Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations

Density Functional Theory (DFT) method was adopted to investigate and compare the reaction mechanisms of ethylene polymerization catalyzed by neutral, cationic bis(imino)pyridyl (PDI) iron and cobalt derivatives. The electronic structure and the oxidation states of the metal center and the PDI ligan...

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Main Authors: Zilong Li, Yanping Ma, Wen-Hua Sun
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Catalysts
Subjects:
Online Access:https://www.mdpi.com/2073-4344/10/12/1396
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spelling doaj-5ea1ed08d6734ca7bcca7ddb1532a3562020-12-01T00:02:00ZengMDPI AGCatalysts2073-43442020-11-01101396139610.3390/catal10121396Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT CalculationsZilong Li0Yanping Ma1Wen-Hua Sun2Key Laboratory of Engineering Plastics and Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, ChinaKey Laboratory of Engineering Plastics and Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, ChinaKey Laboratory of Engineering Plastics and Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, ChinaDensity Functional Theory (DFT) method was adopted to investigate and compare the reaction mechanisms of ethylene polymerization catalyzed by neutral, cationic bis(imino)pyridyl (PDI) iron and cobalt derivatives. The electronic structure and the oxidation states of the metal center and the PDI ligand were analyzed by taking spin states, natural bond orbital (NBO) charge distribution, etc. into consideration, revealing that the reactivity is closely related to the valence electron numbers instead of the charge numbers. The neutral Co(0) had the lowest reactivity as it possessed the most electrons. During the formation of the cationic Co(+)/Fe(+), one electron was mainly lost from PDI ligand rather than the metal center while the metal center maintained +II valence state through the process. Moreover, a special unsymmetrically bidentate <i>N^N</i> coordination manner was found to provide the deficient metal surroundings with 14e, which may initiate the reactivity of some unsymmetrical species with rich electrons. Finally, an anion [AlMe<sub>4</sub>]<sup>-</sup> participating process was proposed to explain the presence of the experimentally observed LCo(+)B(C<sub>2</sub>H<sub>4</sub>). A special intermediate, Co(+)B(C<sub>2</sub>H<sub>4</sub>) [AlMe<sub>4</sub>]<sup>-</sup> with Co in +I and absence of Co–C σ bond, was obtained. These calculation results may provide fundamental information for further understanding and designing the ethylene polymerization catalysts.https://www.mdpi.com/2073-4344/10/12/1396density functional theoryethylene polymerization2,6-bis(imino)pyridyl complexesreaction mechanism
collection DOAJ
language English
format Article
sources DOAJ
author Zilong Li
Yanping Ma
Wen-Hua Sun
spellingShingle Zilong Li
Yanping Ma
Wen-Hua Sun
Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
Catalysts
density functional theory
ethylene polymerization
2,6-bis(imino)pyridyl complexes
reaction mechanism
author_facet Zilong Li
Yanping Ma
Wen-Hua Sun
author_sort Zilong Li
title Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
title_short Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
title_full Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
title_fullStr Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
title_full_unstemmed Comparison of the Reactivity and Structures for the Neutral and Cationic Bis(imino)pyridyl Iron and Cobalt Species by DFT Calculations
title_sort comparison of the reactivity and structures for the neutral and cationic bis(imino)pyridyl iron and cobalt species by dft calculations
publisher MDPI AG
series Catalysts
issn 2073-4344
publishDate 2020-11-01
description Density Functional Theory (DFT) method was adopted to investigate and compare the reaction mechanisms of ethylene polymerization catalyzed by neutral, cationic bis(imino)pyridyl (PDI) iron and cobalt derivatives. The electronic structure and the oxidation states of the metal center and the PDI ligand were analyzed by taking spin states, natural bond orbital (NBO) charge distribution, etc. into consideration, revealing that the reactivity is closely related to the valence electron numbers instead of the charge numbers. The neutral Co(0) had the lowest reactivity as it possessed the most electrons. During the formation of the cationic Co(+)/Fe(+), one electron was mainly lost from PDI ligand rather than the metal center while the metal center maintained +II valence state through the process. Moreover, a special unsymmetrically bidentate <i>N^N</i> coordination manner was found to provide the deficient metal surroundings with 14e, which may initiate the reactivity of some unsymmetrical species with rich electrons. Finally, an anion [AlMe<sub>4</sub>]<sup>-</sup> participating process was proposed to explain the presence of the experimentally observed LCo(+)B(C<sub>2</sub>H<sub>4</sub>). A special intermediate, Co(+)B(C<sub>2</sub>H<sub>4</sub>) [AlMe<sub>4</sub>]<sup>-</sup> with Co in +I and absence of Co–C σ bond, was obtained. These calculation results may provide fundamental information for further understanding and designing the ethylene polymerization catalysts.
topic density functional theory
ethylene polymerization
2,6-bis(imino)pyridyl complexes
reaction mechanism
url https://www.mdpi.com/2073-4344/10/12/1396
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AT yanpingma comparisonofthereactivityandstructuresfortheneutralandcationicbisiminopyridylironandcobaltspeciesbydftcalculations
AT wenhuasun comparisonofthereactivityandstructuresfortheneutralandcationicbisiminopyridylironandcobaltspeciesbydftcalculations
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