English

Universal Anyon Tunneling in a Chiral Luttinger Liquid

Mesoscale and Nanoscale Physics 2025-11-21 v2 Strongly Correlated Electrons

Abstract

The edge modes of fractional quantum Hall liquids are described by chiral Luttinger liquid theory. Despite many years of experimental investigation fractional quantum Hall edge modes remain enigmatic with significant discrepancies between experimental observations and detailed predictions of chiral Luttinger liquid theory. Here we report measurements of tunneling conductance between counterpropagating edge modes at ν=1/3\nu=1/3 across a quantum point contact fabricated on an AlGaAs/GaAs heterostructure designed to promote a sharp confinement potential. We present evidence for tunneling of anyons through a ν=1/3\nu=1/3 incompressible liquid that exhibits universal scaling behavior with respect to temperature, source-drain bias, and barrier transmission, as originally proposed by Wen [1, 2]. For transmission t0.800t\geq0.800, we measured the tunneling exponent gˉ=0.333±0.005\bar{g} = 0.333 \pm 0.005 averaged over 29 independent data sets, consistent with the scaling dimension Δ=g/2=1/6\Delta = g/2 = 1/6 for a Laughlin quasiparticle at the edge. When combined with measurements of the fractional charge e=e/3e^*=e/3 and the recently observed anyonic statistical angle θa=2π3\theta_a=\frac{2\pi}{3}, the measured tunneling exponent fully characterizes the topological order of the primary Laughlin state at ν=1/3\nu=1/3.

Keywords

Cite

@article{arxiv.2502.20551,
  title  = {Universal Anyon Tunneling in a Chiral Luttinger Liquid},
  author = {Ramon Guerrero-Suarez and Adithya Suresh and Tanmay Maiti and Shuang Liang and James Nakamura and Geoffrey Gardner and Claudio Chamon and Michael Manfra},
  journal= {arXiv preprint arXiv:2502.20551},
  year   = {2025}
}

Comments

10 pages, 4 figures