Universal transport at Lifshitz metal-insulator transitions in two dimensions
arXiv:2501.17616 · doi:10.1103/kc4r-72vj
Abstract
We study the charge transport across a band-tuned metal-insulator transition in two dimensions. For high temperatures and chemical potentials far from the transition point, conduction is ballistic and the resistance verifies a simple one-parameter scaling relation. Here, we explore the limits of this semi-classical behaviour and study the quantum regime beyond, where scaling breaks down. We derive an analytical formula for the simplest Feynman diagram of the linear-response conductivity of a parabolic band endowed with a finite lifetime. Our formula shows excellent agreement for experiments for a field-tuned MoTe/WSe moiré bilayer, and can capture the quantum effects responsible for breaking the one-parameter scaling. We go on to discuss a fascinating prediction of our model: The resistance at the quantum-critical band-tuned Lifshitz point () has the universal value, , per degree of freedom and this value is found to be compatible with experiment. Furthermore, we investigate whether two dimensional metal-insulator transitions driven by strong electron correlations or disorder can also be classified by their quantum-critical resistance and find that may be useful in identifying predominantly interaction driven transitions.
7 pages plus Supplementary Information
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