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Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”

[Image: see text] As the natural-born photoelectrolyzer for oxygen delivery, photosystem II (PSII) is hardly replicated with man-made constructs. However, building on the “quantasome” hypothesis (Science1964, 144, 1009−101117811607), PSII mimicry can be pared down to essentials by shaping a photocat...

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Autores principales: Gobbato, Thomas, Rigodanza, Francesco, Benazzi, Elisabetta, Costa, Paolo, Garrido, Marina, Sartorel, Andrea, Prato, Maurizio, Bonchio, Marcella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9376926/
https://www.ncbi.nlm.nih.gov/pubmed/35881505
http://dx.doi.org/10.1021/jacs.2c05857
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author Gobbato, Thomas
Rigodanza, Francesco
Benazzi, Elisabetta
Costa, Paolo
Garrido, Marina
Sartorel, Andrea
Prato, Maurizio
Bonchio, Marcella
author_facet Gobbato, Thomas
Rigodanza, Francesco
Benazzi, Elisabetta
Costa, Paolo
Garrido, Marina
Sartorel, Andrea
Prato, Maurizio
Bonchio, Marcella
author_sort Gobbato, Thomas
collection PubMed
description [Image: see text] As the natural-born photoelectrolyzer for oxygen delivery, photosystem II (PSII) is hardly replicated with man-made constructs. However, building on the “quantasome” hypothesis (Science1964, 144, 1009−101117811607), PSII mimicry can be pared down to essentials by shaping a photocatalytic ensemble (from the Greek term ”soma” = body) where visible-light quanta trigger water oxidation. PSII-inspired quantasomes (QS) readily self-assemble into hierarchical photosynthetic nanostacks, made of bis-cationic perylenebisimides (PBI(2+)) as chromophores and deca-anionic tetraruthenate polyoxometalates (Ru(4)POM) as water oxidation catalysts (Nat. Chem.2019, 11, 146−15330510216). A combined supramolecular and click-chemistry strategy is used herein to interlock the PBI-QS with tetraethylene glycol (TEG) cross-linkers, yielding QS-TEG(lock) with increased water solvation, controlled growth, and up to a 340% enhancement of the oxygenic photocurrent compared to the first generation QS, as probed on 3D-inverse opal indium tin oxide electrodes at 8.5 sun irradiance (λ > 450 nm, 1.28 V vs RHE applied bias, TOF(max) = 0.096 ± 0.005 s(–1), FE(O2) > 95%). Action spectra, catalyst mass-activity, light-management, photoelectrochemical impedance spectroscopy (PEIS) together with Raman mapping of TEG-templated hydration shells point to a key role of the cross-linked PBI/Ru(4)POM nanoarrays, where the interplay of hydrophilic/hydrophobic domains is reminiscent of PSII-rich natural thylakoids.
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spelling pubmed-93769262022-08-16 Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes” Gobbato, Thomas Rigodanza, Francesco Benazzi, Elisabetta Costa, Paolo Garrido, Marina Sartorel, Andrea Prato, Maurizio Bonchio, Marcella J Am Chem Soc [Image: see text] As the natural-born photoelectrolyzer for oxygen delivery, photosystem II (PSII) is hardly replicated with man-made constructs. However, building on the “quantasome” hypothesis (Science1964, 144, 1009−101117811607), PSII mimicry can be pared down to essentials by shaping a photocatalytic ensemble (from the Greek term ”soma” = body) where visible-light quanta trigger water oxidation. PSII-inspired quantasomes (QS) readily self-assemble into hierarchical photosynthetic nanostacks, made of bis-cationic perylenebisimides (PBI(2+)) as chromophores and deca-anionic tetraruthenate polyoxometalates (Ru(4)POM) as water oxidation catalysts (Nat. Chem.2019, 11, 146−15330510216). A combined supramolecular and click-chemistry strategy is used herein to interlock the PBI-QS with tetraethylene glycol (TEG) cross-linkers, yielding QS-TEG(lock) with increased water solvation, controlled growth, and up to a 340% enhancement of the oxygenic photocurrent compared to the first generation QS, as probed on 3D-inverse opal indium tin oxide electrodes at 8.5 sun irradiance (λ > 450 nm, 1.28 V vs RHE applied bias, TOF(max) = 0.096 ± 0.005 s(–1), FE(O2) > 95%). Action spectra, catalyst mass-activity, light-management, photoelectrochemical impedance spectroscopy (PEIS) together with Raman mapping of TEG-templated hydration shells point to a key role of the cross-linked PBI/Ru(4)POM nanoarrays, where the interplay of hydrophilic/hydrophobic domains is reminiscent of PSII-rich natural thylakoids. American Chemical Society 2022-07-26 2022-08-10 /pmc/articles/PMC9376926/ /pubmed/35881505 http://dx.doi.org/10.1021/jacs.2c05857 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Gobbato, Thomas
Rigodanza, Francesco
Benazzi, Elisabetta
Costa, Paolo
Garrido, Marina
Sartorel, Andrea
Prato, Maurizio
Bonchio, Marcella
Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title_full Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title_fullStr Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title_full_unstemmed Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title_short Enhancing Oxygenic Photosynthesis by Cross-Linked Perylenebisimide “Quantasomes”
title_sort enhancing oxygenic photosynthesis by cross-linked perylenebisimide “quantasomes”
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9376926/
https://www.ncbi.nlm.nih.gov/pubmed/35881505
http://dx.doi.org/10.1021/jacs.2c05857
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