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Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design

Molecular solar thermal (MOST) systems, such as the norbornadiene/quadricyclane (NBD/QC) couple, combine solar energy conversion, storage, and release in a simple one‐photon one‐molecule process. Triggering the energy release electrochemically enables high control of the process, high selectivity, a...

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Autores principales: Franz, Evanie, Krappmann, Daniel, Fromm, Lukas, Luchs, Tobias, Görling, Andreas, Hirsch, Andreas, Brummel, Olaf, Libuda, Jörg
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10099746/
https://www.ncbi.nlm.nih.gov/pubmed/36213958
http://dx.doi.org/10.1002/cssc.202201483
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author Franz, Evanie
Krappmann, Daniel
Fromm, Lukas
Luchs, Tobias
Görling, Andreas
Hirsch, Andreas
Brummel, Olaf
Libuda, Jörg
author_facet Franz, Evanie
Krappmann, Daniel
Fromm, Lukas
Luchs, Tobias
Görling, Andreas
Hirsch, Andreas
Brummel, Olaf
Libuda, Jörg
author_sort Franz, Evanie
collection PubMed
description Molecular solar thermal (MOST) systems, such as the norbornadiene/quadricyclane (NBD/QC) couple, combine solar energy conversion, storage, and release in a simple one‐photon one‐molecule process. Triggering the energy release electrochemically enables high control of the process, high selectivity, and reversibility. In this work, the influence of the molecular design of the MOST couple on the electrochemically triggered back‐conversion reaction was addressed for the first time. The MOST systems phenyl‐ethyl ester‐NBD/QC (NBD1/QC1) and p‐methoxyphenyl‐ethyl ester‐NBD/QC (NBD2/QC2) were investigated by in‐situ photoelectrochemical infrared spectroscopy, voltammetry, and density functional theory modelling. For QC1, partial decomposition (40 %) was observed upon back‐conversion and along with a voltammetric peak at 0.6 V(fc), which was assigned primarily to decomposition. The back‐conversion of QC2, however, occurred without detectable side products, and the corresponding peak at 0.45 V(fc) was weaker by a factor of 10. It was concluded that the electrochemical stability of a NBD/QC couple is easy tunable by simple structural changes. Furthermore, the charge input and, therefore, the current for the electrochemically triggered energy release is very low, which ensures a high overall efficiency of the MOST system.
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spelling pubmed-100997462023-04-14 Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design Franz, Evanie Krappmann, Daniel Fromm, Lukas Luchs, Tobias Görling, Andreas Hirsch, Andreas Brummel, Olaf Libuda, Jörg ChemSusChem Research Articles Molecular solar thermal (MOST) systems, such as the norbornadiene/quadricyclane (NBD/QC) couple, combine solar energy conversion, storage, and release in a simple one‐photon one‐molecule process. Triggering the energy release electrochemically enables high control of the process, high selectivity, and reversibility. In this work, the influence of the molecular design of the MOST couple on the electrochemically triggered back‐conversion reaction was addressed for the first time. The MOST systems phenyl‐ethyl ester‐NBD/QC (NBD1/QC1) and p‐methoxyphenyl‐ethyl ester‐NBD/QC (NBD2/QC2) were investigated by in‐situ photoelectrochemical infrared spectroscopy, voltammetry, and density functional theory modelling. For QC1, partial decomposition (40 %) was observed upon back‐conversion and along with a voltammetric peak at 0.6 V(fc), which was assigned primarily to decomposition. The back‐conversion of QC2, however, occurred without detectable side products, and the corresponding peak at 0.45 V(fc) was weaker by a factor of 10. It was concluded that the electrochemical stability of a NBD/QC couple is easy tunable by simple structural changes. Furthermore, the charge input and, therefore, the current for the electrochemically triggered energy release is very low, which ensures a high overall efficiency of the MOST system. John Wiley and Sons Inc. 2022-11-11 2022-12-20 /pmc/articles/PMC10099746/ /pubmed/36213958 http://dx.doi.org/10.1002/cssc.202201483 Text en © 2022 The Authors. ChemSusChem published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Franz, Evanie
Krappmann, Daniel
Fromm, Lukas
Luchs, Tobias
Görling, Andreas
Hirsch, Andreas
Brummel, Olaf
Libuda, Jörg
Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title_full Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title_fullStr Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title_full_unstemmed Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title_short Electrocatalytic Energy Release of Norbornadiene‐Based Molecular Solar Thermal Systems: Tuning the Electrochemical Stability by Molecular Design
title_sort electrocatalytic energy release of norbornadiene‐based molecular solar thermal systems: tuning the electrochemical stability by molecular design
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10099746/
https://www.ncbi.nlm.nih.gov/pubmed/36213958
http://dx.doi.org/10.1002/cssc.202201483
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