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Drude weight of an interacting flat-band metal

Ohad Antebi1,*, Johannes Mitscherling2,*, and Tobias Holder3,†

  • *These authors contributed equally to this work.
  • †Contact author: tobiasholder@tauex.tau.ac.il

Phys. Rev. B 110, L241111 – Published 26 December, 2024

DOI: https://doi.org/10.1103/PhysRevB.110.L241111

Abstract

Flatband systems form a new class of materials that challenge the conventional wisdom of transport. The intrinsically strong electronic correlations combined with the vanishing kinetic energy scale suggest a sensitive dependence of transport properties on the flat band states and make interacting flat bands promising candidates for exotic quantum transport. Utilizing the Drude weight, we investigate the low-frequency spectral properties of the electrical conductivity within a controlled analytic treatment of the many-body response at temperatures above the bandwidth and the interaction strength and below the band gap. Focusing on this new transport regime, we demonstrate the potential of a quantum geometric approach for interacting systems and intermediate temperatures. The derived spectral weight yields unexplored four-point geometric contributions unrelated to the quantum metric, which questions the previously proposed projection methods. For long-ranged interactions, we show that the low-frequency spectral weight reduces to the variance of the Berry curvature.

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