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Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions

An accurate treatment of the long-range electron correlation energy, including van der Waals (vdW) or dispersion interactions, is essential for describing the structure, dynamics, and function of a wide variety of systems. Among the most accurate models for including dispersion into density function...

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Autores principales: Blood-Forsythe, Martin A., Markovich, Thomas, DiStasio, Robert A., Car, Roberto, Aspuru-Guzik, Alán
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5964951/
https://www.ncbi.nlm.nih.gov/pubmed/29899903
http://dx.doi.org/10.1039/c5sc03234b
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author Blood-Forsythe, Martin A.
Markovich, Thomas
DiStasio, Robert A.
Car, Roberto
Aspuru-Guzik, Alán
author_facet Blood-Forsythe, Martin A.
Markovich, Thomas
DiStasio, Robert A.
Car, Roberto
Aspuru-Guzik, Alán
author_sort Blood-Forsythe, Martin A.
collection PubMed
description An accurate treatment of the long-range electron correlation energy, including van der Waals (vdW) or dispersion interactions, is essential for describing the structure, dynamics, and function of a wide variety of systems. Among the most accurate models for including dispersion into density functional theory (DFT) is the range-separated many-body dispersion (MBD) method [A. Ambrosetti et al., J. Chem. Phys., 2014, 140, 18A508], in which the correlation energy is modeled at short-range by a semi-local density functional and at long-range by a model system of coupled quantum harmonic oscillators. In this work, we develop analytical gradients of the MBD energy with respect to nuclear coordinates, including all implicit coordinate dependencies arising from the partitioning of the charge density into Hirshfeld effective volumes. To demonstrate the efficiency and accuracy of these MBD gradients for geometry optimizations of systems with intermolecular and intramolecular interactions, we optimized conformers of the benzene dimer and isolated small peptides with aromatic side-chains. We find excellent agreement with the wavefunction theory reference geometries of these systems (at a fraction of the computational cost) and find that MBD consistently outperforms the popular TS and D3(BJ) dispersion corrections. To demonstrate the performance of the MBD model on a larger system with supramolecular interactions, we optimized the C(60)@C(60)H(28) buckyball catcher host–guest complex. In our analysis, we also find that neglecting the implicit nuclear coordinate dependence arising from the charge density partitioning, as has been done in prior numerical treatments, leads to an unacceptable error in the MBD forces, with relative errors of ∼20% (on average) that can extend well beyond 100%.
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spelling pubmed-59649512018-06-13 Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions Blood-Forsythe, Martin A. Markovich, Thomas DiStasio, Robert A. Car, Roberto Aspuru-Guzik, Alán Chem Sci Chemistry An accurate treatment of the long-range electron correlation energy, including van der Waals (vdW) or dispersion interactions, is essential for describing the structure, dynamics, and function of a wide variety of systems. Among the most accurate models for including dispersion into density functional theory (DFT) is the range-separated many-body dispersion (MBD) method [A. Ambrosetti et al., J. Chem. Phys., 2014, 140, 18A508], in which the correlation energy is modeled at short-range by a semi-local density functional and at long-range by a model system of coupled quantum harmonic oscillators. In this work, we develop analytical gradients of the MBD energy with respect to nuclear coordinates, including all implicit coordinate dependencies arising from the partitioning of the charge density into Hirshfeld effective volumes. To demonstrate the efficiency and accuracy of these MBD gradients for geometry optimizations of systems with intermolecular and intramolecular interactions, we optimized conformers of the benzene dimer and isolated small peptides with aromatic side-chains. We find excellent agreement with the wavefunction theory reference geometries of these systems (at a fraction of the computational cost) and find that MBD consistently outperforms the popular TS and D3(BJ) dispersion corrections. To demonstrate the performance of the MBD model on a larger system with supramolecular interactions, we optimized the C(60)@C(60)H(28) buckyball catcher host–guest complex. In our analysis, we also find that neglecting the implicit nuclear coordinate dependence arising from the charge density partitioning, as has been done in prior numerical treatments, leads to an unacceptable error in the MBD forces, with relative errors of ∼20% (on average) that can extend well beyond 100%. Royal Society of Chemistry 2016-03-01 2015-10-27 /pmc/articles/PMC5964951/ /pubmed/29899903 http://dx.doi.org/10.1039/c5sc03234b Text en This journal is © The Royal Society of Chemistry 2016 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Blood-Forsythe, Martin A.
Markovich, Thomas
DiStasio, Robert A.
Car, Roberto
Aspuru-Guzik, Alán
Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title_full Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title_fullStr Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title_full_unstemmed Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title_short Analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
title_sort analytical nuclear gradients for the range-separated many-body dispersion model of noncovalent interactions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5964951/
https://www.ncbi.nlm.nih.gov/pubmed/29899903
http://dx.doi.org/10.1039/c5sc03234b
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