The single-electron transport in a three-ion magnetic molecule modulated by a transverse field
Javier I. Romero, Eduardo R. Mucciolo

TL;DR
This paper investigates how a transverse magnetic field influences single-electron transport in a three-ion magnetic molecule, revealing oscillating energy gaps and conductance signatures linked to Berry phase interference.
Contribution
It provides a microscopic model that captures the behavior of single-molecule magnets under transverse fields, connecting internal molecular structure to electronic transport phenomena.
Findings
Energy gap oscillates with external magnetic field.
Degeneracy points cause modulation in differential conductance.
Transport signatures reflect Berry phase interference effects.
Abstract
We study single-electron transport in a three-ion molecule with strong uniaxial anisotropy and in the presence of a transverse magnetic field. Two magnetic ions are connected to each other through a third, nonmagnetic ion. The magnetic ions are coupled to ideal metallic leads and a back gate voltage is applied to the molecule, forming a field-effect transistor. The microscopic Hamiltonian describing this system includes inter-ion hopping, on-site repulsions, and magnetic anisotropies. For a range of values of the parameters of the Hamiltonian, we obtain an energy spectrum similar to that of single-molecule magnets in the giant-spin approximation where the two states with maximum spin projection along the uniaxial anisotropy axis are well separated from other states. In addition, upon applying an external in-plane magnetic field, the energy gap between the ground and first excited states…
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