Local magnetic moments and electronic transport in closed loop quantum dot systems: a case of quadruple quantum dot ring at and away from equilibrium
V. S. Protsenko, A. A. Katanin

TL;DR
This paper investigates local magnetic moments and electronic transport in a quadruple quantum dot ring using non-equilibrium functional renormalization group methods, revealing stable magnetic states, conductance features, and spintronic implications.
Contribution
It introduces a non-equilibrium fRG approach to analyze magnetic moments and transport in QQD systems, including bias effects and spin-dependent conductance.
Findings
Multiple magnetic regimes can be realized depending on system parameters.
Local magnetic moments remain stable near equilibrium under bias.
Negative differential conductance and spin filtering effects are observed.
Abstract
We apply the non-equilibrium functional renormalization group approach treating flow of the electronic self-energies, to describe local magnetic moments formation and electronic transport in a quadruple quantum dot (QQD) ring, coupled to leads, with moderate Coulomb interaction on the quantum dots. We find that at zero temperature depending on parameters of the QQD system the regimes with zero, one, or two almost local magnetic moments in the ring can be realized, and the results of the considered approach in equilibrium agree qualitatively with those of more sophisticated fRG approach treating also flow of the vertices. It is shown that the almost formed local magnetic moments, which exist in the equilibrium, remain stable in a wide range of bias voltages near equilibrium. The destruction of the local magnetic moments with increasing bias voltage is realized in one or two stages,…
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