Cargando…

Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization

[Image: see text] The efficiency of solar cells may be improved by using singlet fission (SF), in which one singlet exciton splits into two triplet excitons. SF occurs in molecular crystals. A molecule may crystallize in more than one form, a phenomenon known as polymorphism. Crystal structure may a...

Descripción completa

Detalles Bibliográficos
Autores principales: Tom, Rithwik, Gao, Siyu, Yang, Yi, Zhao, Kaiji, Bier, Imanuel, Buchanan, Eric A., Zaykov, Alexandr, Havlas, Zdeněk, Michl, Josef, Marom, Noa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10042130/
https://www.ncbi.nlm.nih.gov/pubmed/36999121
http://dx.doi.org/10.1021/acs.chemmater.2c03444
_version_ 1784912870510690304
author Tom, Rithwik
Gao, Siyu
Yang, Yi
Zhao, Kaiji
Bier, Imanuel
Buchanan, Eric A.
Zaykov, Alexandr
Havlas, Zdeněk
Michl, Josef
Marom, Noa
author_facet Tom, Rithwik
Gao, Siyu
Yang, Yi
Zhao, Kaiji
Bier, Imanuel
Buchanan, Eric A.
Zaykov, Alexandr
Havlas, Zdeněk
Michl, Josef
Marom, Noa
author_sort Tom, Rithwik
collection PubMed
description [Image: see text] The efficiency of solar cells may be improved by using singlet fission (SF), in which one singlet exciton splits into two triplet excitons. SF occurs in molecular crystals. A molecule may crystallize in more than one form, a phenomenon known as polymorphism. Crystal structure may affect SF performance. In the common form of tetracene, SF is experimentally known to be slightly endoergic. A second, metastable polymorph of tetracene has been found to exhibit better SF performance. Here, we conduct inverse design of the crystal packing of tetracene using a genetic algorithm (GA) with a fitness function tailored to simultaneously optimize the SF rate and the lattice energy. The property-based GA successfully generates more structures predicted to have higher SF rates and provides insight into packing motifs associated with improved SF performance. We find a putative polymorph predicted to have superior SF performance to the two forms of tetracene, whose structures have been determined experimentally. The putative structure has a lattice energy within 1.5 kJ/mol of the most stable common form of tetracene.
format Online
Article
Text
id pubmed-10042130
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-100421302023-03-28 Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization Tom, Rithwik Gao, Siyu Yang, Yi Zhao, Kaiji Bier, Imanuel Buchanan, Eric A. Zaykov, Alexandr Havlas, Zdeněk Michl, Josef Marom, Noa Chem Mater [Image: see text] The efficiency of solar cells may be improved by using singlet fission (SF), in which one singlet exciton splits into two triplet excitons. SF occurs in molecular crystals. A molecule may crystallize in more than one form, a phenomenon known as polymorphism. Crystal structure may affect SF performance. In the common form of tetracene, SF is experimentally known to be slightly endoergic. A second, metastable polymorph of tetracene has been found to exhibit better SF performance. Here, we conduct inverse design of the crystal packing of tetracene using a genetic algorithm (GA) with a fitness function tailored to simultaneously optimize the SF rate and the lattice energy. The property-based GA successfully generates more structures predicted to have higher SF rates and provides insight into packing motifs associated with improved SF performance. We find a putative polymorph predicted to have superior SF performance to the two forms of tetracene, whose structures have been determined experimentally. The putative structure has a lattice energy within 1.5 kJ/mol of the most stable common form of tetracene. American Chemical Society 2023-01-21 /pmc/articles/PMC10042130/ /pubmed/36999121 http://dx.doi.org/10.1021/acs.chemmater.2c03444 Text en © 2023 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 Tom, Rithwik
Gao, Siyu
Yang, Yi
Zhao, Kaiji
Bier, Imanuel
Buchanan, Eric A.
Zaykov, Alexandr
Havlas, Zdeněk
Michl, Josef
Marom, Noa
Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title_full Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title_fullStr Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title_full_unstemmed Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title_short Inverse Design of Tetracene Polymorphs with Enhanced Singlet Fission Performance by Property-Based Genetic Algorithm Optimization
title_sort inverse design of tetracene polymorphs with enhanced singlet fission performance by property-based genetic algorithm optimization
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10042130/
https://www.ncbi.nlm.nih.gov/pubmed/36999121
http://dx.doi.org/10.1021/acs.chemmater.2c03444
work_keys_str_mv AT tomrithwik inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT gaosiyu inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT yangyi inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT zhaokaiji inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT bierimanuel inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT buchananerica inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT zaykovalexandr inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT havlaszdenek inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT michljosef inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization
AT maromnoa inversedesignoftetracenepolymorphswithenhancedsingletfissionperformancebypropertybasedgeneticalgorithmoptimization