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Mutually exclusive hole and electron transfer coupling in cross stacked acenes

The topology of frontier molecular orbitals (FMOs) induces highly sensitive charge transfer coupling with variation in the intermolecular arrangement. A consistent optoelectronic property correlated to a specific aggregate architecture independent of the nature of the monomer is a rare phenomenon. O...

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Autores principales: Benny, Alfy, Ramakrishnan, Remya, Hariharan, Mahesh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8895660/
https://www.ncbi.nlm.nih.gov/pubmed/35356382
http://dx.doi.org/10.1039/d1sc00520k
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author Benny, Alfy
Ramakrishnan, Remya
Hariharan, Mahesh
author_facet Benny, Alfy
Ramakrishnan, Remya
Hariharan, Mahesh
author_sort Benny, Alfy
collection PubMed
description The topology of frontier molecular orbitals (FMOs) induces highly sensitive charge transfer coupling with variation in the intermolecular arrangement. A consistent optoelectronic property correlated to a specific aggregate architecture independent of the nature of the monomer is a rare phenomenon. Our theoretical investigation on stacked dimeric systems of linear [n]acenes (n = 2–5) and selected non-linear acenes with a D(2h) point group reveals that the Greek cross (+) stacked orientation, irrespective of the molecular candidate, exhibits mutually exclusive hole and electron transfer couplings. The deactivation of either hole or electron transfer coupling is a consequence of the zero inter-orbital overlap between the highest occupied molecular orbitals (HOMOs) or lowest unoccupied molecular orbitals (LUMOs) of the monomers possessing gerade symmetry. In the Greek cross (+) stacked alignment, the (4n + 2) π-electronic acene systems with an odd number of benzenoids exhibit exclusive electron transfer coupling, while the even numbered acenes exhibit selective hole transfer coupling. The trend is reversed for representative 4n π-electronic acene systems. The effect of mutually exclusive charge transfer coupling in the hopping regime of charge transport was evaluated using semiclassical Marcus theory, and selective charge carrier mobility was exhibited by the Greek cross (+) stacks of the considered acene candidates. Additionally, the characteristic charge transfer coupling of the orthogonal acene stacks resulted in negligible short-range exciton coupling, inciting null exciton splitting at short interplanar distances. Engineering chromophores in precise angular orientations ensuring characteristic emergent properties can have tremendous potential in the rational design of advanced optoelectronic materials.
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spelling pubmed-88956602022-03-29 Mutually exclusive hole and electron transfer coupling in cross stacked acenes Benny, Alfy Ramakrishnan, Remya Hariharan, Mahesh Chem Sci Chemistry The topology of frontier molecular orbitals (FMOs) induces highly sensitive charge transfer coupling with variation in the intermolecular arrangement. A consistent optoelectronic property correlated to a specific aggregate architecture independent of the nature of the monomer is a rare phenomenon. Our theoretical investigation on stacked dimeric systems of linear [n]acenes (n = 2–5) and selected non-linear acenes with a D(2h) point group reveals that the Greek cross (+) stacked orientation, irrespective of the molecular candidate, exhibits mutually exclusive hole and electron transfer couplings. The deactivation of either hole or electron transfer coupling is a consequence of the zero inter-orbital overlap between the highest occupied molecular orbitals (HOMOs) or lowest unoccupied molecular orbitals (LUMOs) of the monomers possessing gerade symmetry. In the Greek cross (+) stacked alignment, the (4n + 2) π-electronic acene systems with an odd number of benzenoids exhibit exclusive electron transfer coupling, while the even numbered acenes exhibit selective hole transfer coupling. The trend is reversed for representative 4n π-electronic acene systems. The effect of mutually exclusive charge transfer coupling in the hopping regime of charge transport was evaluated using semiclassical Marcus theory, and selective charge carrier mobility was exhibited by the Greek cross (+) stacks of the considered acene candidates. Additionally, the characteristic charge transfer coupling of the orthogonal acene stacks resulted in negligible short-range exciton coupling, inciting null exciton splitting at short interplanar distances. Engineering chromophores in precise angular orientations ensuring characteristic emergent properties can have tremendous potential in the rational design of advanced optoelectronic materials. The Royal Society of Chemistry 2021-03-17 /pmc/articles/PMC8895660/ /pubmed/35356382 http://dx.doi.org/10.1039/d1sc00520k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Benny, Alfy
Ramakrishnan, Remya
Hariharan, Mahesh
Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title_full Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title_fullStr Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title_full_unstemmed Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title_short Mutually exclusive hole and electron transfer coupling in cross stacked acenes
title_sort mutually exclusive hole and electron transfer coupling in cross stacked acenes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8895660/
https://www.ncbi.nlm.nih.gov/pubmed/35356382
http://dx.doi.org/10.1039/d1sc00520k
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AT hariharanmahesh mutuallyexclusiveholeandelectrontransfercouplingincrossstackedacenes