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Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines

Cobalt(ii) complexes featuring hexadentate amino-pyridyl ligands have been recently discovered as highly active catalysts for the Hydrogen Evolution Reaction (HER), whose high performance arises from the possibility of assisting proton transfer processes via intramolecular routes involving detached...

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Autores principales: Lucarini, Fiorella, Fize, Jennifer, Morozan, Adina, Droghetti, Federico, Solari, Euro, Scopelliti, Rosario, Marazzi, Marco, Natali, Mirco, Pastore, Mariachiara, Artero, Vincent, Ruggi, Albert
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/PMC10334870/
https://www.ncbi.nlm.nih.gov/pubmed/37441238
http://dx.doi.org/10.1039/d3se00295k
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author Lucarini, Fiorella
Fize, Jennifer
Morozan, Adina
Droghetti, Federico
Solari, Euro
Scopelliti, Rosario
Marazzi, Marco
Natali, Mirco
Pastore, Mariachiara
Artero, Vincent
Ruggi, Albert
author_facet Lucarini, Fiorella
Fize, Jennifer
Morozan, Adina
Droghetti, Federico
Solari, Euro
Scopelliti, Rosario
Marazzi, Marco
Natali, Mirco
Pastore, Mariachiara
Artero, Vincent
Ruggi, Albert
author_sort Lucarini, Fiorella
collection PubMed
description Cobalt(ii) complexes featuring hexadentate amino-pyridyl ligands have been recently discovered as highly active catalysts for the Hydrogen Evolution Reaction (HER), whose high performance arises from the possibility of assisting proton transfer processes via intramolecular routes involving detached pyridine units. With the aim of gaining insights into such catalytic routes, three new proton reduction catalysts based on amino-polypyridyl ligands are reported, focusing on substitution of the pyridine ortho-position. Specifically, a carboxylate (C2) and two hydroxyl substituted pyridyl moieties (C3, C4) are introduced with the aim of promoting intramolecular proton transfer which possibly enhances the efficiency of the catalysts. Foot-of-the-wave and catalytic Tafel plot analyses have been utilized to benchmark the catalytic performances under electrochemical conditions in acetonitrile using trifluoroacetic acid as the proton source. In this respect, the cobalt complex C3 turns out to be the fastest catalyst in the series, with a maximum turnover frequency (TOF) of 1.6 (±0.5) × 10(5) s(−1), but at the expense of large overpotentials. Mechanistic investigations by means of Density Functional Theory (DFT) suggest a typical ECEC mechanism (i.e. a sequence of reduction – E – and protonation – C – events) for all the catalysts, as previously envisioned for the parent unsubstituted complex C1. Interestingly, in the case of complex C2, the catalytic route is triggered by initial protonation of the carboxylate group resulting in a less common (C)ECEC mechanism. The pivotal role of the hexadentate chelating ligand in providing internal proton relays to assist hydrogen elimination is further confirmed within this novel class of molecular catalysts, thus highlighting the relevance of a flexible polypyridine ligand in the design of efficient cobalt complexes for the HER. Photochemical studies in aqueous solution using [Ru(bpy)(3)](2+) (where bpy = 2,2′-bipyridine) as the sensitizer and ascorbate as the sacrificial electron donor support the superior performance of C3.
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spelling pubmed-103348702023-07-12 Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines Lucarini, Fiorella Fize, Jennifer Morozan, Adina Droghetti, Federico Solari, Euro Scopelliti, Rosario Marazzi, Marco Natali, Mirco Pastore, Mariachiara Artero, Vincent Ruggi, Albert Sustain Energy Fuels Chemistry Cobalt(ii) complexes featuring hexadentate amino-pyridyl ligands have been recently discovered as highly active catalysts for the Hydrogen Evolution Reaction (HER), whose high performance arises from the possibility of assisting proton transfer processes via intramolecular routes involving detached pyridine units. With the aim of gaining insights into such catalytic routes, three new proton reduction catalysts based on amino-polypyridyl ligands are reported, focusing on substitution of the pyridine ortho-position. Specifically, a carboxylate (C2) and two hydroxyl substituted pyridyl moieties (C3, C4) are introduced with the aim of promoting intramolecular proton transfer which possibly enhances the efficiency of the catalysts. Foot-of-the-wave and catalytic Tafel plot analyses have been utilized to benchmark the catalytic performances under electrochemical conditions in acetonitrile using trifluoroacetic acid as the proton source. In this respect, the cobalt complex C3 turns out to be the fastest catalyst in the series, with a maximum turnover frequency (TOF) of 1.6 (±0.5) × 10(5) s(−1), but at the expense of large overpotentials. Mechanistic investigations by means of Density Functional Theory (DFT) suggest a typical ECEC mechanism (i.e. a sequence of reduction – E – and protonation – C – events) for all the catalysts, as previously envisioned for the parent unsubstituted complex C1. Interestingly, in the case of complex C2, the catalytic route is triggered by initial protonation of the carboxylate group resulting in a less common (C)ECEC mechanism. The pivotal role of the hexadentate chelating ligand in providing internal proton relays to assist hydrogen elimination is further confirmed within this novel class of molecular catalysts, thus highlighting the relevance of a flexible polypyridine ligand in the design of efficient cobalt complexes for the HER. Photochemical studies in aqueous solution using [Ru(bpy)(3)](2+) (where bpy = 2,2′-bipyridine) as the sensitizer and ascorbate as the sacrificial electron donor support the superior performance of C3. The Royal Society of Chemistry 2023-05-25 /pmc/articles/PMC10334870/ /pubmed/37441238 http://dx.doi.org/10.1039/d3se00295k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lucarini, Fiorella
Fize, Jennifer
Morozan, Adina
Droghetti, Federico
Solari, Euro
Scopelliti, Rosario
Marazzi, Marco
Natali, Mirco
Pastore, Mariachiara
Artero, Vincent
Ruggi, Albert
Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title_full Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title_fullStr Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title_full_unstemmed Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title_short Electro- and photochemical H(2) generation by Co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
title_sort electro- and photochemical h(2) generation by co(ii) polypyridyl-based catalysts bearing ortho-substituted pyridines
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10334870/
https://www.ncbi.nlm.nih.gov/pubmed/37441238
http://dx.doi.org/10.1039/d3se00295k
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