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Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems
[Image: see text] Electron-transfer reactions are fundamental to many practical devices, but because of their complexity, it is often very difficult to interpret measurements done on the complete device. Therefore, studies of model systems are crucial. Here the rates of charge separation and recombi...
Autores principales: | , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2011
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119959/ https://www.ncbi.nlm.nih.gov/pubmed/21595470 http://dx.doi.org/10.1021/ja2019367 |
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author | Kahnt, Axel Kärnbratt, Joakim Esdaile, Louisa J. Hutin, Marie Sawada, Katsutoshi Anderson, Harry L. Albinsson, Bo |
author_facet | Kahnt, Axel Kärnbratt, Joakim Esdaile, Louisa J. Hutin, Marie Sawada, Katsutoshi Anderson, Harry L. Albinsson, Bo |
author_sort | Kahnt, Axel |
collection | PubMed |
description | [Image: see text] Electron-transfer reactions are fundamental to many practical devices, but because of their complexity, it is often very difficult to interpret measurements done on the complete device. Therefore, studies of model systems are crucial. Here the rates of charge separation and recombination in donor–acceptor systems consisting of a series of butadiyne-linked porphyrin oligomers (n = 1–4, 6) appended to C(60) were investigated. At room temperature, excitation of the porphyrin oligomer led to fast (5–25 ps) electron transfer to C(60) followed by slower (200–650 ps) recombination. The temperature dependence of the charge-separation reaction revealed a complex process for the longer oligomers, in which a combination of (i) direct charge separation and (ii) migration of excitation energy along the oligomer followed by charge separation explained the observed fluorescence decay kinetics. The energy migration is controlled by the temperature-dependent conformational dynamics of the longer oligomers and thereby limits the quantum yield for charge separation. Charge recombination was also studied as a function of temperature through measurements of femtosecond transient absorption. The temperature dependence of the electron-transfer reactions could be successfully modeled using the Marcus equation through optimization of the electronic coupling (V) and the reorganization energy (λ). For the charge-separation rate, all of the donor–acceptor systems could be successfully described by a common electronic coupling, supporting a model in which energy migration is followed by charge separation. In this respect, the C(60)-appended porphyrin oligomers are suitable model systems for practical charge-separation devices such as bulk-heterojunction solar cells, where conformational disorder strongly influences the electron-transfer reactions and performance of the device. |
format | Online Article Text |
id | pubmed-3119959 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2011 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-31199592011-06-22 Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems Kahnt, Axel Kärnbratt, Joakim Esdaile, Louisa J. Hutin, Marie Sawada, Katsutoshi Anderson, Harry L. Albinsson, Bo J Am Chem Soc [Image: see text] Electron-transfer reactions are fundamental to many practical devices, but because of their complexity, it is often very difficult to interpret measurements done on the complete device. Therefore, studies of model systems are crucial. Here the rates of charge separation and recombination in donor–acceptor systems consisting of a series of butadiyne-linked porphyrin oligomers (n = 1–4, 6) appended to C(60) were investigated. At room temperature, excitation of the porphyrin oligomer led to fast (5–25 ps) electron transfer to C(60) followed by slower (200–650 ps) recombination. The temperature dependence of the charge-separation reaction revealed a complex process for the longer oligomers, in which a combination of (i) direct charge separation and (ii) migration of excitation energy along the oligomer followed by charge separation explained the observed fluorescence decay kinetics. The energy migration is controlled by the temperature-dependent conformational dynamics of the longer oligomers and thereby limits the quantum yield for charge separation. Charge recombination was also studied as a function of temperature through measurements of femtosecond transient absorption. The temperature dependence of the electron-transfer reactions could be successfully modeled using the Marcus equation through optimization of the electronic coupling (V) and the reorganization energy (λ). For the charge-separation rate, all of the donor–acceptor systems could be successfully described by a common electronic coupling, supporting a model in which energy migration is followed by charge separation. In this respect, the C(60)-appended porphyrin oligomers are suitable model systems for practical charge-separation devices such as bulk-heterojunction solar cells, where conformational disorder strongly influences the electron-transfer reactions and performance of the device. American Chemical Society 2011-05-19 2011-06-29 /pmc/articles/PMC3119959/ /pubmed/21595470 http://dx.doi.org/10.1021/ja2019367 Text en Copyright © 2011 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org. |
spellingShingle | Kahnt, Axel Kärnbratt, Joakim Esdaile, Louisa J. Hutin, Marie Sawada, Katsutoshi Anderson, Harry L. Albinsson, Bo Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title | Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title_full | Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title_fullStr | Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title_full_unstemmed | Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title_short | Temperature Dependence of Charge Separation and Recombination in Porphyrin Oligomer–Fullerene Donor–Acceptor Systems |
title_sort | temperature dependence of charge separation and recombination in porphyrin oligomer–fullerene donor–acceptor systems |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3119959/ https://www.ncbi.nlm.nih.gov/pubmed/21595470 http://dx.doi.org/10.1021/ja2019367 |
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