paper

First-principle studies of spin-electric coupling in a single molecular magnet

arXiv:1008.1139

Abstract

We report on a study of the electronic and magnetic properties of the triangular antiferromagnetic single-molecule magnet, based on spin density functional theory. Our calculations show that the low-energy magnetic properties are correctly described by an effective three-site spin Heisenberg model, with an antiferromagnetic exchange coupling meV. The ground state manifold of the model is composed of two degenerate spin doublets of opposite chirality. Due to lack of inversion symmetry in the molecule these two states are coupled by an external electric field, even when spin-orbit interaction is absent. The spin-electric coupling can be viewed as originating from a modified exchange constant induced by the electric field. We find that the calculated transition rate between the chiral states yields an effective electric dipole moment , where is the Cu separation. For external electric fields V/m this value corresponds to a Rabi time ns and to a of the order of a few eV.

10 pages, 10 figures