arXiv · 1501.04347
Quantum criticality of the two-channel pseudogap Anderson model: Universal scaling in linear and non-linear conductance
Abstract
The quantum criticality of the two-lead two-channel pseudogap Anderson model is studied. Based on the non-crossing approximation, we calculate both the linear and nonlinear conductance of the model at finite temperatures with a voltage bias and a power-law vanishing conduction electron density of states, $\propto |\omega-\mu_F|^r$ ($0<r<1$) near the Fermi energy. Equilibrium and non-equilibrium quantum critical properties at the two-channel Kondo (2CK) to local moment (LM) phase transition are addressed by extracting universal scaling functions in both linear and non-linear conductances, respectively. Clear distinctions are found on the critical exponents between linear and non-linear conductance. The implications of these two distinct quantum critical properties for the non-equilibrium quantum criticality in general are discussed.
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Tsan-Pei Wu, Chung-Hou Chung. 2015-01-18. Quantum criticality of the two-channel pseudogap Anderson model: Universal scaling in linear and non-linear conductance. https://doi.org/10.1088/0953-8984%2F28%2F17%2F175003
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