Searching the Chemical Space of Bicyclic Dienes for Molecular Solar Thermal Energy Storage Candidates
Journal article, 2023

Photoswitches are molecular systems that are chemically transformed subsequent to interaction with light and they find potential application in many new technologies. The design and discovery of photoswitch candidates require intricate molecular engineering of a range of properties to optimize a candidate to a specific applications, a task which can be tackled efficiently using quantum chemical screening procedures. In this paper, we perform a large scale screening of approximately half a million bicyclic diene photoswitches in the context of molecular solar thermal energy storage using ab initio quantum chemical methods. We further device an efficient strategy for scoring the systems based on their predicted solar energy conversion efficiency and elucidate potential pitfalls of this approach. Our search through the chemical space of bicyclic dienes reveals systems with unprecedented solar energy conversion efficiencies and storage densities that show promising design guidelines for next generation molecular solar thermal energy storage systems.

Bicyclic Dienes

Photoswitches

Quantum Chemistry

Solar Energy Storage

High Troughput Screening

Author

Andreas Erbs Hillers-Bendtsen

University of Copenhagen

Jacob Lynge Elholm

University of Copenhagen

Institute of Material Science of Barcelona (ICMAB)

Oscar Berlin Obel

University of Copenhagen

Helen Hölzel

Polytechnic University of Catalonia

Kasper Moth-Poulsen

Institute of Material Science of Barcelona (ICMAB)

Catalan Institution for Research and Advanced Studies

Chalmers, Chemistry and Chemical Engineering, Applied Chemistry

Polytechnic University of Catalonia

Kurt V. Mikkelsen

University of Copenhagen

Angewandte Chemie - International Edition

1433-7851 (ISSN) 1521-3773 (eISSN)

Vol. 62 40 e202309543

Subject Categories

Energy Engineering

Astronomy, Astrophysics and Cosmology

DOI

10.1002/anie.202309543

PubMed

37489860

More information

Latest update

3/7/2024 9