English

Temperature-driven transition between momentum-resolved and disordered averaged Coulomb drag in 1D systems

Mesoscale and Nanoscale Physics 2026-07-31 v1

Abstract

Advancing the understanding of electron-electron interactions in one-dimensional systems remains one of the central challenges in low-dimensional physics, especially for Coulomb-coupled Tomonaga-Luttinger liquids. Notably, the difficulty of reliably extracting one-dimensional system parameters, combined with the presence of disorder, has hindered the interpretation of 1D Coulomb drag experiments. Here, we present a self-consistent experimental determination of the relative Luttinger liquid interaction parameters through 1D Coulomb drag measurements, and achieve quantitative agreement with theoretical predictions. Utilizing vertically coupled GaAs-AlGaAs quantum wires, we fully characterize the one-dimensional parameters through magnetic depopulation. Coulomb drag exhibits a systematic evolution with magnetic field, reflecting the successive depopulation of 1D subbands and the suppression of disorder effects. Two distinct temperature regimes are identified, marking the boundary between momentum-resolved and disordered-averaged Coulomb drag. The observed scaling, peak broadening, and nonlinear current-voltage characteristics establish a unified and quantitative framework for probing electron-electron interactions in 1D systems.

Keywords

Cite

@article{arxiv.2607.29630,
  title  = {Temperature-driven transition between momentum-resolved and disordered averaged Coulomb drag in 1D systems},
  author = {Mingyang Zheng and Rebika Makaju and Rasul Gazizulin and Alex Levchenko and Sadhvikas J. Addamane and Dominique Laroche},
  journal= {arXiv preprint arXiv:2607.29630},
  year   = {2026}
}

Comments

22 pages, 5 figures