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A Comprehensive Mechanistic Study for Dry Reforming of Methane over CeO-Supported TM clusters (TM = Ru, Pt, Co, Ni). | LitMetric

A Comprehensive Mechanistic Study for Dry Reforming of Methane over CeO-Supported TM clusters (TM = Ru, Pt, Co, Ni).

ACS Appl Mater Interfaces

Frontiers Science Center for New Organic Matter, Tianjin Key Lab and Molecule-Based Material Chemistry, College of Chemistry, Nankai University, Tianjin 300071, China.

Published: December 2024

AI Article Synopsis

  • The study explores dry reforming of methane (DRM) using CeO(111)-supported transition metal clusters, particularly focusing on metals like Ru, Pt, Co, and Ni through density functional theory (DFT) and microkinetic modeling.
  • *DFT calculations reveal that Ru and Co have strong oxygen adsorption abilities, making them effective for CO activation, with Ru/CeO(111) showing the highest efficiency for activating both CH and CO.
  • *Microkinetic simulations rank the activity of the catalysts, showing Ru/CeO(111) as the most active, while Pt/CeO(111) excels in anticoking, and Co/CeO and Ni/CeO exhibit lower stability and activity.*

Article Abstract

In this work, the mechanism of dry reforming of methane (DRM) over a series of CeO (111)-supported transition metal (TM) clusters, TM/CeO(111) (TM = Ru, Pt, Co, Ni), was investigated by using density functional theory (DFT) and microkinetic modeling. According to the results of DFT calculations, Ru/CeO(111) and Co/CeO(111) exhibit strong oxygen adsorption capabilities due to the oxophilic properties of Ru and Co metals, which facilitate CO activation more effectively than other metals. Ru/CeO(111) demonstrates the highest efficiency for both CH and CO activation. Pt/CeO(111) has great anticoking ability because the C* coupling has a higher energy barrier. Microkinetic simulations indicate that the turnover frequency (TOF) rate follows the trend: Ru/CeO(111) > Pt/ CeO(111) > Co/CeO (111) > Ni/ CeO(111). Ru/CeO exhibits the highest activity and selectivity. Pt/CeO has the best ability for anticoking due to the high energy barrier of C* coupling. Co/CeO is prone to deactivation from oxygen poisoning, attributed to its strong oxophilic properties and weak CH activation ability, Ni/CeO shows the poorest activity and stability, as it is easily deactivated by coke formation and has the lowest selectivity. The analysis of key steps indicates that there are different rate-controlled steps for various metals due to inherent differences in their properties. We anticipate that our results will offer a strategy for designing DRM catalysts by selecting the appropriate metal catalysts.

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Source
http://dx.doi.org/10.1021/acsami.4c13263DOI Listing

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