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Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution

Integration of molecular catalysts inside polymeric scaffolds has gained substantial attention over the past decade, as it provides a path towards generating systems with enhanced stability as well as enzyme-like morphologies and properties. In the context of solar fuels research and chemical energy...

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Autores principales: Zamader, Afridi, Reuillard, Bertrand, Pérard, Julien, Billon, Laurent, Berggren, Gustav, Artero, Vincent
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/PMC10521030/
https://www.ncbi.nlm.nih.gov/pubmed/38013894
http://dx.doi.org/10.1039/d3se00409k
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author Zamader, Afridi
Reuillard, Bertrand
Pérard, Julien
Billon, Laurent
Berggren, Gustav
Artero, Vincent
author_facet Zamader, Afridi
Reuillard, Bertrand
Pérard, Julien
Billon, Laurent
Berggren, Gustav
Artero, Vincent
author_sort Zamader, Afridi
collection PubMed
description Integration of molecular catalysts inside polymeric scaffolds has gained substantial attention over the past decade, as it provides a path towards generating systems with enhanced stability as well as enzyme-like morphologies and properties. In the context of solar fuels research and chemical energy conversion, this approach has been found to improve both rates and energy efficiencies of a range of catalytic reactions. However, system performance still needs to be improved to reach technologically relevant currents and stability, parameters that are heavily influenced by the nature of the incorporated molecular catalyst. Here, we have focused on the integration of a biomimetic {Fe(2)(μ-adt)(CO)(6)} (–CH(2)NHCH(2)S–, azadithiolate or adt(2−)) based active site (“[2Fe2S](adt)”), inspired by the catalytic cofactor of [FeFe] hydrogenases, within a synthetic polymeric scaffold using free radical polymerization. The resulting metallopolymers [2Fe2S](adt)(k)[DMAEMA](l)[PyBMA](m) (DMAEMA = dimethylaminoethyl methacrylate as water soluble monomer; PyBMA = 4-(pyren-1-yl)-butyl methacrylate as hydrophobic anchor for heterogenization) were found to be active for electrochemical H(2) production in neutral aqueous media. The pyrene content was varied to optimize durability and activity. Following immobilization on multiwalled carbon nanotubes (MWNT) the most active metallopolymer, containing ∼2.3 mol% of PyBMA, could reach a turnover number for hydrogen production (TON(H(2))) of ∼0.4 ×10(5) over 20 hours of electrolysis at an overpotential of 0.49 V, two orders of magnitude higher than the isolated catalyst counterpart. The study provides a synthetic methodology for incorporating catalytic units featuring second coordination sphere functional groups, and highlights the benefit of the confinement within the polymer matrix for catalytic performance.
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spelling pubmed-105210302023-09-27 Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution Zamader, Afridi Reuillard, Bertrand Pérard, Julien Billon, Laurent Berggren, Gustav Artero, Vincent Sustain Energy Fuels Chemistry Integration of molecular catalysts inside polymeric scaffolds has gained substantial attention over the past decade, as it provides a path towards generating systems with enhanced stability as well as enzyme-like morphologies and properties. In the context of solar fuels research and chemical energy conversion, this approach has been found to improve both rates and energy efficiencies of a range of catalytic reactions. However, system performance still needs to be improved to reach technologically relevant currents and stability, parameters that are heavily influenced by the nature of the incorporated molecular catalyst. Here, we have focused on the integration of a biomimetic {Fe(2)(μ-adt)(CO)(6)} (–CH(2)NHCH(2)S–, azadithiolate or adt(2−)) based active site (“[2Fe2S](adt)”), inspired by the catalytic cofactor of [FeFe] hydrogenases, within a synthetic polymeric scaffold using free radical polymerization. The resulting metallopolymers [2Fe2S](adt)(k)[DMAEMA](l)[PyBMA](m) (DMAEMA = dimethylaminoethyl methacrylate as water soluble monomer; PyBMA = 4-(pyren-1-yl)-butyl methacrylate as hydrophobic anchor for heterogenization) were found to be active for electrochemical H(2) production in neutral aqueous media. The pyrene content was varied to optimize durability and activity. Following immobilization on multiwalled carbon nanotubes (MWNT) the most active metallopolymer, containing ∼2.3 mol% of PyBMA, could reach a turnover number for hydrogen production (TON(H(2))) of ∼0.4 ×10(5) over 20 hours of electrolysis at an overpotential of 0.49 V, two orders of magnitude higher than the isolated catalyst counterpart. The study provides a synthetic methodology for incorporating catalytic units featuring second coordination sphere functional groups, and highlights the benefit of the confinement within the polymer matrix for catalytic performance. The Royal Society of Chemistry 2023-08-23 /pmc/articles/PMC10521030/ /pubmed/38013894 http://dx.doi.org/10.1039/d3se00409k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zamader, Afridi
Reuillard, Bertrand
Pérard, Julien
Billon, Laurent
Berggren, Gustav
Artero, Vincent
Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title_full Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title_fullStr Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title_full_unstemmed Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title_short Synthetic styrene-based bioinspired model of the [FeFe]-hydrogenase active site for electrocatalytic hydrogen evolution
title_sort synthetic styrene-based bioinspired model of the [fefe]-hydrogenase active site for electrocatalytic hydrogen evolution
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10521030/
https://www.ncbi.nlm.nih.gov/pubmed/38013894
http://dx.doi.org/10.1039/d3se00409k
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