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Average and Local Structure of La 1– x Sr x Fe 1– y Mn y O 3−δ Chemical Looping Oxygen Carrier Materials

Telford, Daniel M.; Hu, Wenting; Metcalfe, Ian S.; Jones, Martin O.; Henry, Paul F.; Evans, John S. O.

Average and Local Structure of La 1– x Sr x Fe 1– y Mn y O 3−δ Chemical Looping Oxygen Carrier Materials Thumbnail


Authors

Daniel M. Telford

Wenting Hu

Ian S. Metcalfe

Martin O. Jones

Paul F. Henry



Abstract

Nonstoichiometric mixed-metal oxides in the La1–x Sr x Fe1–y Mn y O3 –δ family are promising oxygen carrier materials for chemical looping processes, including clean hydrogen production from the water-gas shift reaction. The crystal structure variation of these materials during redox reactions is key to the performance of a chemical looping system. Pair distribution function analysis of neutron total scattering data has provided new insight into the local structure of these materials before and after reduction to their working states. Comparison with experimental data for structurally related vacancy-ordered SrFeO3 –δ compounds (Sr8Fe8O23, Sr4Fe4O11, and Sr2Fe2O5) allows direct qualitative insight into local B-site coordination environments. A big-box modeling approach incorporating magnetic contributions to the Bragg data on supercells with A- and B-site disorder and mixed B-site coordination gives quantitative information on local structural distortions and coordination polyhedra. For the Mn-doped materials, this modeling shows that Mn has a higher oxidation state than Fe in oxidized samples. Magnetic structures of all ordered compounds have been determined from neutron powder diffraction data, and variable-temperature studies of La0.6Sr0.4FeO3, La0.6Sr0.4FeO2.8, La0.6Sr0.4Fe0.67Mn0.33O3, and La0.6Sr0.4Fe0.67Mn0.33O2.8 have been used to determine magnetic ordering temperatures.

Citation

Telford, D., Hu, W., Metcalfe, I. S., Jones, M. O., Henry, P. F., & Evans, J. S. O. (2025). Average and Local Structure of La 1– x Sr x Fe 1– y Mn y O 3−δ Chemical Looping Oxygen Carrier Materials. Chemistry of Materials, 37(9), 3471-3482. https://doi.org/10.1021/acs.chemmater.5c00388

Journal Article Type Article
Acceptance Date Apr 24, 2025
Online Publication Date May 2, 2025
Publication Date May 2, 2025
Deposit Date May 19, 2025
Publicly Available Date May 19, 2025
Journal Chemistry of Materials
Print ISSN 0897-4756
Electronic ISSN 1520-5002
Publisher American Chemical Society
Peer Reviewed Peer Reviewed
Volume 37
Issue 9
Pages 3471-3482
DOI https://doi.org/10.1021/acs.chemmater.5c00388
Public URL https://durham-repository.worktribe.com/output/3952979

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