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Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer

Most non-metalized Salen-type ligands form passivation thin films on electrode surfaces upon electrochemical oxidation. In contrast, the H(2)(3-MeOSalen) forms electroactive polymer films similarly to the corresponding nickel complex. There are no details of electrochemistry, doping mechanism and ch...

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Autores principales: Polozhentseva, Julia, Novozhilova, Maria, Karushev, Mikhail
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8836782/
https://www.ncbi.nlm.nih.gov/pubmed/35163715
http://dx.doi.org/10.3390/ijms23031795
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author Polozhentseva, Julia
Novozhilova, Maria
Karushev, Mikhail
author_facet Polozhentseva, Julia
Novozhilova, Maria
Karushev, Mikhail
author_sort Polozhentseva, Julia
collection PubMed
description Most non-metalized Salen-type ligands form passivation thin films on electrode surfaces upon electrochemical oxidation. In contrast, the H(2)(3-MeOSalen) forms electroactive polymer films similarly to the corresponding nickel complex. There are no details of electrochemistry, doping mechanism and charge transfer pathways in the polymers of pristine Salen-type ligands. We studied a previously uncharacterized electrochemically active polymer of a Salen-type ligand H(2)(3-MeOSalen) by a combination of cyclic voltammetry, in situ ultraviolet–visible (UV–VIS) spectroelectrochemistry, in situ electrochemical quartz crystal microbalance and Fourier Transform infrared spectroscopy (FTIR) spectroscopy. By directly comparing it with the polymer of a Salen-type nickel complex poly-Ni(3-MeOSalen) we elucidate the effect of the central metal atom on the structure and charge transport properties of the electrochemically doped polymer films. We have shown that the mechanism of charge transfer in the polymeric ligand poly-H(2)(3-MeOSalen) are markedly different from the corresponding polymeric nickel complex. Due to deviation from planarity of N(2)O(2) sphere for the ligand H(2)(3-MeOSalen), the main pathway of electron transfer in the polymer film poly-H(2)(3-MeOSalen) is between π-stacked structures (the π-electronic systems of phenyl rings are packed face-to-face) and C-C bonded phenyl rings. The main way of electron transfer in the polymer film poly-Ni(3-MeOSalen) is along the polymer chain, while redox processes are ligand-based.
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spelling pubmed-88367822022-02-12 Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer Polozhentseva, Julia Novozhilova, Maria Karushev, Mikhail Int J Mol Sci Article Most non-metalized Salen-type ligands form passivation thin films on electrode surfaces upon electrochemical oxidation. In contrast, the H(2)(3-MeOSalen) forms electroactive polymer films similarly to the corresponding nickel complex. There are no details of electrochemistry, doping mechanism and charge transfer pathways in the polymers of pristine Salen-type ligands. We studied a previously uncharacterized electrochemically active polymer of a Salen-type ligand H(2)(3-MeOSalen) by a combination of cyclic voltammetry, in situ ultraviolet–visible (UV–VIS) spectroelectrochemistry, in situ electrochemical quartz crystal microbalance and Fourier Transform infrared spectroscopy (FTIR) spectroscopy. By directly comparing it with the polymer of a Salen-type nickel complex poly-Ni(3-MeOSalen) we elucidate the effect of the central metal atom on the structure and charge transport properties of the electrochemically doped polymer films. We have shown that the mechanism of charge transfer in the polymeric ligand poly-H(2)(3-MeOSalen) are markedly different from the corresponding polymeric nickel complex. Due to deviation from planarity of N(2)O(2) sphere for the ligand H(2)(3-MeOSalen), the main pathway of electron transfer in the polymer film poly-H(2)(3-MeOSalen) is between π-stacked structures (the π-electronic systems of phenyl rings are packed face-to-face) and C-C bonded phenyl rings. The main way of electron transfer in the polymer film poly-Ni(3-MeOSalen) is along the polymer chain, while redox processes are ligand-based. MDPI 2022-02-04 /pmc/articles/PMC8836782/ /pubmed/35163715 http://dx.doi.org/10.3390/ijms23031795 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Polozhentseva, Julia
Novozhilova, Maria
Karushev, Mikhail
Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title_full Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title_fullStr Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title_full_unstemmed Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title_short Reversible Redox Processes in Polymer of Unmetalated Salen-Type Ligand: Combined Electrochemical in Situ Studies and Direct Comparison with Corresponding Nickel Metallopolymer
title_sort reversible redox processes in polymer of unmetalated salen-type ligand: combined electrochemical in situ studies and direct comparison with corresponding nickel metallopolymer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8836782/
https://www.ncbi.nlm.nih.gov/pubmed/35163715
http://dx.doi.org/10.3390/ijms23031795
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AT karushevmikhail reversibleredoxprocessesinpolymerofunmetalatedsalentypeligandcombinedelectrochemicalinsitustudiesanddirectcomparisonwithcorrespondingnickelmetallopolymer