Maximized Orbital and Spin Kondo effects in a single-electron transistor
Karyn Le Hur, Pascal Simon, Laszlo Borda

TL;DR
This paper explores the interplay of spin and orbital Kondo effects in a single-electron transistor, revealing a stable SU(4) Kondo state that enhances the Kondo temperature and alters charge fluctuation behavior.
Contribution
It demonstrates the emergence of a stable SU(4) Kondo fixed point in a single-electron transistor, advancing understanding of combined spin and orbital Kondo physics.
Findings
Identification of a stable SU(4) Kondo fixed point near degeneracy points.
The Kondo temperature $T_K^{SU(4)}$ can be increased to around 1K.
The ground state exhibits Fermi-liquid behavior, affecting Coulomb staircase features.
Abstract
We investigate the charge fluctuations of a single-electron box (metallic grain) coupled to a lead via a smaller quantum dot in the Kondo regime. The most interesting aspect of this problem resides in the interplay between spin Kondo physics stemming from the screening of the spin of the small dot and orbital Kondo physics emerging when charging states of the grain with (charge) Q=0 and Q=e are almost degenerate. Combining Wilson's numerical renormalization-group method with perturbative scaling approaches we push forward our previous work [K. Le Hur and P. Simon, Phys. Rev. B 67, 201308R (2003)]. We emphasize that for symmetric and slightly asymmetric barriers, the strong entanglement of charge and spin flip events in this setup inevitably results in a non trivial stable SU(4) Kondo fixed point near the degeneracy points of the grain. By analogy with a small dot sandwiched between two…
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