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Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters

Low-valent species of iron are key intermediates in many important biological processes such as the nitrogenase enzymatic catalytic reaction. These species play a major role in activating highly stable N(2) molecules. Thus, there is a clear need to establish the factors which are responsible for the...

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Autores principales: Vyas, Nidhi, Kumar, Aditya, Ojha, Animesh K., Grover, Abhinav
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/PMC9049905/
https://www.ncbi.nlm.nih.gov/pubmed/35492201
http://dx.doi.org/10.1039/c9ra10481j
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author Vyas, Nidhi
Kumar, Aditya
Ojha, Animesh K.
Grover, Abhinav
author_facet Vyas, Nidhi
Kumar, Aditya
Ojha, Animesh K.
Grover, Abhinav
author_sort Vyas, Nidhi
collection PubMed
description Low-valent species of iron are key intermediates in many important biological processes such as the nitrogenase enzymatic catalytic reaction. These species play a major role in activating highly stable N(2) molecules. Thus, there is a clear need to establish the factors which are responsible for the reactivity of the metal–dinitrogen moiety. In this regard, we have investigated the electronic structure of low-valent iron (2−/1−/0) in a [(TPB)FeN(2)](2−/1−/0) complex using density functional theory (DFT). The variation in the oxidation states of iron in the nitrogenase enzyme cycle is associated with the flexibility of Fe→B bonding. Therefore, the flexibility of Fe→B bonding acts as an electron source that sustains the formation of various oxidation states, which is necessary for the key species in dinitrogen activation. AIM calculations are also performed to understand the strength of Fe→B and Fe–N(2) bonds. A detailed interpretation of the contributions to the isomer shift (IS) and quadrupole splitting (ΔE(Q)) are discussed. The major contribution to IS comes mainly from the 3s-contribution, which differs depending on the d orbital population due to different shielding. The valence shell contribution also comes from the 4s-orbital. The Fe–N(2) bond distance has a great influence on the Mössbauer parameters, which are associated with the radial distribution, i.e. the shape of the 4s-orbital and the charge density at the nucleus. A linear relationship between IS with Fe–N(2) and ΔE(Q) with Fe–N(2) is observed.
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spelling pubmed-90499052022-04-29 Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters Vyas, Nidhi Kumar, Aditya Ojha, Animesh K. Grover, Abhinav RSC Adv Chemistry Low-valent species of iron are key intermediates in many important biological processes such as the nitrogenase enzymatic catalytic reaction. These species play a major role in activating highly stable N(2) molecules. Thus, there is a clear need to establish the factors which are responsible for the reactivity of the metal–dinitrogen moiety. In this regard, we have investigated the electronic structure of low-valent iron (2−/1−/0) in a [(TPB)FeN(2)](2−/1−/0) complex using density functional theory (DFT). The variation in the oxidation states of iron in the nitrogenase enzyme cycle is associated with the flexibility of Fe→B bonding. Therefore, the flexibility of Fe→B bonding acts as an electron source that sustains the formation of various oxidation states, which is necessary for the key species in dinitrogen activation. AIM calculations are also performed to understand the strength of Fe→B and Fe–N(2) bonds. A detailed interpretation of the contributions to the isomer shift (IS) and quadrupole splitting (ΔE(Q)) are discussed. The major contribution to IS comes mainly from the 3s-contribution, which differs depending on the d orbital population due to different shielding. The valence shell contribution also comes from the 4s-orbital. The Fe–N(2) bond distance has a great influence on the Mössbauer parameters, which are associated with the radial distribution, i.e. the shape of the 4s-orbital and the charge density at the nucleus. A linear relationship between IS with Fe–N(2) and ΔE(Q) with Fe–N(2) is observed. The Royal Society of Chemistry 2020-02-25 /pmc/articles/PMC9049905/ /pubmed/35492201 http://dx.doi.org/10.1039/c9ra10481j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Vyas, Nidhi
Kumar, Aditya
Ojha, Animesh K.
Grover, Abhinav
Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title_full Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title_fullStr Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title_full_unstemmed Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title_short Electronic structure of iron dinitrogen complex [(TPB)FeN(2)](2−/1−/0): correlation to Mössbauer parameters
title_sort electronic structure of iron dinitrogen complex [(tpb)fen(2)](2−/1−/0): correlation to mössbauer parameters
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049905/
https://www.ncbi.nlm.nih.gov/pubmed/35492201
http://dx.doi.org/10.1039/c9ra10481j
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