Norbornadiene‐Quadricyclane Photoswitches with Enhanced Solar Spectrum Match

Author:

Aslam Adil S.1ORCID,Muhammad Lidiya M.1ORCID,Erbs Hillers‐Bendtsen Andreas2ORCID,Mikkelsen Kurt V.2,Moth‐Poulsen Kasper1345ORCID

Affiliation:

1. Department of Chemistry and Chemical Engineering Chalmers University of Technology SE-41296 Gothenburg Sweden

2. Department of Chemistry University of Copenhagen Universitetsparken 5 2100 Copenhagen Denmark

3. Department of Chemical Engineering Universitat Politècnica de Catalunya Eduard Maristany 10–14 08019 Barcelona Spain

4. The Institute of Materials Science of Barcelona, ICMAB-CSIC Bellaterra, Barcelona 08193 Spain

5. Catalan Institution for Research & Advanced Studies, ICREA Pg. Llu'ıs Companys 23 Barcelona Spain

Abstract

AbstractHerein, we report monomeric and dimeric norbornadiene‐quadricyclane molecular photoswitch systems intended for molecular solar thermal applications. A series of six new norbornadiene derivatives conjugated with benzothiadiazole as the acceptor unit and dithiafulvene as the donor unit were synthesized and fully characterized. The photoswitches were evaluated by experimentally and theoretically measuring optical absorption profiles and thermal conversion of quadricyclane to norbornadiene. Computational insight by density functional theory calculations at the M06‐2X/def2‐SVPD level of theory provided geometries, storage energies, UV‐vis absorption spectra, and HOMO‐LUMO levels that are used to describe the function of the molecular systems. The studied molecules exhibit absorption onset ranging from 416 nm to 595 nm due to a systemic change in their donor‐acceptor character. This approach was advantageous due to the introduction of benzothiadiazole and the dimeric nature of molecular structures. The best‐performing system has a half‐life of 3 days with quantum yields over 50 %.

Funder

HORIZON EUROPE European Research Council

Vetenskapsrådet

Göran Gustafssons Stiftelse för Naturvetenskaplig och Medicinsk Forskning

Energimyndigheten

Svenska Forskningsrådet Formas

Horizon 2020 Framework Programme

European Commission

Danmarks Frie Forskningsfond

Publisher

Wiley

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