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Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach

The structural, electronic and magnetic properties of the MIL-47(Mn) metal–organic framework are investigated using first principles calculations. We find that the large-pore structure is the ground state of this material. We show that upon transition from the large-pore to the narrow-pore structure...

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Autores principales: Hosseini, Mohammadreza, Vanpoucke, Danny E. P., Giannozzi, Paolo, Berahman, Masoud, Hadipour, Nasser
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049066/
https://www.ncbi.nlm.nih.gov/pubmed/35495241
http://dx.doi.org/10.1039/c9ra09196c
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author Hosseini, Mohammadreza
Vanpoucke, Danny E. P.
Giannozzi, Paolo
Berahman, Masoud
Hadipour, Nasser
author_facet Hosseini, Mohammadreza
Vanpoucke, Danny E. P.
Giannozzi, Paolo
Berahman, Masoud
Hadipour, Nasser
author_sort Hosseini, Mohammadreza
collection PubMed
description The structural, electronic and magnetic properties of the MIL-47(Mn) metal–organic framework are investigated using first principles calculations. We find that the large-pore structure is the ground state of this material. We show that upon transition from the large-pore to the narrow-pore structure, the magnetic ground-state configuration changes from antiferromagnetic to ferromagnetic, consistent with the computed values of the intra-chain coupling constant. Furthermore, the antiferromagnetic and ferromagnetic configuration phases have intrinsically different electronic behavior: the former is semiconducting, the latter is a metal or half-metal. The change of electronic properties during breathing posits MIL-47(Mn) as a good candidate for sensing and other applications. Our calculated electronic band structure for MIL-47(Mn) presents a combination of flat dispersionless and strongly dispersive regions in the valence and conduction bands, indicative of quasi-1D electronic behavior. The spin coupling constants are obtained by mapping the total energies onto a spin Hamiltonian. The inter-chain coupling is found to be at least one order of magnitude smaller than the intra-chain coupling for both large and narrow pores. Interestingly, the intra-chain coupling changes sign and becomes five times stronger going from the large pore to the narrow pore structure. As such MIL-47(Mn) could provide unique opportunities for tunable low-dimensional magnetism in transition metal oxide systems.
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spelling pubmed-90490662022-04-28 Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach Hosseini, Mohammadreza Vanpoucke, Danny E. P. Giannozzi, Paolo Berahman, Masoud Hadipour, Nasser RSC Adv Chemistry The structural, electronic and magnetic properties of the MIL-47(Mn) metal–organic framework are investigated using first principles calculations. We find that the large-pore structure is the ground state of this material. We show that upon transition from the large-pore to the narrow-pore structure, the magnetic ground-state configuration changes from antiferromagnetic to ferromagnetic, consistent with the computed values of the intra-chain coupling constant. Furthermore, the antiferromagnetic and ferromagnetic configuration phases have intrinsically different electronic behavior: the former is semiconducting, the latter is a metal or half-metal. The change of electronic properties during breathing posits MIL-47(Mn) as a good candidate for sensing and other applications. Our calculated electronic band structure for MIL-47(Mn) presents a combination of flat dispersionless and strongly dispersive regions in the valence and conduction bands, indicative of quasi-1D electronic behavior. The spin coupling constants are obtained by mapping the total energies onto a spin Hamiltonian. The inter-chain coupling is found to be at least one order of magnitude smaller than the intra-chain coupling for both large and narrow pores. Interestingly, the intra-chain coupling changes sign and becomes five times stronger going from the large pore to the narrow pore structure. As such MIL-47(Mn) could provide unique opportunities for tunable low-dimensional magnetism in transition metal oxide systems. The Royal Society of Chemistry 2020-01-29 /pmc/articles/PMC9049066/ /pubmed/35495241 http://dx.doi.org/10.1039/c9ra09196c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Hosseini, Mohammadreza
Vanpoucke, Danny E. P.
Giannozzi, Paolo
Berahman, Masoud
Hadipour, Nasser
Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title_full Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title_fullStr Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title_full_unstemmed Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title_short Investigation of structural, electronic and magnetic properties of breathing metal–organic framework MIL-47(Mn): a first principles approach
title_sort investigation of structural, electronic and magnetic properties of breathing metal–organic framework mil-47(mn): a first principles approach
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049066/
https://www.ncbi.nlm.nih.gov/pubmed/35495241
http://dx.doi.org/10.1039/c9ra09196c
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