Loop current fluctuations and quantum critical transport
Zhengyan Darius Shi, Dominic V. Else, Hart Goldman, T., Senthil

TL;DR
This paper investigates quantum critical transport near loop current order, introducing a novel anomaly-assisted large N expansion to compute finite frequency conductivity in deformed models, highlighting limitations for physical systems.
Contribution
It develops a new anomaly-assisted large N method for calculating quantum critical transport and explores conditions under which finite incoherent conductivity arises.
Findings
Finite incoherent conductivity at IR fixed point in deformed models
Development of anomaly-assisted large N expansion technique
Reevaluation of frequency-dependent conductivity in related models
Abstract
We study electrical transport at quantum critical points (QCPs) associated with loop current ordering in a metal, focusing specifically on models of the "Hertz-Millis" type. At the infrared (IR) fixed point and in the absence of disorder, the simplest such models have infinite DC conductivity and zero incoherent conductivity at nonzero frequencies. However, we find that a particular deformation, involving species of bosons and fermions with random couplings in flavor space, admits a finite incoherent, frequency-dependent conductivity at the IR fixed point, , where is the boson dynamical exponent. Leveraging the non-perturbative structure of quantum anomalies, we develop a powerful calculational method for transport. The resulting "anomaly-assisted large expansion" allows us to extract the conductivity systematically. Although our results…
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Taxonomy
TopicsForce Microscopy Techniques and Applications · Quantum and electron transport phenomena · Thermal properties of materials
