English

Fractal non-Fermi liquids from moir\'e-Hofstadter phonons

Strongly Correlated Electrons 2020-12-14 v3 Mesoscale and Nanoscale Physics

Abstract

We theoretically explore 2d moir\'e heterostructures in lattice-commensurate magnetic fields as platforms for quantum simulation of a paradigmatic model of non-Fermi liquid physics: a Fermi-surface coupled to a fluctuating gauge field. In these moir\'e-Hofstadter (MH) systems, long-wavelength acoustic phonons exhibit singular interactions with electrons analogous to those of electrons with 2d gauge fields. This leads to a breakdown of Fermi-liquid theory at low temperatures. We show that a combination of large moir\'e-unit cell size, tunable Fermi-surface topology, and enhanced coupling to interlayer sliding modes, enhance these effects by over many orders-of-magnitude compared to bulk crystals, placing them within experimental reach. Though we find that the asymptotic low-temperature non-Fermi liquid regime remains at prohibitively low temperatures, striking precursor non-Fermi liquid signatures can be observed, and we propose surface acoustic wave attenuation and quantum oscillation transport experiments. We also study the motion of MH acoustic-polarons, which we predict exhibit logarithmically diverging effective mass and unconventional magnetic field scaling for scaling of cyclotron resonance frequency and quantum oscillation amplitude.

Keywords

Cite

@article{arxiv.2004.04744,
  title  = {Fractal non-Fermi liquids from moir\'e-Hofstadter phonons},
  author = {Ajesh Kumar and Zihan Cheng and Andrew C. Potter},
  journal= {arXiv preprint arXiv:2004.04744},
  year   = {2020}
}

Comments

8+9 pages, 5 figures. v3 expands on non-Fermi liquid properties, adds Figure 3

R2 v1 2026-06-23T14:46:06.132Z