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Investigating Silver Coordination to Mixed Chalcogen Ligands

Six silver(I) coordination complexes have been prepared and structurally characterised. Mixed chalcogen-donor acenaphthene ligands L1–L3 [Acenap(EPh)(E'Ph)] (Acenap = acenaphthene-5,6-diyl; E/E' = S, Se, Te) were independently treated with silver(I) salts (AgBF(4)/AgOTf). In order to keep...

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Autores principales: Knight, Fergus R., Randall, Rebecca A.M., Wakefield, Lucy, Slawin, Alexandra M. Z., Woollins, J. Derek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6269030/
https://www.ncbi.nlm.nih.gov/pubmed/23138535
http://dx.doi.org/10.3390/molecules171113307
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author Knight, Fergus R.
Randall, Rebecca A.M.
Wakefield, Lucy
Slawin, Alexandra M. Z.
Woollins, J. Derek
author_facet Knight, Fergus R.
Randall, Rebecca A.M.
Wakefield, Lucy
Slawin, Alexandra M. Z.
Woollins, J. Derek
author_sort Knight, Fergus R.
collection PubMed
description Six silver(I) coordination complexes have been prepared and structurally characterised. Mixed chalcogen-donor acenaphthene ligands L1–L3 [Acenap(EPh)(E'Ph)] (Acenap = acenaphthene-5,6-diyl; E/E' = S, Se, Te) were independently treated with silver(I) salts (AgBF(4)/AgOTf). In order to keep the number of variables to a minimum, all reactions were carried out using a 1:1 ratio of Ag/L and run in dichloromethane. The nature of the donor atoms, the coordinating ability of the respective counter-anion and the type of solvent used in recrystallisation, all affect the structural architecture of the final silver(I) complex, generating monomeric, silver(I) complexes {[AgBF(4)(L)(2)] (1 L = L1; 2 L = L2; 3 L = L3), [AgOTf(L)(3)] (4 L = L1; 5 L = L3), [AgBF(4)(L)(3)] (2a L = L1; 3a L = L3)} and a 1D polymeric chain {[AgOTf(L3)](n) 6}. The organic acenaphthene ligands L1-L3 adopt a number of ligation modes (bis-monodentate μ(2)-η(2)-bridging, quasi-chelating combining monodentate and η(6)-E(phenyl)-Ag(I) and classical monodentate coordination) with the central silver atom at the centre of a tetrahedral or trigonal planar coordination geometry in each case. The importance of weak interactions in the formation of metal-organic structures is also highlighted by the number of short non-covalent contacts present within each complex.
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spelling pubmed-62690302018-12-13 Investigating Silver Coordination to Mixed Chalcogen Ligands Knight, Fergus R. Randall, Rebecca A.M. Wakefield, Lucy Slawin, Alexandra M. Z. Woollins, J. Derek Molecules Article Six silver(I) coordination complexes have been prepared and structurally characterised. Mixed chalcogen-donor acenaphthene ligands L1–L3 [Acenap(EPh)(E'Ph)] (Acenap = acenaphthene-5,6-diyl; E/E' = S, Se, Te) were independently treated with silver(I) salts (AgBF(4)/AgOTf). In order to keep the number of variables to a minimum, all reactions were carried out using a 1:1 ratio of Ag/L and run in dichloromethane. The nature of the donor atoms, the coordinating ability of the respective counter-anion and the type of solvent used in recrystallisation, all affect the structural architecture of the final silver(I) complex, generating monomeric, silver(I) complexes {[AgBF(4)(L)(2)] (1 L = L1; 2 L = L2; 3 L = L3), [AgOTf(L)(3)] (4 L = L1; 5 L = L3), [AgBF(4)(L)(3)] (2a L = L1; 3a L = L3)} and a 1D polymeric chain {[AgOTf(L3)](n) 6}. The organic acenaphthene ligands L1-L3 adopt a number of ligation modes (bis-monodentate μ(2)-η(2)-bridging, quasi-chelating combining monodentate and η(6)-E(phenyl)-Ag(I) and classical monodentate coordination) with the central silver atom at the centre of a tetrahedral or trigonal planar coordination geometry in each case. The importance of weak interactions in the formation of metal-organic structures is also highlighted by the number of short non-covalent contacts present within each complex. MDPI 2012-11-08 /pmc/articles/PMC6269030/ /pubmed/23138535 http://dx.doi.org/10.3390/molecules171113307 Text en © 2012 by the authors; licensee MDPI, Basel, Switzerland. http://creativecommons.org/licenses/by/3.0/ This article is an open-access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Knight, Fergus R.
Randall, Rebecca A.M.
Wakefield, Lucy
Slawin, Alexandra M. Z.
Woollins, J. Derek
Investigating Silver Coordination to Mixed Chalcogen Ligands
title Investigating Silver Coordination to Mixed Chalcogen Ligands
title_full Investigating Silver Coordination to Mixed Chalcogen Ligands
title_fullStr Investigating Silver Coordination to Mixed Chalcogen Ligands
title_full_unstemmed Investigating Silver Coordination to Mixed Chalcogen Ligands
title_short Investigating Silver Coordination to Mixed Chalcogen Ligands
title_sort investigating silver coordination to mixed chalcogen ligands
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6269030/
https://www.ncbi.nlm.nih.gov/pubmed/23138535
http://dx.doi.org/10.3390/molecules171113307
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