
Ni-Sr
coke deposit mechanism

Journal

N
Nanomaterials
IF:
4.3
Papers:
2.2W
Citations:
8.1W

Organization

Q
Queen's University Belfast
Scholars:
1.6W
Papers: 1.7W
Citations: 2.5W
K
King Saud University
Scholars:
3.4W
Papers: 3.8W
Citations: 815
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