Cargando…

Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes

[Image: see text] A new Ru oligomer of formula {[Ru(II)(bda-κ-N(2)O(2))(4,4′-bpy)](10)(4,4′-bpy)}, 10 (bda is [2,2′-bipyridine]-6,6′-dicarboxylate and 4,4′-bpy is 4,4′-bipyridine), was synthesized and thoroughly characterized with spectroscopic, X-ray, and electrochemical techniques. This oligomer e...

Descripción completa

Detalles Bibliográficos
Autores principales: Gil-Sepulcre, Marcos, Lindner, Joachim O., Schindler, Dorothee, Velasco, Lucía, Moonshiram, Dooshaye, Rüdiger, Olaf, DeBeer, Serena, Stepanenko, Vladimir, Solano, Eduardo, Würthner, Frank, Llobet, Antoni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8343522/
https://www.ncbi.nlm.nih.gov/pubmed/34293261
http://dx.doi.org/10.1021/jacs.1c04738
_version_ 1783734304880197632
author Gil-Sepulcre, Marcos
Lindner, Joachim O.
Schindler, Dorothee
Velasco, Lucía
Moonshiram, Dooshaye
Rüdiger, Olaf
DeBeer, Serena
Stepanenko, Vladimir
Solano, Eduardo
Würthner, Frank
Llobet, Antoni
author_facet Gil-Sepulcre, Marcos
Lindner, Joachim O.
Schindler, Dorothee
Velasco, Lucía
Moonshiram, Dooshaye
Rüdiger, Olaf
DeBeer, Serena
Stepanenko, Vladimir
Solano, Eduardo
Würthner, Frank
Llobet, Antoni
author_sort Gil-Sepulcre, Marcos
collection PubMed
description [Image: see text] A new Ru oligomer of formula {[Ru(II)(bda-κ-N(2)O(2))(4,4′-bpy)](10)(4,4′-bpy)}, 10 (bda is [2,2′-bipyridine]-6,6′-dicarboxylate and 4,4′-bpy is 4,4′-bipyridine), was synthesized and thoroughly characterized with spectroscopic, X-ray, and electrochemical techniques. This oligomer exhibits strong affinity for graphitic materials through CH−π interactions and thus easily anchors on multiwalled carbon nanotubes (CNT), generating the molecular hybrid material 10@CNT. The latter acts as a water oxidation catalyst and converts to a new species, 10′(H(2)O)(2)@CNT, during the electrochemical oxygen evolution process involving solvation and ligand reorganization facilitated by the interactions of molecular Ru catalyst and the surface. This heterogeneous system has been shown to be a powerful and robust molecular hybrid anode for electrocatalytic water oxidation into molecular oxygen, achieving current densities in the range of 200 mA/cm(2) at pH 7 under an applied potential of 1.45 V vs NHE. The remarkable long-term stability of this hybrid material during turnover is rationalized based on the supramolecular interaction of the catalyst with the graphitic surface.
format Online
Article
Text
id pubmed-8343522
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-83435222021-08-09 Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes Gil-Sepulcre, Marcos Lindner, Joachim O. Schindler, Dorothee Velasco, Lucía Moonshiram, Dooshaye Rüdiger, Olaf DeBeer, Serena Stepanenko, Vladimir Solano, Eduardo Würthner, Frank Llobet, Antoni J Am Chem Soc [Image: see text] A new Ru oligomer of formula {[Ru(II)(bda-κ-N(2)O(2))(4,4′-bpy)](10)(4,4′-bpy)}, 10 (bda is [2,2′-bipyridine]-6,6′-dicarboxylate and 4,4′-bpy is 4,4′-bipyridine), was synthesized and thoroughly characterized with spectroscopic, X-ray, and electrochemical techniques. This oligomer exhibits strong affinity for graphitic materials through CH−π interactions and thus easily anchors on multiwalled carbon nanotubes (CNT), generating the molecular hybrid material 10@CNT. The latter acts as a water oxidation catalyst and converts to a new species, 10′(H(2)O)(2)@CNT, during the electrochemical oxygen evolution process involving solvation and ligand reorganization facilitated by the interactions of molecular Ru catalyst and the surface. This heterogeneous system has been shown to be a powerful and robust molecular hybrid anode for electrocatalytic water oxidation into molecular oxygen, achieving current densities in the range of 200 mA/cm(2) at pH 7 under an applied potential of 1.45 V vs NHE. The remarkable long-term stability of this hybrid material during turnover is rationalized based on the supramolecular interaction of the catalyst with the graphitic surface. American Chemical Society 2021-07-22 2021-08-04 /pmc/articles/PMC8343522/ /pubmed/34293261 http://dx.doi.org/10.1021/jacs.1c04738 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Gil-Sepulcre, Marcos
Lindner, Joachim O.
Schindler, Dorothee
Velasco, Lucía
Moonshiram, Dooshaye
Rüdiger, Olaf
DeBeer, Serena
Stepanenko, Vladimir
Solano, Eduardo
Würthner, Frank
Llobet, Antoni
Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title_full Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title_fullStr Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title_full_unstemmed Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title_short Surface-Promoted Evolution of Ru-bda Coordination Oligomers Boosts the Efficiency of Water Oxidation Molecular Anodes
title_sort surface-promoted evolution of ru-bda coordination oligomers boosts the efficiency of water oxidation molecular anodes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8343522/
https://www.ncbi.nlm.nih.gov/pubmed/34293261
http://dx.doi.org/10.1021/jacs.1c04738
work_keys_str_mv AT gilsepulcremarcos surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT lindnerjoachimo surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT schindlerdorothee surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT velascolucia surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT moonshiramdooshaye surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT rudigerolaf surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT debeerserena surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT stepanenkovladimir surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT solanoeduardo surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT wurthnerfrank surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes
AT llobetantoni surfacepromotedevolutionofrubdacoordinationoligomersbooststheefficiencyofwateroxidationmolecularanodes