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Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations

Carbene‐based radicals are important for both fundamental and applied chemical research. Herein, extensive electrochemical investigations of nine different 1,2,3‐triazolylidene selenium adducts are reported. It is found that the half‐wave potentials of the first reduction of the selones correlate wi...

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Autores principales: Beerhues, Julia, Neubrand, Maren, Sobottka, Sebastian, Neuman, Nicolás I., Aberhan, Hannes, Chandra, Shubhadeep, Sarkar, Biprajit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8252451/
https://www.ncbi.nlm.nih.gov/pubmed/33502818
http://dx.doi.org/10.1002/chem.202100105
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author Beerhues, Julia
Neubrand, Maren
Sobottka, Sebastian
Neuman, Nicolás I.
Aberhan, Hannes
Chandra, Shubhadeep
Sarkar, Biprajit
author_facet Beerhues, Julia
Neubrand, Maren
Sobottka, Sebastian
Neuman, Nicolás I.
Aberhan, Hannes
Chandra, Shubhadeep
Sarkar, Biprajit
author_sort Beerhues, Julia
collection PubMed
description Carbene‐based radicals are important for both fundamental and applied chemical research. Herein, extensive electrochemical investigations of nine different 1,2,3‐triazolylidene selenium adducts are reported. It is found that the half‐wave potentials of the first reduction of the selones correlate with their calculated LUMO levels and the LUMO levels of the corresponding triazolylidene‐based mesoionic carbenes (MICs). Furthermore, unexpected quasi‐reversibility of the reduction of two triazoline selones, exhibiting comparable reduction potentials, was discovered. Through UV/Vis/NIR and EPR spectroelectrochemical investigations supported by DFT calculations, the radical anion was unambiguously assigned to be triazoline centered. This electrochemical behavior was transferred to a triazolylidene‐type MIC‐gold phenyl complex resulting in a MIC‐radical coordinated Au(I) species. Apart from UV‐Vis‐NIR and EPR spectroelectrochemical investigations of the reduction, the reduced gold‐coordinated MIC radical complex was also formed in situ in the bulk through chemical reduction. This is the first report of a monodentate triazolylidene‐based MIC ligand that can be reduced to its anion radical in a metal complex. The results presented here provide design principles for stabilizing radicals based on MICs.
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spelling pubmed-82524512021-07-07 Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations Beerhues, Julia Neubrand, Maren Sobottka, Sebastian Neuman, Nicolás I. Aberhan, Hannes Chandra, Shubhadeep Sarkar, Biprajit Chemistry Full Papers Carbene‐based radicals are important for both fundamental and applied chemical research. Herein, extensive electrochemical investigations of nine different 1,2,3‐triazolylidene selenium adducts are reported. It is found that the half‐wave potentials of the first reduction of the selones correlate with their calculated LUMO levels and the LUMO levels of the corresponding triazolylidene‐based mesoionic carbenes (MICs). Furthermore, unexpected quasi‐reversibility of the reduction of two triazoline selones, exhibiting comparable reduction potentials, was discovered. Through UV/Vis/NIR and EPR spectroelectrochemical investigations supported by DFT calculations, the radical anion was unambiguously assigned to be triazoline centered. This electrochemical behavior was transferred to a triazolylidene‐type MIC‐gold phenyl complex resulting in a MIC‐radical coordinated Au(I) species. Apart from UV‐Vis‐NIR and EPR spectroelectrochemical investigations of the reduction, the reduced gold‐coordinated MIC radical complex was also formed in situ in the bulk through chemical reduction. This is the first report of a monodentate triazolylidene‐based MIC ligand that can be reduced to its anion radical in a metal complex. The results presented here provide design principles for stabilizing radicals based on MICs. John Wiley and Sons Inc. 2021-03-17 2021-04-12 /pmc/articles/PMC8252451/ /pubmed/33502818 http://dx.doi.org/10.1002/chem.202100105 Text en © 2021 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Beerhues, Julia
Neubrand, Maren
Sobottka, Sebastian
Neuman, Nicolás I.
Aberhan, Hannes
Chandra, Shubhadeep
Sarkar, Biprajit
Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title_full Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title_fullStr Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title_full_unstemmed Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title_short Directed Design of a Au(I) Complex with a Reduced Mesoionic Carbene Radical Ligand: Insights from 1,2,3‐Triazolylidene Selenium Adducts and Extensive Electrochemical Investigations
title_sort directed design of a au(i) complex with a reduced mesoionic carbene radical ligand: insights from 1,2,3‐triazolylidene selenium adducts and extensive electrochemical investigations
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8252451/
https://www.ncbi.nlm.nih.gov/pubmed/33502818
http://dx.doi.org/10.1002/chem.202100105
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