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Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains

Redox-active tetraoxolene ligands such as 1,4-dihydroxybenzoquinone provide access to a diversity of metal–organic architectures, many of which display interesting magnetic behavior and high electrical conductivity. Here, we take a closer look at how structure dictates physical properties in a serie...

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Autores principales: Kamin, Ashlyn A., Moseley, Ian P., Oh, Jeewhan, Brannan, E. J., Gannon, Paige M., Kaminsky, Werner, Zadrozny, Joseph M., Xiao, Dianne J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10094740/
https://www.ncbi.nlm.nih.gov/pubmed/37063793
http://dx.doi.org/10.1039/d2sc06392a
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author Kamin, Ashlyn A.
Moseley, Ian P.
Oh, Jeewhan
Brannan, E. J.
Gannon, Paige M.
Kaminsky, Werner
Zadrozny, Joseph M.
Xiao, Dianne J.
author_facet Kamin, Ashlyn A.
Moseley, Ian P.
Oh, Jeewhan
Brannan, E. J.
Gannon, Paige M.
Kaminsky, Werner
Zadrozny, Joseph M.
Xiao, Dianne J.
author_sort Kamin, Ashlyn A.
collection PubMed
description Redox-active tetraoxolene ligands such as 1,4-dihydroxybenzoquinone provide access to a diversity of metal–organic architectures, many of which display interesting magnetic behavior and high electrical conductivity. Here, we take a closer look at how structure dictates physical properties in a series of 1D iron–tetraoxolene chains. Using a diphenyl-derivatized tetraoxolene ligand (H(2)Ph(2)dhbq), we show that the steric profile of the coordinating solvent controls whether linear or helical chains are exclusively formed. Despite similar ligand environments, only the helical chain displays temperature-dependent valence tautomerism, switching from (Fe(II))(Ph(2)dhbq(2−)) to (Fe(III))(Ph(2)dhbq(3)˙(−)) at temperatures below 203 K. The stabilization of ligand radicals leads to exceptionally strong magnetic exchange coupling (J = −230 ± 4 cm(−1)). Meanwhile, the linear chains are more amenable to oxidative doping, leading to Robin–Day class II/III mixed-valency and an increase in electrical conductivity by nearly three orders of magnitude. While previous studies have focused on the effects of changing metal and ligand identity, this work highlights how altering the metal–ligand connectivity can be a similarly powerful tool for tuning materials properties.
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spelling pubmed-100947402023-04-13 Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains Kamin, Ashlyn A. Moseley, Ian P. Oh, Jeewhan Brannan, E. J. Gannon, Paige M. Kaminsky, Werner Zadrozny, Joseph M. Xiao, Dianne J. Chem Sci Chemistry Redox-active tetraoxolene ligands such as 1,4-dihydroxybenzoquinone provide access to a diversity of metal–organic architectures, many of which display interesting magnetic behavior and high electrical conductivity. Here, we take a closer look at how structure dictates physical properties in a series of 1D iron–tetraoxolene chains. Using a diphenyl-derivatized tetraoxolene ligand (H(2)Ph(2)dhbq), we show that the steric profile of the coordinating solvent controls whether linear or helical chains are exclusively formed. Despite similar ligand environments, only the helical chain displays temperature-dependent valence tautomerism, switching from (Fe(II))(Ph(2)dhbq(2−)) to (Fe(III))(Ph(2)dhbq(3)˙(−)) at temperatures below 203 K. The stabilization of ligand radicals leads to exceptionally strong magnetic exchange coupling (J = −230 ± 4 cm(−1)). Meanwhile, the linear chains are more amenable to oxidative doping, leading to Robin–Day class II/III mixed-valency and an increase in electrical conductivity by nearly three orders of magnitude. While previous studies have focused on the effects of changing metal and ligand identity, this work highlights how altering the metal–ligand connectivity can be a similarly powerful tool for tuning materials properties. The Royal Society of Chemistry 2023-03-27 /pmc/articles/PMC10094740/ /pubmed/37063793 http://dx.doi.org/10.1039/d2sc06392a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kamin, Ashlyn A.
Moseley, Ian P.
Oh, Jeewhan
Brannan, E. J.
Gannon, Paige M.
Kaminsky, Werner
Zadrozny, Joseph M.
Xiao, Dianne J.
Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title_full Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title_fullStr Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title_full_unstemmed Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title_short Geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1D iron–tetraoxolene chains
title_sort geometry-dependent valence tautomerism, magnetism, and electrical conductivity in 1d iron–tetraoxolene chains
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10094740/
https://www.ncbi.nlm.nih.gov/pubmed/37063793
http://dx.doi.org/10.1039/d2sc06392a
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