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Artículo

Electronic Couplings versus Thermal Fluctuations in the Internal Conversion of Perylene Diimides: The Battle to Localize the Exciton

Oldani, Andres NicolasIcon ; Freixas, Victor M.; Ondarse Alvarez, DianelysIcon ; Sharifzadeh, Sahar; Gibson, Tammie; Tretiak, Sergei; Fernández Alberti, SebastiánIcon
Fecha de publicación: 07/2024
Editorial: American Chemical Society
Revista: Journal of Chemical Theory and Computation
ISSN: 1549-9618
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Físico-Química, Ciencia de los Polímeros, Electroquímica

Resumen

Energy transfer processes among units of light-harvesting homooligomers impact the efficiency of these materials as components in organic optoelectronic devices such as solar cells. Perylene diimide (PDI), a prototypical dye, features exceptional light absorption and highly tunable optical and electronic properties. These properties can be modulated by varying the number of PDI units and linkers between them. Herein, atomistic nonadiabatic excited state molecular dynamics is used to explore the energy transfer during the internal conversion of acetylene and diacetylene bridged dimeric and trimeric PDIs. Our simulations reveal a significant impact of the bridge type on the transient exciton localization/delocalization between units of PDI dimers. After electronic relaxation, larger exciton delocalization occurs in the PDI dimer connected by the diacetylene bridge with respect to the one connected by the shorter acetylene bridge. These changes can be rationalized by the Frenkel exciton model. We outline a technique for deriving parameters for this model using inputs provided by nonadiabatic dynamics simulations. Frenkel exciton description reveals an interplay between the relative strengths of the diagonal and off-diagonal disorders. Moreover, atomistic simulations and the Frenkel exciton model of the PDI trimer systems corroborate in detail the localization properties of the exciton on the molecular units during the internal conversion to the lowest-energy excited state when the units become effectively decoupled. Overall, atomistic nonadiabatic simulations in combination with the Frenkel exciton model can serve as a predictive framework for analyzing and predicting desired exciton traps in PDI-based oligomers designed for organic electronics and photonic devices.
Palabras clave: exciton model , perylene diimides , nonadiabatic dynamics , excited states
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info:eu-repo/semantics/restrictedAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
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URI: http://hdl.handle.net/11336/245747
URL: https://pubs.acs.org/doi/10.1021/acs.jctc.4c00486
DOI: http://dx.doi.org/10.1021/acs.jctc.4c00486
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Citación
Oldani, Andres Nicolas; Freixas, Victor M.; Ondarse Alvarez, Dianelys; Sharifzadeh, Sahar; Gibson, Tammie; et al.; Electronic Couplings versus Thermal Fluctuations in the Internal Conversion of Perylene Diimides: The Battle to Localize the Exciton; American Chemical Society; Journal of Chemical Theory and Computation; 20; 14; 7-2024; 5820-5828
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