| Literature DB >> 24359362 |
Michał Jaszuński1, Michal Repisky2, Taye B Demissie2, Stanislav Komorovsky2, Elena Malkin2, Kenneth Ruud2, Piotr Garbacz3, Karol Jackowski3, Włodzimierz Makulski3.
Abstract
The spin-rotation and nuclear magnetic shielding constants are analysed for both nuclei in the HCl molecule. Nonrelativistic ab initio calculations at the CCSD(T) level of approximation show that it is essential to include relativistic effects to obtain spin-rotation constants consistent with accurate experimental data. Our best estimates for the spin-rotation constants of (1)H(35)Cl are CCl = -53.914 kHz and C(H) = 42.672 kHz (for the lowest rovibrational level). For the chlorine shielding constant, the ab initio value computed including the relativistic corrections, σ(Cl) = 976.202 ppm, provides a new absolute shielding scale; for hydrogen we find σ(H) = 31.403 ppm (both at 300 K). Combining the theoretical results with our new gas-phase NMR experimental data allows us to improve the accuracy of the magnetic dipole moments of both chlorine isotopes. For the hydrogen shielding constant, including relativistic effects yields better agreement between experimental and computed values.Entities:
Year: 2013 PMID: 24359362 DOI: 10.1063/1.4840295
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488