English

Tunneling and Quantum Noise in 1-D Luttinger Liquids

Condensed Matter 2009-10-22 v1

Abstract

We study non-equilibrium noise in the transmission current through barriers in 1-D Luttinger liquids and in the tunneling current between edges of fractional quantum Hall liquids. The distribution of tunneling events through narrow barriers can be described by a Coulomb gas lying in the time axis along a Keldysh (or non-equilibrium) contour. The charges tend to reorganize as a dipole gas, which we use to describe the tunneling statistics. Intra-dipole correlations contribute to the high-frequency ``Josephson'' noise, which has an algebraic singularity at ω=eV/\omega=e^*V/\hbar, whereas inter-dipole correlations are responsible for the low-frequency noise. Inter-dipole interactions give a 1/t21/t^2 correlation between the tunneling events that results in a ω|\omega| singularity in the noise spectrum. We present a diagrammatic technique to calculate the correlations in perturbation theory, and show that contributions from terms of order higher than the dipole-dipole interaction should only affect the strength of the ω|\omega| singularity, but its form should remain ω\sim |\omega| to all orders in perturbation theory.

Keywords

Cite

@article{arxiv.cond-mat/9408064,
  title  = {Tunneling and Quantum Noise in 1-D Luttinger Liquids},
  author = {C. de C. Chamon and D. E. Freed and X. G. Wen},
  journal= {arXiv preprint arXiv:cond-mat/9408064},
  year   = {2009}
}

Comments

RevTex, 9 figures available upon request, cond-mat/yymmnnn