Relativistic and QED corrections to one-bond indirect nulcear spin-spin couplings in X$_2^{2+}$ and X$_3^{2+}$ ions (X = Zn, Cd, Hg)
Mariano Colombo Jofr\'e, Karol Kozio{\l}, I. Agust\'in Aucar,, Konstantin Gaul, Robert Berger, Gustavo A. Aucar

TL;DR
This paper analyzes relativistic and quantum electrodynamics (QED) corrections to nuclear spin-spin couplings in mercury-containing ions, revealing that QED effects are small but significant and depend on the atomic number Z.
Contribution
The study introduces an effective model to estimate QED corrections to J-couplings in X$_2^{2+}$ and X$_3^{2+}$ ions, incorporating relativistic effects at various levels.
Findings
QED corrections range from 0.7% to 1.7% of relativistic effects.
Paramagnetic-like mechanisms dominate the J-coupling contributions.
QED effects scale with nuclear charge as Z^5.
Abstract
The indirect nuclear spin-spin coupling tensor, , between mercury nuclei in Hg-containing systems can be of the order of few kHz and one of the largest measured. We conduct an analysis of the physics behind the electronic mechanisms that contribute to the one- and two-bond couplings (). We performed calculations for -couplings in X and ions ( = Zn, Cd, Hg), within polarization propagator theory, using the random phase approximation (RPA) and the pure zeroth order approximation (PZOA), with Dirac-Hartree-Fock (DHF) and Dirac-Kohn-Sham (DKS) orbitals, both at four-component and ZORA levels. We show that the "paramagnetic-like" mechanism contribute with more than 99.98\% to the total isotropic component of the coupling tensor. By means of an analysis of the molecular and atomic orbitals involved in the…
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Taxonomy
TopicsAtomic and Molecular Physics · Nuclear physics research studies · Quantum chaos and dynamical systems
