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Solvent effects on heavy atom nuclear spin-spin coupling constants: A theoretical study of Hg-C and Pt-P couplings

  • University of Calgary

Research output: Contribution to journalArticlepeer-review

91 Scopus citations

Abstract

The computation of indirect nuclear spin-spin coupling constants, based on the relativistic two-component zeroth order regular approximate Hamiltonian, has been recently implemented by us into the Amsterdam Density Functional program. Applications of the code for the calculation of one-bond metalligand couplings of coordinatively unsaturated compounds containing 195Pt and 199Hg, including spin-orbit coupling or coordination effects by solvent molecules, show that relativistic density functional calculations are able to reproduce the experimental findings with good accuracy for the systems under investigation. Spin-orbit effects are rather small for these cases, while coordination of the heavy atoms by solvent molecules has a great impact on the calculated couplings. Experimental trends for different solvents are reproduced. An orbital-based analysis of the solvent effect is presented. The scalar relativistic increase of the coupling constants is of the same order of magnitude as the nonrelativistically obtained values, making a relativistic treatment essential for obtaining quantitatively correct results. Solvent effects can be of similar importance.

Original languageEnglish
Pages (from-to)3341-3349
Number of pages9
JournalJournal of the American Chemical Society
Volume123
Issue number14
DOIs
StatePublished - 2001

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