Strong-field effects in the photo-induced dissociation of the hydrogen molecule on a silver nanoshell

Fuente: arXiv
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Hauptverfasser: Koval, Natalia E., Juaristi, J. Iñaki, Alducin, Maite
Format: Preprint
Veröffentlicht: 2024
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author Koval, Natalia E.
Juaristi, J. Iñaki
Alducin, Maite
author_facet Koval, Natalia E.
Juaristi, J. Iñaki
Alducin, Maite
contents Plasmonic catalysis is a rapidly growing field of research, both from experimental and computational perspectives. Experimental observations demonstrate an enhanced dissociation rate for molecules in the presence of plasmonic nanoparticles under low-intensity visible light. The hot-carrier transfer from the nanoparticle to the molecule is often claimed as the mechanism for dissociation. However, the charge transfer time scale is on the order of few femtoseconds and cannot be resolved experimentally. In this situation, ab initio non-adiabatic calculations can provide a solution. Such simulations, however, have their own limitations related to the computational cost. To accelerate plasmonic catalysis simulations, many researchers resort to applying high-intensity external fields to nanoparticle-molecule systems. Here, we show why such an approach can be problematic and emphasize the importance of considering strong-field effects when interpreting the results of time-dependent density functional theory simulations of plasmonic catalysis. By studying the hydrogen molecule dissociation on the surface of a silver nanoshell and analyzing the electron transfer at different field frequencies and high intensities, we demonstrate that the molecule dissociates due to multiphoton absorption and subsequent ionization.
format Preprint
id arxiv_https___arxiv_org_abs_2406_03850
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Strong-field effects in the photo-induced dissociation of the hydrogen molecule on a silver nanoshell
Koval, Natalia E.
Juaristi, J. Iñaki
Alducin, Maite
Chemical Physics
Atomic and Molecular Clusters
Computational Physics
Plasmonic catalysis is a rapidly growing field of research, both from experimental and computational perspectives. Experimental observations demonstrate an enhanced dissociation rate for molecules in the presence of plasmonic nanoparticles under low-intensity visible light. The hot-carrier transfer from the nanoparticle to the molecule is often claimed as the mechanism for dissociation. However, the charge transfer time scale is on the order of few femtoseconds and cannot be resolved experimentally. In this situation, ab initio non-adiabatic calculations can provide a solution. Such simulations, however, have their own limitations related to the computational cost. To accelerate plasmonic catalysis simulations, many researchers resort to applying high-intensity external fields to nanoparticle-molecule systems. Here, we show why such an approach can be problematic and emphasize the importance of considering strong-field effects when interpreting the results of time-dependent density functional theory simulations of plasmonic catalysis. By studying the hydrogen molecule dissociation on the surface of a silver nanoshell and analyzing the electron transfer at different field frequencies and high intensities, we demonstrate that the molecule dissociates due to multiphoton absorption and subsequent ionization.
title Strong-field effects in the photo-induced dissociation of the hydrogen molecule on a silver nanoshell
topic Chemical Physics
Atomic and Molecular Clusters
Computational Physics
url https://arxiv.org/abs/2406.03850