Literature DB >> 29175834

Reactivity of CO2 on the surfaces of magnetite (Fe3O4), greigite (Fe3S4) and mackinawite (FeS).

David Santos-Carballal1, Alberto Roldan2, Nelson Y Dzade3, Nora H de Leeuw4,3.   

Abstract

The growing environmental, industrial and commercial interests in understanding the processes of carbon dioxide (CO2) capture and conversion have led us to simulate, by means of density functional theory calculations, the application of different iron oxide and sulfide minerals to capture, activate and catalytically dissociate this molecule. We have chosen the {001} and {111} surfaces of the spinel-structured magnetite (Fe3O4) and its isostructural sulfide counterpart greigite (Fe3S4), which are both materials with the Fe cations in the 2+/3+ mixed valence state, as well as mackinawite (tetragonal FeS), in which all iron ions are in the ferrous oxidation state. This selection of iron-bearing compounds provides us with understanding of the effect of the composition, stoichiometry, structure and oxidation state on the catalytic activation of CO2 The largest adsorption energies are released for the interaction with the Fe3O4 surfaces, which also corresponds to the biggest conformational changes of the CO2 molecule. Our results suggest that the Fe3S4 surfaces are unable to activate the CO2 molecule, while a major charge transfer takes place on FeS{111}, effectively activating the CO2 molecule. The thermodynamic and kinetic profiles for the catalytic dissociation of CO2 into CO and O show that this process is feasible only on the FeS{111} surface. The findings reported here show that these minerals show promise for future CO2 capture and conversion technologies, ensuring a sustainable future for society.This article is part of a discussion meeting issue 'Providing sustainable catalytic solutions for a rapidly changing world'.
© 2017 The Author(s).

Entities:  

Keywords:  density functional theory; iron oxide; iron sulfides; reaction mechanisms; spinel; surface science

Year:  2018        PMID: 29175834      PMCID: PMC5719222          DOI: 10.1098/rsta.2017.0065

Source DB:  PubMed          Journal:  Philos Trans A Math Phys Eng Sci        ISSN: 1364-503X            Impact factor:   4.226


  50 in total

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9.  Catalytic water dissociation by greigite Fe3S4 surfaces: density functional theory study.

Authors:  A Roldan; N H de Leeuw
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10.  Structures and Properties of As(OH)3 Adsorption Complexes on Hydrated Mackinawite (FeS) Surfaces: A DFT-D2 Study.

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  2 in total

1.  Providing sustainable catalytic solutions for a rapidly changing world.

Authors:  Graham J Hutchings; C Richard Catlow; Nicholas J Turner
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-01-13       Impact factor: 4.226

2.  Mackinawite formation from elemental iron and sulfur.

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