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Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry

Energy transfer in terms of excitation or charge is one of the most basic processes in nature, and understanding and controlling them is one of the major challenges of modern quantum chemistry. In this work, we highlight that these processes as well as other chemical properties can be drastically al...

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Autores principales: Schäfer, Christian, Ruggenthaler, Michael, Appel, Heiko, Rubio, Angel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6421448/
https://www.ncbi.nlm.nih.gov/pubmed/30733295
http://dx.doi.org/10.1073/pnas.1814178116
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author Schäfer, Christian
Ruggenthaler, Michael
Appel, Heiko
Rubio, Angel
author_facet Schäfer, Christian
Ruggenthaler, Michael
Appel, Heiko
Rubio, Angel
author_sort Schäfer, Christian
collection PubMed
description Energy transfer in terms of excitation or charge is one of the most basic processes in nature, and understanding and controlling them is one of the major challenges of modern quantum chemistry. In this work, we highlight that these processes as well as other chemical properties can be drastically altered by modifying the vacuum fluctuations of the electromagnetic field in a cavity. By using a real-space formulation from first principles that keeps all of the electronic degrees of freedom in the model explicit and simulates changes in the environment by an effective photon mode, we can easily connect to well-known quantum-chemical results such as Dexter charge-transfer and Förster excitation-transfer reactions, taking into account the often-disregarded Coulomb and self-polarization interaction. We find that the photonic degrees of freedom introduce extra electron–electron correlations over large distances and that the coupling to the cavity can drastically alter the characteristic charge-transfer behavior and even selectively improve the efficiency. For excitation transfer, we find that the cavity renders the transfer more efficient, essentially distance-independent, and further different configurations of highest efficiency depending on the coherence times. For strong decoherence (short coherence times), the cavity frequency should be in between the isolated excitations of the donor and acceptor, while for weak decoherence (long coherence times), the cavity should enhance a mode that is close to resonance with either donor or acceptor. Our results highlight that changing the photonic environment can redefine chemical processes, rendering polaritonic chemistry a promising approach toward the control of chemical reactions.
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spelling pubmed-64214482019-03-19 Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry Schäfer, Christian Ruggenthaler, Michael Appel, Heiko Rubio, Angel Proc Natl Acad Sci U S A PNAS Plus Energy transfer in terms of excitation or charge is one of the most basic processes in nature, and understanding and controlling them is one of the major challenges of modern quantum chemistry. In this work, we highlight that these processes as well as other chemical properties can be drastically altered by modifying the vacuum fluctuations of the electromagnetic field in a cavity. By using a real-space formulation from first principles that keeps all of the electronic degrees of freedom in the model explicit and simulates changes in the environment by an effective photon mode, we can easily connect to well-known quantum-chemical results such as Dexter charge-transfer and Förster excitation-transfer reactions, taking into account the often-disregarded Coulomb and self-polarization interaction. We find that the photonic degrees of freedom introduce extra electron–electron correlations over large distances and that the coupling to the cavity can drastically alter the characteristic charge-transfer behavior and even selectively improve the efficiency. For excitation transfer, we find that the cavity renders the transfer more efficient, essentially distance-independent, and further different configurations of highest efficiency depending on the coherence times. For strong decoherence (short coherence times), the cavity frequency should be in between the isolated excitations of the donor and acceptor, while for weak decoherence (long coherence times), the cavity should enhance a mode that is close to resonance with either donor or acceptor. Our results highlight that changing the photonic environment can redefine chemical processes, rendering polaritonic chemistry a promising approach toward the control of chemical reactions. National Academy of Sciences 2019-03-12 2019-02-07 /pmc/articles/PMC6421448/ /pubmed/30733295 http://dx.doi.org/10.1073/pnas.1814178116 Text en Copyright © 2019 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Schäfer, Christian
Ruggenthaler, Michael
Appel, Heiko
Rubio, Angel
Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title_full Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title_fullStr Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title_full_unstemmed Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title_short Modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
title_sort modification of excitation and charge transfer in cavity quantum-electrodynamical chemistry
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6421448/
https://www.ncbi.nlm.nih.gov/pubmed/30733295
http://dx.doi.org/10.1073/pnas.1814178116
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