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Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site

Three Pt(4)L(2)L′(2) heteroleptic rectangles (1–3), containing ditopic redox‐active bis‐pyridine functionalized perylene bisimide (PBI) ligands PBI‐pyr(2) (L) are reported. Co‐ligand L′ is a dicarboxylate spacer of varying length, leading to modified overall size of the assemblies. (1)H NMR spectros...

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Autores principales: Plessius, Raoul, Deij, Vera, Reek, Joost N. H., van der Vlugt, Jarl Ivar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693204/
https://www.ncbi.nlm.nih.gov/pubmed/32428350
http://dx.doi.org/10.1002/chem.202001416
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author Plessius, Raoul
Deij, Vera
Reek, Joost N. H.
van der Vlugt, Jarl Ivar
author_facet Plessius, Raoul
Deij, Vera
Reek, Joost N. H.
van der Vlugt, Jarl Ivar
author_sort Plessius, Raoul
collection PubMed
description Three Pt(4)L(2)L′(2) heteroleptic rectangles (1–3), containing ditopic redox‐active bis‐pyridine functionalized perylene bisimide (PBI) ligands PBI‐pyr(2) (L) are reported. Co‐ligand L′ is a dicarboxylate spacer of varying length, leading to modified overall size of the assemblies. (1)H NMR spectroscopy reveals a trend in the splitting and upfield chemical shift of the PBI‐hydrogens in the rectangles with respect to free PBI, most pronounced with the largest strut length (3) and least with the smallest strut length (1). This is attributed to increased rotational freedom of the PBI‐pyr (2) ligand over its longitudinal axis (N(py)‐N(py)), due to increased distance between the PBI‐surfaces, which is corroborated by VT‐NMR measurements and DFT calculations. The intramolecular motion entails desymmetrization of the two PBI‐ligands, in line with cyclic voltammetry (CV) data. The first (overall two‐electron) reduction event and re‐oxidation for 1 display a subtle peak‐to‐peak splitting of 60 mV, whilst increased splitting of this event is observed for 2 and 3. The binding of pyrene in 1 is probed to establish proof of concept of host‐guest chemistry enabled by the two PBI‐motifs. Fitting the binding curve obtained by (1)H NMR titration with a 1:1 complex formation model led to a binding constant of 964±55 m (−1). Pyrene binding is shown to directly influence the redox‐chemistry of 1, resulting in a cathodic and anodic shift of approximately 46 mV on the first and second reduction event, respectively.
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spelling pubmed-76932042020-12-11 Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site Plessius, Raoul Deij, Vera Reek, Joost N. H. van der Vlugt, Jarl Ivar Chemistry Full Papers Three Pt(4)L(2)L′(2) heteroleptic rectangles (1–3), containing ditopic redox‐active bis‐pyridine functionalized perylene bisimide (PBI) ligands PBI‐pyr(2) (L) are reported. Co‐ligand L′ is a dicarboxylate spacer of varying length, leading to modified overall size of the assemblies. (1)H NMR spectroscopy reveals a trend in the splitting and upfield chemical shift of the PBI‐hydrogens in the rectangles with respect to free PBI, most pronounced with the largest strut length (3) and least with the smallest strut length (1). This is attributed to increased rotational freedom of the PBI‐pyr (2) ligand over its longitudinal axis (N(py)‐N(py)), due to increased distance between the PBI‐surfaces, which is corroborated by VT‐NMR measurements and DFT calculations. The intramolecular motion entails desymmetrization of the two PBI‐ligands, in line with cyclic voltammetry (CV) data. The first (overall two‐electron) reduction event and re‐oxidation for 1 display a subtle peak‐to‐peak splitting of 60 mV, whilst increased splitting of this event is observed for 2 and 3. The binding of pyrene in 1 is probed to establish proof of concept of host‐guest chemistry enabled by the two PBI‐motifs. Fitting the binding curve obtained by (1)H NMR titration with a 1:1 complex formation model led to a binding constant of 964±55 m (−1). Pyrene binding is shown to directly influence the redox‐chemistry of 1, resulting in a cathodic and anodic shift of approximately 46 mV on the first and second reduction event, respectively. John Wiley and Sons Inc. 2020-09-21 2020-10-15 /pmc/articles/PMC7693204/ /pubmed/32428350 http://dx.doi.org/10.1002/chem.202001416 Text en © 2020 The Authors. Published by Wiley-VCH GmbH This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Full Papers
Plessius, Raoul
Deij, Vera
Reek, Joost N. H.
van der Vlugt, Jarl Ivar
Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title_full Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title_fullStr Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title_full_unstemmed Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title_short Redox‐Active Supramolecular Heteroleptic M(4)L(2)L′(2) Assemblies with Tunable Interior Binding Site
title_sort redox‐active supramolecular heteroleptic m(4)l(2)l′(2) assemblies with tunable interior binding site
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693204/
https://www.ncbi.nlm.nih.gov/pubmed/32428350
http://dx.doi.org/10.1002/chem.202001416
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