4.7 Article

Syngas production from greenhouse gases using Ni-W bimetallic catalyst via dry methane reforming: Effect of W addition

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 46, Issue 53, Pages 27044-27061

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.05.186

Keywords

DMR; Greenhouse gases; Bimetallic catalyst; Co-precipitation; Impregnation; MWCNT

Funding

  1. Universiti Teknologi PETRONAS, Malaysia
  2. Min-istry of Higher Education (MoHE) , Malaysia [FRGS/1/2018/TK02/UTP/02/10 (015 MA0-038)]
  3. King Saud University, Riyadh, Saudi Arabia [RSP2020/266]

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DMR is a promising technique to utilize rising greenhouse gases for producing alternative energy sources. The addition of Tungsten (W) to Ni-based catalysts on mixed oxide support is being tested, with Ni-W catalyst showing steady performance and elevated conversions of CH4 and CO2.
DMR is a promising technique to utilize the rising greenhouse gases and produce an alternative energy source. The main hurdle in the commercialization of DMR is the catalyst deactivation. Presently, the effect of Tungsten (W) addition on Ni-based catalysts supported on mixed oxide (Al2O3-MgO) support is tested for DMR. The Ni-W bimetallic catalysts are synthesized via co-precipitation followed by the impregnation technique. An equimolar stream of feed (CH4:CO2) is used for DMR at 800 degrees C. The Ni-W catalyst with 4 wt % of W showed steady performance with elevated conversions of CH4 and CO2, even after 24 h of DMR. The freshly and spent catalysts are characterized by BET, XRD, FESEM, EDX, elemental mapping, TPR-H-2, TPD-CO2, and XPS to confirm the elemental composition and the type of carbon formed on the catalysts. The activity of Ni catalyst declined due to formation of amorphous carbon-nanosheets, whereas Ni-W catalyst remained active due to formation of MWCNT. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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