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Relativistic calculations of magnetic resonance parameters: Background and some recent developments

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Abstract

This article outlines some basic concepts of relativistic quantum chemistry and recent developments of relativistic methods for the calculation of the molecular properties that define the basic parameters of magnetic resonance spectroscopic techniques, i.e. nuclear magnetic resonance shielding, indirect nuclear spin-spin coupling and electric field gradients (nuclear quadrupole coupling), as well as with electron paramagnetic resonance g-factors and electron-nucleus hyperfine coupling. Density functional theory (DFT) has been very successful in molecular property calculations, despite a number of problems related to approximations in the functionals. In particular, for heavy-element systems, the large electron count and the need for a relativistic treatment often render the application of correlated wave function ab initio methods impracticable. Selected applications of DFT in relativistic calculation of magnetic resonance parameters are reviewed.

Original languageEnglish
Article number20120489
JournalPhilosophical transactions. Series A, Mathematical, physical, and engineering sciences
Volume372
Issue number2011
DOIs
StatePublished - Mar 13 2014

Keywords

  • Density functional theory
  • EPR
  • NMR
  • Quantum theory
  • Relativistic effects

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