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Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands

[Image: see text] Tropolone, a 15-atom cyclic molecule, has received much interest both experimentally and theoretically due to its H-transfer tunneling dynamics. An accurate theoretical description is challenging owing to the need to develop a high-level potential energy surface (PES) and then to s...

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Autores principales: Nandi, Apurba, Laude, Gabriel, Khire, Subodh S., Gurav, Nalini D., Qu, Chen, Conte, Riccardo, Yu, Qi, Li, Shuhang, Houston, Paul L., Gadre, Shridhar R., Richardson, Jeremy O., Evangelista, Francesco A., Bowman, Joel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161208/
https://www.ncbi.nlm.nih.gov/pubmed/37078852
http://dx.doi.org/10.1021/jacs.3c00769
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author Nandi, Apurba
Laude, Gabriel
Khire, Subodh S.
Gurav, Nalini D.
Qu, Chen
Conte, Riccardo
Yu, Qi
Li, Shuhang
Houston, Paul L.
Gadre, Shridhar R.
Richardson, Jeremy O.
Evangelista, Francesco A.
Bowman, Joel M.
author_facet Nandi, Apurba
Laude, Gabriel
Khire, Subodh S.
Gurav, Nalini D.
Qu, Chen
Conte, Riccardo
Yu, Qi
Li, Shuhang
Houston, Paul L.
Gadre, Shridhar R.
Richardson, Jeremy O.
Evangelista, Francesco A.
Bowman, Joel M.
author_sort Nandi, Apurba
collection PubMed
description [Image: see text] Tropolone, a 15-atom cyclic molecule, has received much interest both experimentally and theoretically due to its H-transfer tunneling dynamics. An accurate theoretical description is challenging owing to the need to develop a high-level potential energy surface (PES) and then to simulate quantum-mechanical tunneling on this PES in full dimensionality. Here, we tackle both aspects of this challenge and make detailed comparisons with experiments for numerous isotopomers. The PES, of near CCSD(T)-quality, is obtained using a Δ-machine learning approach starting from a pre-existing low-level DFT PES and corrected by a small number of approximate CCSD(T) energies obtained using the fragmentation-based molecular tailoring approach. The resulting PES is benchmarked against DF-FNO-CCSD(T) and CCSD(T)-F12 calculations. Ring-polymer instanton calculations of the splittings, obtained with the Δ-corrected PES are in good agreement with previously reported experiments and a significant improvement over those obtained using the low-level DFT PES. The instanton path includes heavy-atom tunneling effects and cuts the corner, thereby avoiding passing through the conventional saddle-point transition state. This is in contradistinction with typical approaches based on the minimum-energy reaction path. Finally, the subtle changes in the splittings for some of the heavy-atom isotopomers seen experimentally are reproduced and explained.
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spelling pubmed-101612082023-05-06 Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands Nandi, Apurba Laude, Gabriel Khire, Subodh S. Gurav, Nalini D. Qu, Chen Conte, Riccardo Yu, Qi Li, Shuhang Houston, Paul L. Gadre, Shridhar R. Richardson, Jeremy O. Evangelista, Francesco A. Bowman, Joel M. J Am Chem Soc [Image: see text] Tropolone, a 15-atom cyclic molecule, has received much interest both experimentally and theoretically due to its H-transfer tunneling dynamics. An accurate theoretical description is challenging owing to the need to develop a high-level potential energy surface (PES) and then to simulate quantum-mechanical tunneling on this PES in full dimensionality. Here, we tackle both aspects of this challenge and make detailed comparisons with experiments for numerous isotopomers. The PES, of near CCSD(T)-quality, is obtained using a Δ-machine learning approach starting from a pre-existing low-level DFT PES and corrected by a small number of approximate CCSD(T) energies obtained using the fragmentation-based molecular tailoring approach. The resulting PES is benchmarked against DF-FNO-CCSD(T) and CCSD(T)-F12 calculations. Ring-polymer instanton calculations of the splittings, obtained with the Δ-corrected PES are in good agreement with previously reported experiments and a significant improvement over those obtained using the low-level DFT PES. The instanton path includes heavy-atom tunneling effects and cuts the corner, thereby avoiding passing through the conventional saddle-point transition state. This is in contradistinction with typical approaches based on the minimum-energy reaction path. Finally, the subtle changes in the splittings for some of the heavy-atom isotopomers seen experimentally are reproduced and explained. American Chemical Society 2023-04-20 /pmc/articles/PMC10161208/ /pubmed/37078852 http://dx.doi.org/10.1021/jacs.3c00769 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Nandi, Apurba
Laude, Gabriel
Khire, Subodh S.
Gurav, Nalini D.
Qu, Chen
Conte, Riccardo
Yu, Qi
Li, Shuhang
Houston, Paul L.
Gadre, Shridhar R.
Richardson, Jeremy O.
Evangelista, Francesco A.
Bowman, Joel M.
Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title_full Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title_fullStr Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title_full_unstemmed Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title_short Ring-Polymer Instanton Tunneling Splittings of Tropolone and Isotopomers using a Δ-Machine Learned CCSD(T) Potential: Theory and Experiment Shake Hands
title_sort ring-polymer instanton tunneling splittings of tropolone and isotopomers using a δ-machine learned ccsd(t) potential: theory and experiment shake hands
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161208/
https://www.ncbi.nlm.nih.gov/pubmed/37078852
http://dx.doi.org/10.1021/jacs.3c00769
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