Intermolecular interactions in the condensed phase: Evaluation of semi-empirical quantum mechanical methods

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Standard

Intermolecular interactions in the condensed phase : Evaluation of semi-empirical quantum mechanical methods. / Christensen, Anders S.; Kromann, Jimmy Charnley; Jensen, Jan Halborg; Cui, Qiang.

I: Journal of Chemical Physics, Bind 147, Nr. 16, 161704, 2017.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Christensen, AS, Kromann, JC, Jensen, JH & Cui, Q 2017, 'Intermolecular interactions in the condensed phase: Evaluation of semi-empirical quantum mechanical methods', Journal of Chemical Physics, bind 147, nr. 16, 161704. https://doi.org/10.1063/1.4985605

APA

Christensen, A. S., Kromann, J. C., Jensen, J. H., & Cui, Q. (2017). Intermolecular interactions in the condensed phase: Evaluation of semi-empirical quantum mechanical methods. Journal of Chemical Physics, 147(16), [161704]. https://doi.org/10.1063/1.4985605

Vancouver

Christensen AS, Kromann JC, Jensen JH, Cui Q. Intermolecular interactions in the condensed phase: Evaluation of semi-empirical quantum mechanical methods. Journal of Chemical Physics. 2017;147(16). 161704. https://doi.org/10.1063/1.4985605

Author

Christensen, Anders S. ; Kromann, Jimmy Charnley ; Jensen, Jan Halborg ; Cui, Qiang. / Intermolecular interactions in the condensed phase : Evaluation of semi-empirical quantum mechanical methods. I: Journal of Chemical Physics. 2017 ; Bind 147, Nr. 16.

Bibtex

@article{9829cb44348b4cce8006582a8f132069,
title = "Intermolecular interactions in the condensed phase: Evaluation of semi-empirical quantum mechanical methods",
abstract = "To facilitate further development of approximate quantum mechanical methods for condensed phase applications, we present a new benchmark dataset of intermolecular interaction energies in the solution phase for a set of 15 dimers, each containing one charged monomer. The reference interaction energy in solution is computed via a thermodynamic cycle that integrates dimer binding energy in the gas phase at the coupled cluster level and solute-solvent interaction with density functional theory; the estimated uncertainty of such calculated interaction energy is ±1.5 kcal/mol. The dataset is used to benchmark the performance of a set of semi-empirical quantum mechanical (SQM) methods that include DFTB3-D3, DFTB3/CPE-D3, OM2-D3, PM6-D3, PM6-D3H+, and PM7 as well as the HF-3c method. We find that while all tested SQM methods tend to underestimate binding energies in the gas phase with a root-mean-squared error (RMSE) of 2-5 kcal/mol, they overestimate binding energies in the solution phase with an RMSE of 3-4 kcal/mol, with the exception of DFTB3/CPE-D3 and OM2-D3, for which the systematic deviation is less pronounced. In addition, we find that HF-3c systematically overestimates binding energies in both gas and solution phases. As most approximate QM methods are parametrized and evaluated using data measured or calculated in the gas phase, the dataset represents an important first step toward calibrating QM based methods for application in the condensed phase where polarization and exchange repulsion need to be treated in a balanced fashion.",
author = "Christensen, {Anders S.} and Kromann, {Jimmy Charnley} and Jensen, {Jan Halborg} and Qiang Cui",
year = "2017",
doi = "10.1063/1.4985605",
language = "English",
volume = "147",
journal = "The Journal of Chemical Physics",
issn = "0021-9606",
publisher = "American Institute of Physics",
number = "16",

}

RIS

TY - JOUR

T1 - Intermolecular interactions in the condensed phase

T2 - Evaluation of semi-empirical quantum mechanical methods

AU - Christensen, Anders S.

AU - Kromann, Jimmy Charnley

AU - Jensen, Jan Halborg

AU - Cui, Qiang

PY - 2017

Y1 - 2017

N2 - To facilitate further development of approximate quantum mechanical methods for condensed phase applications, we present a new benchmark dataset of intermolecular interaction energies in the solution phase for a set of 15 dimers, each containing one charged monomer. The reference interaction energy in solution is computed via a thermodynamic cycle that integrates dimer binding energy in the gas phase at the coupled cluster level and solute-solvent interaction with density functional theory; the estimated uncertainty of such calculated interaction energy is ±1.5 kcal/mol. The dataset is used to benchmark the performance of a set of semi-empirical quantum mechanical (SQM) methods that include DFTB3-D3, DFTB3/CPE-D3, OM2-D3, PM6-D3, PM6-D3H+, and PM7 as well as the HF-3c method. We find that while all tested SQM methods tend to underestimate binding energies in the gas phase with a root-mean-squared error (RMSE) of 2-5 kcal/mol, they overestimate binding energies in the solution phase with an RMSE of 3-4 kcal/mol, with the exception of DFTB3/CPE-D3 and OM2-D3, for which the systematic deviation is less pronounced. In addition, we find that HF-3c systematically overestimates binding energies in both gas and solution phases. As most approximate QM methods are parametrized and evaluated using data measured or calculated in the gas phase, the dataset represents an important first step toward calibrating QM based methods for application in the condensed phase where polarization and exchange repulsion need to be treated in a balanced fashion.

AB - To facilitate further development of approximate quantum mechanical methods for condensed phase applications, we present a new benchmark dataset of intermolecular interaction energies in the solution phase for a set of 15 dimers, each containing one charged monomer. The reference interaction energy in solution is computed via a thermodynamic cycle that integrates dimer binding energy in the gas phase at the coupled cluster level and solute-solvent interaction with density functional theory; the estimated uncertainty of such calculated interaction energy is ±1.5 kcal/mol. The dataset is used to benchmark the performance of a set of semi-empirical quantum mechanical (SQM) methods that include DFTB3-D3, DFTB3/CPE-D3, OM2-D3, PM6-D3, PM6-D3H+, and PM7 as well as the HF-3c method. We find that while all tested SQM methods tend to underestimate binding energies in the gas phase with a root-mean-squared error (RMSE) of 2-5 kcal/mol, they overestimate binding energies in the solution phase with an RMSE of 3-4 kcal/mol, with the exception of DFTB3/CPE-D3 and OM2-D3, for which the systematic deviation is less pronounced. In addition, we find that HF-3c systematically overestimates binding energies in both gas and solution phases. As most approximate QM methods are parametrized and evaluated using data measured or calculated in the gas phase, the dataset represents an important first step toward calibrating QM based methods for application in the condensed phase where polarization and exchange repulsion need to be treated in a balanced fashion.

U2 - 10.1063/1.4985605

DO - 10.1063/1.4985605

M3 - Journal article

C2 - 29096452

AN - SCOPUS:85020554665

VL - 147

JO - The Journal of Chemical Physics

JF - The Journal of Chemical Physics

SN - 0021-9606

IS - 16

M1 - 161704

ER -

ID: 180787153