Transport signatures of Kondo physics and quantum criticality in graphene with magnetic impurities
David A. Ruiz-Tijerina, Luis G. G. V. Dias da Silva

TL;DR
This paper investigates how magnetic impurities in graphene influence quantum criticality and Kondo physics, revealing symmetry-dependent behaviors and experimental signatures in transport properties.
Contribution
It provides a comprehensive analysis of the transport and thermodynamic signatures of quantum criticality and Kondo effects in graphene with various magnetic impurities, highlighting symmetry effects.
Findings
Symmetry-dependent quantum criticality affects impurity scattering.
Kondo correlations are accessible with a back gate in experiments.
Resistivity exhibits distinct temperature scaling at quantum critical points.
Abstract
Localized magnetic moments have been predicted to develop in graphene samples with vacancies or adsorbates. The interplay between such magnetic impurities and graphene's Dirac quasiparticles leads to remarkable many-body phenomena, which have so far proved elusive to experimental efforts. In this article, we study the thermodynamic, spectral and transport signatures of quantum criticality and Kondo physics of a dilute ensemble of atomic impurities in graphene. We consider vacancies and adatoms that either break or preserve graphene's and inversion symmetries. In a neutral graphene sample, all cases display symmetry-dependent quantum criticality, leading to enhanced impurity scattering for asymmetric impurities, in a manner analogous to bound-state formation by nonmagnetic resonant scatterers. Kondo correlations emerge only in the presence of a back gate, with estimated Kondo…
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