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A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet

We present path integral molecular dynamics (PIMD) calculations of an electron transfer from a heliophobic Cs [Formula: see text] dimer in its ([Formula: see text]) state, located on the surface of a He droplet, to a heliophilic, fully immersed C [Formula: see text] molecule. Supported by electron i...

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Autores principales: Castillo-García, Alvaro, Hauser, Andreas W., de Lara-Castells, María Pilar, Villarreal, Pablo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510490/
https://www.ncbi.nlm.nih.gov/pubmed/34641327
http://dx.doi.org/10.3390/molecules26195783
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author Castillo-García, Alvaro
Hauser, Andreas W.
de Lara-Castells, María Pilar
Villarreal, Pablo
author_facet Castillo-García, Alvaro
Hauser, Andreas W.
de Lara-Castells, María Pilar
Villarreal, Pablo
author_sort Castillo-García, Alvaro
collection PubMed
description We present path integral molecular dynamics (PIMD) calculations of an electron transfer from a heliophobic Cs [Formula: see text] dimer in its ([Formula: see text]) state, located on the surface of a He droplet, to a heliophilic, fully immersed C [Formula: see text] molecule. Supported by electron ionization mass spectroscopy measurements (Renzler et al., J. Chem. Phys. 2016, 145, 181101), this spatially quenched reaction was characterized as a harpoon-type or long-range electron transfer in a previous high-level ab initio study (de Lara-Castells et al., J. Phys. Chem. Lett. 2017, 8, 4284). To go beyond the static approach, classical and quantum PIMD simulations are performed at 2 K, slightly below the critical temperature for helium superfluidity (2.172 K). Calculations are executed in the NVT ensemble as well as the NVE ensemble to provide insights into real-time dynamics. A droplet size of 2090 atoms is assumed to study the impact of spatial hindrance on reactivity. By changing the number of beads in the PIMD simulations, the impact of quantization can be studied in greater detail and without an implicit assumption of superfluidity. We find that the reaction probability increases with higher levels of quantization. Our findings confirm earlier, static predictions of a rotational motion of the Cs [Formula: see text] dimer upon reacting with the fullerene, involving a substantial displacement of helium. However, it also raises the new question of whether the interacting species are driven out-of-equilibrium after impurity uptake, since reactivity is strongly quenched if a full thermal equilibration is assumed. More generally, our work points towards a novel mechanism for long-range electron transfer through an interplay between nuclear quantum delocalization within the confining medium and delocalized electronic dispersion forces acting on the two reactants.
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spelling pubmed-85104902021-10-13 A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet Castillo-García, Alvaro Hauser, Andreas W. de Lara-Castells, María Pilar Villarreal, Pablo Molecules Article We present path integral molecular dynamics (PIMD) calculations of an electron transfer from a heliophobic Cs [Formula: see text] dimer in its ([Formula: see text]) state, located on the surface of a He droplet, to a heliophilic, fully immersed C [Formula: see text] molecule. Supported by electron ionization mass spectroscopy measurements (Renzler et al., J. Chem. Phys. 2016, 145, 181101), this spatially quenched reaction was characterized as a harpoon-type or long-range electron transfer in a previous high-level ab initio study (de Lara-Castells et al., J. Phys. Chem. Lett. 2017, 8, 4284). To go beyond the static approach, classical and quantum PIMD simulations are performed at 2 K, slightly below the critical temperature for helium superfluidity (2.172 K). Calculations are executed in the NVT ensemble as well as the NVE ensemble to provide insights into real-time dynamics. A droplet size of 2090 atoms is assumed to study the impact of spatial hindrance on reactivity. By changing the number of beads in the PIMD simulations, the impact of quantization can be studied in greater detail and without an implicit assumption of superfluidity. We find that the reaction probability increases with higher levels of quantization. Our findings confirm earlier, static predictions of a rotational motion of the Cs [Formula: see text] dimer upon reacting with the fullerene, involving a substantial displacement of helium. However, it also raises the new question of whether the interacting species are driven out-of-equilibrium after impurity uptake, since reactivity is strongly quenched if a full thermal equilibration is assumed. More generally, our work points towards a novel mechanism for long-range electron transfer through an interplay between nuclear quantum delocalization within the confining medium and delocalized electronic dispersion forces acting on the two reactants. MDPI 2021-09-24 /pmc/articles/PMC8510490/ /pubmed/34641327 http://dx.doi.org/10.3390/molecules26195783 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Castillo-García, Alvaro
Hauser, Andreas W.
de Lara-Castells, María Pilar
Villarreal, Pablo
A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title_full A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title_fullStr A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title_full_unstemmed A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title_short A Path Integral Molecular Dynamics Simulation of a Harpoon-Type Redox Reaction in a Helium Nanodroplet
title_sort path integral molecular dynamics simulation of a harpoon-type redox reaction in a helium nanodroplet
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510490/
https://www.ncbi.nlm.nih.gov/pubmed/34641327
http://dx.doi.org/10.3390/molecules26195783
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