Fermi-liquid theory for the single-impurity Anderson model
Christophe Mora, Catalin Pascu Moca, Jan von Delft, Gergely Zarand

TL;DR
This paper extends Fermi-liquid theory to the single-impurity Anderson model, expressing key parameters in terms of physical observables, and applies it to analyze conductance and noise in quantum dots across different regimes.
Contribution
It introduces a generalized Fermi-liquid framework for the Anderson model, relating parameters to measurable quantities and covering the entire crossover from Kondo to empty-orbital regimes.
Findings
Fermi-liquid parameters expressed via susceptibilities and derivatives
Exact coefficients for conductance corrections in magnetic field, temperature, bias
Sign change of coefficients during the Kondo to empty-orbital crossover
Abstract
We generalize Nozi\`eres' Fermi-liquid theory for the low-energy behavior of the Kondo model to that of the single-impurity Anderson model. In addition to the electrons' phase shift at the Fermi energy, the low-energy Fermi-liquid theory is characterized by four Fermi-liquid parameters: the two given by Nozi\`eres that enter to first order in the excitation energy, and two additional ones that enter to second order and are needed away from particle-hole symmetry. We express all four parameters in terms of zero-temperature physical observables, namely the local charge and spin susceptibilities and their derivatives with respect to the local level position. We determine these in terms of the bare parameters of the Anderson model using Bethe Ansatz and Numerical Renormalization Group (NRG) calculations. Our low-energy Fermi-liquid theory applies throughout the crossover from the…
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