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Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex

Complete active space self-consistent field (CASSCF) wavefunctions and an orbital entanglement analysis obtained from a density-matrix renormalisation group (DMRG) calculation are used to understand the electronic structure, and, in particular, the Ru–NO bond of a Ru nitrosyl complex. Based on the c...

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Autores principales: Freitag, Leon, Knecht, Stefan, Keller, Sebastian F., Delcey, Mickaël G., Aquilante, Francesco, Bondo Pedersen, Thomas, Lindh, Roland, Reiher, Markus, González, Leticia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4447059/
https://www.ncbi.nlm.nih.gov/pubmed/25767830
http://dx.doi.org/10.1039/c4cp05278a
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author Freitag, Leon
Knecht, Stefan
Keller, Sebastian F.
Delcey, Mickaël G.
Aquilante, Francesco
Bondo Pedersen, Thomas
Lindh, Roland
Reiher, Markus
González, Leticia
author_facet Freitag, Leon
Knecht, Stefan
Keller, Sebastian F.
Delcey, Mickaël G.
Aquilante, Francesco
Bondo Pedersen, Thomas
Lindh, Roland
Reiher, Markus
González, Leticia
author_sort Freitag, Leon
collection PubMed
description Complete active space self-consistent field (CASSCF) wavefunctions and an orbital entanglement analysis obtained from a density-matrix renormalisation group (DMRG) calculation are used to understand the electronic structure, and, in particular, the Ru–NO bond of a Ru nitrosyl complex. Based on the configurations and orbital occupation numbers obtained for the CASSCF wavefunction and on the orbital entropy measurements evaluated for the DMRG wavefunction, we unravel electron correlation effects in the Ru coordination sphere of the complex. It is shown that Ru–NO π bonds show static and dynamic correlation, while other Ru–ligand bonds feature predominantly dynamic correlation. The presence of static correlation requires the use of multiconfigurational methods to describe the Ru–NO bond. Subsequently, the CASSCF wavefunction is analysed in terms of configuration state functions based on localised orbitals. The analysis of the wavefunctions in the electronic singlet ground state and the first triplet state provides a picture of the Ru–NO moiety beyond the standard representation based on formal oxidation states. A distinct description of the Ru and NO fragments is advocated. The electron configuration of Ru is an equally weighted superposition of Ru(II) and Ru(III) configurations, with the Ru(III) configuration originating from charge donation mostly from Cl ligands. However, and contrary to what is typically assumed, the electronic configuration of the NO ligand is best described as electroneutral.
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spelling pubmed-44470592015-05-28 Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex Freitag, Leon Knecht, Stefan Keller, Sebastian F. Delcey, Mickaël G. Aquilante, Francesco Bondo Pedersen, Thomas Lindh, Roland Reiher, Markus González, Leticia Phys Chem Chem Phys Chemistry Complete active space self-consistent field (CASSCF) wavefunctions and an orbital entanglement analysis obtained from a density-matrix renormalisation group (DMRG) calculation are used to understand the electronic structure, and, in particular, the Ru–NO bond of a Ru nitrosyl complex. Based on the configurations and orbital occupation numbers obtained for the CASSCF wavefunction and on the orbital entropy measurements evaluated for the DMRG wavefunction, we unravel electron correlation effects in the Ru coordination sphere of the complex. It is shown that Ru–NO π bonds show static and dynamic correlation, while other Ru–ligand bonds feature predominantly dynamic correlation. The presence of static correlation requires the use of multiconfigurational methods to describe the Ru–NO bond. Subsequently, the CASSCF wavefunction is analysed in terms of configuration state functions based on localised orbitals. The analysis of the wavefunctions in the electronic singlet ground state and the first triplet state provides a picture of the Ru–NO moiety beyond the standard representation based on formal oxidation states. A distinct description of the Ru and NO fragments is advocated. The electron configuration of Ru is an equally weighted superposition of Ru(II) and Ru(III) configurations, with the Ru(III) configuration originating from charge donation mostly from Cl ligands. However, and contrary to what is typically assumed, the electronic configuration of the NO ligand is best described as electroneutral. Royal Society of Chemistry 2015-06-14 2015-03-13 /pmc/articles/PMC4447059/ /pubmed/25767830 http://dx.doi.org/10.1039/c4cp05278a Text en This journal is © The Royal Society of Chemistry 2015 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Freitag, Leon
Knecht, Stefan
Keller, Sebastian F.
Delcey, Mickaël G.
Aquilante, Francesco
Bondo Pedersen, Thomas
Lindh, Roland
Reiher, Markus
González, Leticia
Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title_full Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title_fullStr Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title_full_unstemmed Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title_short Orbital entanglement and CASSCF analysis of the Ru–NO bond in a Ruthenium nitrosyl complex
title_sort orbital entanglement and casscf analysis of the ru–no bond in a ruthenium nitrosyl complex
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4447059/
https://www.ncbi.nlm.nih.gov/pubmed/25767830
http://dx.doi.org/10.1039/c4cp05278a
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