On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne

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On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne. / Faber, Rasmus; Sauer, Stephan P. A.

In: Physical Chemistry Chemical Physics, Vol. 14, No. 47, 2012, p. 16440-16447.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Faber, R & Sauer, SPA 2012, 'On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne', Physical Chemistry Chemical Physics, vol. 14, no. 47, pp. 16440-16447. https://doi.org/10.1039/C2CP42198D

APA

Faber, R., & Sauer, S. P. A. (2012). On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne. Physical Chemistry Chemical Physics, 14(47), 16440-16447. https://doi.org/10.1039/C2CP42198D

Vancouver

Faber R, Sauer SPA. On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne. Physical Chemistry Chemical Physics. 2012;14(47):16440-16447. https://doi.org/10.1039/C2CP42198D

Author

Faber, Rasmus ; Sauer, Stephan P. A. / On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne. In: Physical Chemistry Chemical Physics. 2012 ; Vol. 14, No. 47. pp. 16440-16447.

Bibtex

@article{ba5aac2c44314680b66def862f25e5a3,
title = "On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne",
abstract = "The vicinal indirect nuclear spin-spin coupling constant (SSCC) between the two ¿uorine atoms in di¿uoroethyne has been reinvestigated. This coupling has previously proved dif¿cult to calculate accurately. In this study we have therefore systematically investigated the dependence of this coupling on the choice of one-electron basis set, the choice of correlated wave function method and the inclusion of zero-point vibrational and temperature corrections. All terms of the SSCC have been evaluated at the second-order polarization propagator, SOPPA and SOPPA(CCSD), and coupled cluster singles and doubles (CCSD) levels of theory and for the most correlation dependent term, the paramagnetic spin-orbit contribution (PSO), also at the very accurate CC3 level. We ¿nd that in order to get results that are well converged with respect to the basis set, one needs to use special SSCC optimized basis sets of at least quadruple zeta quality and with added diffuse functions. Furthermore, the PSO term is not yet converged at the CCSD level as shown by the CC3 calculations. Finally, it is shown that vibrational effects are very important, as they are in this case of the same order of magnitude as the equilibrium geometry value of the coupling constant. Only by using a converged basis set and including both vibrational and higher order correlation effects can we obtain agreement with the experimental value for this coupling.",
keywords = "Faculty of Science, NMR, spin-spin coupling constants, difluoroethyne, vibrational correction, quantum chemistry, Computational Chemistry",
author = "Rasmus Faber and Sauer, {Stephan P. A.}",
year = "2012",
doi = "10.1039/C2CP42198D",
language = "English",
volume = "14",
pages = "16440--16447",
journal = "Physical Chemistry Chemical Physics",
issn = "1463-9076",
publisher = "Royal Society of Chemistry",
number = "47",

}

RIS

TY - JOUR

T1 - On the discrepancy between theory and experiment for the F-F spin-spin coupling constant of difluoethyne

AU - Faber, Rasmus

AU - Sauer, Stephan P. A.

PY - 2012

Y1 - 2012

N2 - The vicinal indirect nuclear spin-spin coupling constant (SSCC) between the two ¿uorine atoms in di¿uoroethyne has been reinvestigated. This coupling has previously proved dif¿cult to calculate accurately. In this study we have therefore systematically investigated the dependence of this coupling on the choice of one-electron basis set, the choice of correlated wave function method and the inclusion of zero-point vibrational and temperature corrections. All terms of the SSCC have been evaluated at the second-order polarization propagator, SOPPA and SOPPA(CCSD), and coupled cluster singles and doubles (CCSD) levels of theory and for the most correlation dependent term, the paramagnetic spin-orbit contribution (PSO), also at the very accurate CC3 level. We ¿nd that in order to get results that are well converged with respect to the basis set, one needs to use special SSCC optimized basis sets of at least quadruple zeta quality and with added diffuse functions. Furthermore, the PSO term is not yet converged at the CCSD level as shown by the CC3 calculations. Finally, it is shown that vibrational effects are very important, as they are in this case of the same order of magnitude as the equilibrium geometry value of the coupling constant. Only by using a converged basis set and including both vibrational and higher order correlation effects can we obtain agreement with the experimental value for this coupling.

AB - The vicinal indirect nuclear spin-spin coupling constant (SSCC) between the two ¿uorine atoms in di¿uoroethyne has been reinvestigated. This coupling has previously proved dif¿cult to calculate accurately. In this study we have therefore systematically investigated the dependence of this coupling on the choice of one-electron basis set, the choice of correlated wave function method and the inclusion of zero-point vibrational and temperature corrections. All terms of the SSCC have been evaluated at the second-order polarization propagator, SOPPA and SOPPA(CCSD), and coupled cluster singles and doubles (CCSD) levels of theory and for the most correlation dependent term, the paramagnetic spin-orbit contribution (PSO), also at the very accurate CC3 level. We ¿nd that in order to get results that are well converged with respect to the basis set, one needs to use special SSCC optimized basis sets of at least quadruple zeta quality and with added diffuse functions. Furthermore, the PSO term is not yet converged at the CCSD level as shown by the CC3 calculations. Finally, it is shown that vibrational effects are very important, as they are in this case of the same order of magnitude as the equilibrium geometry value of the coupling constant. Only by using a converged basis set and including both vibrational and higher order correlation effects can we obtain agreement with the experimental value for this coupling.

KW - Faculty of Science

KW - NMR

KW - spin-spin coupling constants

KW - difluoroethyne

KW - vibrational correction

KW - quantum chemistry

KW - Computational Chemistry

U2 - 10.1039/C2CP42198D

DO - 10.1039/C2CP42198D

M3 - Journal article

VL - 14

SP - 16440

EP - 16447

JO - Physical Chemistry Chemical Physics

JF - Physical Chemistry Chemical Physics

SN - 1463-9076

IS - 47

ER -

ID: 40861618