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Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties.

Publication ,  Journal Article
Sefzik, TH; Turco, D; Iuliucci, RJ; Facelli, JC
Published in: The journal of physical chemistry. A
February 2005

The NMR chemical shift, a six-parameter tensor property, is highly sensitive to the position of the atoms in a molecule. To extract structural parameters from chemical shifts, one must rely on theoretical models. Therefore, a high quality group of shift tensors that serve as benchmarks to test the validity of these models is warranted and necessary to highlight existing computational limitations. Here, a set of 102 13C chemical-shift tensors measured in single crystals, from a series of aromatic and saccharide molecules for which neutron diffraction data are available, is used to survey models based on the density functional (DFT) and Hartree-Fock (HF) theories. The quality of the models is assessed by their least-squares linear regression parameters. It is observed that in general DFT outperforms restricted HF theory. For instance, Becke's three-parameter exchange method and mpw1pw91 generally provide the best predicted shieldings for this group of tensors. However, this performance is not universal, as none of the DFT functionals can predict the saccharide tensors better than HF theory. Both the orientations of the principal axis system and the magnitude of the shielding were compared using the chemical-shift distance to evaluate the quality of the calculated individual tensor components in units of ppm. Systematic shortcomings in the prediction of the principal components were observed, but the theory predicts the corresponding isotropic value more accurately. This is because these systematic errors cancel, thereby indicating that the theoretical assessment of shielding predictions based on the isotropic shift should be avoided.

Duke Scholars

Published In

The journal of physical chemistry. A

DOI

EISSN

1520-5215

ISSN

1089-5639

Publication Date

February 2005

Volume

109

Issue

6

Start / End Page

1180 / 1187

Related Subject Headings

  • 5102 Atomic, molecular and optical physics
  • 3407 Theoretical and computational chemistry
  • 3406 Physical chemistry
  • 0307 Theoretical and Computational Chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
 

Citation

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Sefzik, T. H., Turco, D., Iuliucci, R. J., & Facelli, J. C. (2005). Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties. The Journal of Physical Chemistry. A, 109(6), 1180–1187. https://doi.org/10.1021/jp0455780
Sefzik, Travis H., Domenic Turco, Robbie J. Iuliucci, and Julio C. Facelli. “Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties.The Journal of Physical Chemistry. A 109, no. 6 (February 2005): 1180–87. https://doi.org/10.1021/jp0455780.
Sefzik TH, Turco D, Iuliucci RJ, Facelli JC. Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties. The journal of physical chemistry A. 2005 Feb;109(6):1180–7.
Sefzik, Travis H., et al. “Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties.The Journal of Physical Chemistry. A, vol. 109, no. 6, Feb. 2005, pp. 1180–87. Epmc, doi:10.1021/jp0455780.
Sefzik TH, Turco D, Iuliucci RJ, Facelli JC. Modeling NMR chemical shift: A survey of density functional theory approaches for calculating tensor properties. The journal of physical chemistry A. 2005 Feb;109(6):1180–1187.
Journal cover image

Published In

The journal of physical chemistry. A

DOI

EISSN

1520-5215

ISSN

1089-5639

Publication Date

February 2005

Volume

109

Issue

6

Start / End Page

1180 / 1187

Related Subject Headings

  • 5102 Atomic, molecular and optical physics
  • 3407 Theoretical and computational chemistry
  • 3406 Physical chemistry
  • 0307 Theoretical and Computational Chemistry
  • 0306 Physical Chemistry (incl. Structural)
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics