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Molecular dynamics study of plasmon-mediated chemical transformations

Heterogeneous catalysis of adsorbates on metallic surfaces mediated by plasmons has potential high photoelectric conversion efficiency and controllable reaction selectivity. Theoretical modeling of dynamical reaction processes enables in-depth analyses complementing experimental investigations. Espe...

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Detalles Bibliográficos
Autores principales: Wu, Xiaoyan, van der Heide, Tammo, Wen, Shizheng, Frauenheim, Thomas, Tretiak, Sergei, Yam, ChiYung, Zhang, Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10171182/
https://www.ncbi.nlm.nih.gov/pubmed/37181766
http://dx.doi.org/10.1039/d2sc06648c
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author Wu, Xiaoyan
van der Heide, Tammo
Wen, Shizheng
Frauenheim, Thomas
Tretiak, Sergei
Yam, ChiYung
Zhang, Yu
author_facet Wu, Xiaoyan
van der Heide, Tammo
Wen, Shizheng
Frauenheim, Thomas
Tretiak, Sergei
Yam, ChiYung
Zhang, Yu
author_sort Wu, Xiaoyan
collection PubMed
description Heterogeneous catalysis of adsorbates on metallic surfaces mediated by plasmons has potential high photoelectric conversion efficiency and controllable reaction selectivity. Theoretical modeling of dynamical reaction processes enables in-depth analyses complementing experimental investigations. Especially for plasmon-mediated chemical transformations, light absorption, photoelectric conversion, electron–electron scattering, and electron–phonon coupling occur simultaneously on different timescales, making it very challenging to delineate the complex interplay of different factors. In this work, a trajectory surface hopping non-adiabatic molecular dynamics method is used to investigate the dynamics of plasmon excitation in an Au(20)–CO system, including hot carrier generation, plasmon energy relaxation, and CO activation induced by electron-vibration coupling. The electronic properties indicate that when Au(20)–CO is excited, a partial charge transfer takes place from Au(20) to CO. On the other hand, dynamical simulations show that hot carriers generated after plasmon excitation transfer back and forth between Au(20) and CO. Meanwhile, the C–O stretching mode is activated due to non-adiabatic couplings. The efficiency of plasmon-mediated transformations (∼40%) is obtained based on the ensemble average of these quantities. Our simulations provide important dynamical and atomistic insights into plasmon-mediated chemical transformations from the perspective of non-adiabatic simulations.
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spelling pubmed-101711822023-05-11 Molecular dynamics study of plasmon-mediated chemical transformations Wu, Xiaoyan van der Heide, Tammo Wen, Shizheng Frauenheim, Thomas Tretiak, Sergei Yam, ChiYung Zhang, Yu Chem Sci Chemistry Heterogeneous catalysis of adsorbates on metallic surfaces mediated by plasmons has potential high photoelectric conversion efficiency and controllable reaction selectivity. Theoretical modeling of dynamical reaction processes enables in-depth analyses complementing experimental investigations. Especially for plasmon-mediated chemical transformations, light absorption, photoelectric conversion, electron–electron scattering, and electron–phonon coupling occur simultaneously on different timescales, making it very challenging to delineate the complex interplay of different factors. In this work, a trajectory surface hopping non-adiabatic molecular dynamics method is used to investigate the dynamics of plasmon excitation in an Au(20)–CO system, including hot carrier generation, plasmon energy relaxation, and CO activation induced by electron-vibration coupling. The electronic properties indicate that when Au(20)–CO is excited, a partial charge transfer takes place from Au(20) to CO. On the other hand, dynamical simulations show that hot carriers generated after plasmon excitation transfer back and forth between Au(20) and CO. Meanwhile, the C–O stretching mode is activated due to non-adiabatic couplings. The efficiency of plasmon-mediated transformations (∼40%) is obtained based on the ensemble average of these quantities. Our simulations provide important dynamical and atomistic insights into plasmon-mediated chemical transformations from the perspective of non-adiabatic simulations. The Royal Society of Chemistry 2023-04-08 /pmc/articles/PMC10171182/ /pubmed/37181766 http://dx.doi.org/10.1039/d2sc06648c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wu, Xiaoyan
van der Heide, Tammo
Wen, Shizheng
Frauenheim, Thomas
Tretiak, Sergei
Yam, ChiYung
Zhang, Yu
Molecular dynamics study of plasmon-mediated chemical transformations
title Molecular dynamics study of plasmon-mediated chemical transformations
title_full Molecular dynamics study of plasmon-mediated chemical transformations
title_fullStr Molecular dynamics study of plasmon-mediated chemical transformations
title_full_unstemmed Molecular dynamics study of plasmon-mediated chemical transformations
title_short Molecular dynamics study of plasmon-mediated chemical transformations
title_sort molecular dynamics study of plasmon-mediated chemical transformations
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10171182/
https://www.ncbi.nlm.nih.gov/pubmed/37181766
http://dx.doi.org/10.1039/d2sc06648c
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