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Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells

In this study, two analogous perylene diimide (PDI) trimers, whose structures show rotatable single bond π-bridge connection (twisted) vs. rigid/fused π-bridge connection (planar), were synthesized and investigated. We show via time resolved spectroscopic measurements how the π-bridge connections in...

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Autores principales: Carlotti, Benedetta, Madu, Ifeanyi K., Kim, Hyungjun, Cai, Zhengxu., Jiang, Hanjie, Muthike, Angelar K., Yu, Luping, Zimmerman, Paul M., Goodson, Theodore
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163386/
https://www.ncbi.nlm.nih.gov/pubmed/34123128
http://dx.doi.org/10.1039/d0sc03271a
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author Carlotti, Benedetta
Madu, Ifeanyi K.
Kim, Hyungjun
Cai, Zhengxu.
Jiang, Hanjie
Muthike, Angelar K.
Yu, Luping
Zimmerman, Paul M.
Goodson, Theodore
author_facet Carlotti, Benedetta
Madu, Ifeanyi K.
Kim, Hyungjun
Cai, Zhengxu.
Jiang, Hanjie
Muthike, Angelar K.
Yu, Luping
Zimmerman, Paul M.
Goodson, Theodore
author_sort Carlotti, Benedetta
collection PubMed
description In this study, two analogous perylene diimide (PDI) trimers, whose structures show rotatable single bond π-bridge connection (twisted) vs. rigid/fused π-bridge connection (planar), were synthesized and investigated. We show via time resolved spectroscopic measurements how the π-bridge connections in A–π–D–π–A–π–D–π–A multichromophoric PDI systems strongly affect the triplet yield and triplet formation rate. In the planar compound, with stronger intramolecular charge transfer (ICT) character, triplet formation occurs via conventional intersystem crossing. However, clear evidence of efficient and fast intramolecular singlet exciton fission (iSEF) is observed in the twisted trimer compound with weaker ICT character. Multiexciton triplet generation and separation occur in the twisted (flexible-bridged) PDI trimer, where weak coupling among the units is observed as a result of the degenerate double triplet and quintet states, obtained by quantum chemical calculations. The high triplet yield and fast iSEF observed in the twisted compound are due not only to enthalpic viability but also to the significant entropic gain allowed by its trimeric structure. Our results represent a significant step forward in structure–property understanding, and may direct the design of new efficient iSEF materials.
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spelling pubmed-81633862021-06-11 Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells Carlotti, Benedetta Madu, Ifeanyi K. Kim, Hyungjun Cai, Zhengxu. Jiang, Hanjie Muthike, Angelar K. Yu, Luping Zimmerman, Paul M. Goodson, Theodore Chem Sci Chemistry In this study, two analogous perylene diimide (PDI) trimers, whose structures show rotatable single bond π-bridge connection (twisted) vs. rigid/fused π-bridge connection (planar), were synthesized and investigated. We show via time resolved spectroscopic measurements how the π-bridge connections in A–π–D–π–A–π–D–π–A multichromophoric PDI systems strongly affect the triplet yield and triplet formation rate. In the planar compound, with stronger intramolecular charge transfer (ICT) character, triplet formation occurs via conventional intersystem crossing. However, clear evidence of efficient and fast intramolecular singlet exciton fission (iSEF) is observed in the twisted trimer compound with weaker ICT character. Multiexciton triplet generation and separation occur in the twisted (flexible-bridged) PDI trimer, where weak coupling among the units is observed as a result of the degenerate double triplet and quintet states, obtained by quantum chemical calculations. The high triplet yield and fast iSEF observed in the twisted compound are due not only to enthalpic viability but also to the significant entropic gain allowed by its trimeric structure. Our results represent a significant step forward in structure–property understanding, and may direct the design of new efficient iSEF materials. The Royal Society of Chemistry 2020-08-07 /pmc/articles/PMC8163386/ /pubmed/34123128 http://dx.doi.org/10.1039/d0sc03271a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Carlotti, Benedetta
Madu, Ifeanyi K.
Kim, Hyungjun
Cai, Zhengxu.
Jiang, Hanjie
Muthike, Angelar K.
Yu, Luping
Zimmerman, Paul M.
Goodson, Theodore
Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title_full Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title_fullStr Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title_full_unstemmed Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title_short Activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
title_sort activating intramolecular singlet exciton fission by altering π-bridge flexibility in perylene diimide trimers for organic solar cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163386/
https://www.ncbi.nlm.nih.gov/pubmed/34123128
http://dx.doi.org/10.1039/d0sc03271a
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