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Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers

The development of dye-sensitized solar cells, metalloenzyme photocatalysis or biological labeling heavily relies on the design of metal-based photosensitizes with directional excitations. Directionality is most often predicted by characterizing the excitations manually via canonical frontier orbita...

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Autores principales: Sánchez-Murcia, Pedro A., Nogueira, Juan J., Plasser, Felix, González, Leticia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7425079/
https://www.ncbi.nlm.nih.gov/pubmed/32864087
http://dx.doi.org/10.1039/d0sc01684e
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author Sánchez-Murcia, Pedro A.
Nogueira, Juan J.
Plasser, Felix
González, Leticia
author_facet Sánchez-Murcia, Pedro A.
Nogueira, Juan J.
Plasser, Felix
González, Leticia
author_sort Sánchez-Murcia, Pedro A.
collection PubMed
description The development of dye-sensitized solar cells, metalloenzyme photocatalysis or biological labeling heavily relies on the design of metal-based photosensitizes with directional excitations. Directionality is most often predicted by characterizing the excitations manually via canonical frontier orbitals. Although widespread, this traditional approach is, at the very least, cumbersome and subject to personal bias, as well as limited in many cases. Here, we demonstrate how two orbital-free photophysical descriptors allow an easy and straightforward quantification of the degree of directionality in electron excitations using chemical fragments. As proof of concept we scrutinize the effect of 22 chemical modifications on the archetype [Ru(bpy)(3)](2+) with a new descriptor coined “substituent-induced exciton localization” (SIEL), together with the concept of “excited-electron delocalization length” (EEDL(n)). Applied to quantum ensembles of initially excited singlet and the relaxed triplet metal-to-ligand charge-transfer states, the SIEL descriptor allows quantifying how much and whereto the exciton is promoted, as well as anticipating the effect of single modifications, e.g. on C-4 atoms of bpy units of [Ru(bpy)(3)](2+). The general applicability of SIEL and EEDL(n) is further established by rationalizing experimental trends through quantification of the directionality of the photoexcitation. We thus demonstrate that SIEL and EEDL descriptors can be synergistically employed to design improved photosensitizers with highly directional and localized electron-transfer transitions.
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spelling pubmed-74250792020-08-28 Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers Sánchez-Murcia, Pedro A. Nogueira, Juan J. Plasser, Felix González, Leticia Chem Sci Chemistry The development of dye-sensitized solar cells, metalloenzyme photocatalysis or biological labeling heavily relies on the design of metal-based photosensitizes with directional excitations. Directionality is most often predicted by characterizing the excitations manually via canonical frontier orbitals. Although widespread, this traditional approach is, at the very least, cumbersome and subject to personal bias, as well as limited in many cases. Here, we demonstrate how two orbital-free photophysical descriptors allow an easy and straightforward quantification of the degree of directionality in electron excitations using chemical fragments. As proof of concept we scrutinize the effect of 22 chemical modifications on the archetype [Ru(bpy)(3)](2+) with a new descriptor coined “substituent-induced exciton localization” (SIEL), together with the concept of “excited-electron delocalization length” (EEDL(n)). Applied to quantum ensembles of initially excited singlet and the relaxed triplet metal-to-ligand charge-transfer states, the SIEL descriptor allows quantifying how much and whereto the exciton is promoted, as well as anticipating the effect of single modifications, e.g. on C-4 atoms of bpy units of [Ru(bpy)(3)](2+). The general applicability of SIEL and EEDL(n) is further established by rationalizing experimental trends through quantification of the directionality of the photoexcitation. We thus demonstrate that SIEL and EEDL descriptors can be synergistically employed to design improved photosensitizers with highly directional and localized electron-transfer transitions. Royal Society of Chemistry 2020-05-15 /pmc/articles/PMC7425079/ /pubmed/32864087 http://dx.doi.org/10.1039/d0sc01684e Text en This journal is © The Royal Society of Chemistry 2020 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Sánchez-Murcia, Pedro A.
Nogueira, Juan J.
Plasser, Felix
González, Leticia
Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title_full Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title_fullStr Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title_full_unstemmed Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title_short Orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
title_sort orbital-free photophysical descriptors to predict directional excitations in metal-based photosensitizers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7425079/
https://www.ncbi.nlm.nih.gov/pubmed/32864087
http://dx.doi.org/10.1039/d0sc01684e
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