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  5. Stabilization of the Active Ruthenium Oxycarbonate Phase for Low-Temperature CO<sub>2</sub> Methanation

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Article
English
2024

Stabilization of the Active Ruthenium Oxycarbonate Phase for Low-Temperature CO<sub>2</sub> Methanation

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English
2024
ACS Catalysis
Vol 14 (6)
DOI: 10.1021/acscatal.3c05679

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Avelino Avelino
Avelino Avelino

Instituto de Tecnología Química

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Carmen Tébar-Soler
Vlad Martin‐Diaconescu
Laura Simonelli
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Abstract

Interstitial carbon-doped RuO2 catalyst with the newly reported ruthenium oxycarbonate phase is a key component for low-temperature CO2 methanation. However, a crucial factor is the stability of interstitial carbon atoms, which can cause catalyst deactivation when removed during the reaction. In this work, the stabilization mechanism of the ruthenium oxycarbonate active phase under reaction conditions is studied by combining advanced operando spectroscopic tools with catalytic studies. Three sequential processes: carbon diffusion, metal oxide reduction, and decomposition of the oxycarbonate phase and their influence by the reaction conditions, are discussed. We present how the reaction variables and catalyst composition can promote carbon diffusion, stabilizing the oxycarbonate catalytically active phase under steady-state reaction conditions and maintaining catalyst activity and stability over long operation times. In addition, insights into the reaction mechanism and a detailed analysis of the catalyst composition that identifies an adequate balance between the two phases, i.e., ruthenium oxycarbonate and ruthenium metal, are provided to ensure an optimum catalytic behavior.

How to cite this publication

Carmen Tébar-Soler, Vlad Martin‐Diaconescu, Laura Simonelli, Alexander Missyul, Virginia Pérez‐Dieste, Ignacio J. Villar‐García, Daviel Gómez, Jean‐Blaise Brubach, Pascale Le Roy, Avelino Avelino, Patricia Concepción (2024). Stabilization of the Active Ruthenium Oxycarbonate Phase for Low-Temperature CO<sub>2</sub> Methanation. ACS Catalysis, 14(6), pp. 4290-4300, DOI: 10.1021/acscatal.3c05679.

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Publication Details

Type

Article

Year

2024

Authors

11

Datasets

0

Total Files

0

Language

English

Journal

ACS Catalysis

DOI

10.1021/acscatal.3c05679

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