English

Nonequilibrium electron spectroscopy of Luttinger liquids

Strongly Correlated Electrons 2015-05-14 v1 Mesoscale and Nanoscale Physics

Abstract

Understanding the effects of nonequilibrium on strongly interacting quantum systems is a challenging problem in condensed matter physics. In dimensions greater than one, interacting electrons can often be understood within Fermi-liquid theory where low-energy excitations are weakly interacting quasiparticles. On the contrary, electrons in one dimension are known to form a strongly-correlated phase of matter called a Luttinger liquid (LL), whose low-energy excitations are collective density waves, or plasmons, of the electron gas. Here we show that spectroscopy of locally injected high-energy electrons can be used to probe energy relaxation in the presence of such strong correlations. For detection energies near the injection energy, the electron distribution is described by a power law whose exponent depends in a continuous way on the Luttinger parameter, and energy relaxation can be attributed to plasmon emission. For a chiral LL as realized at the edge of a fractional quantum Hall state, the distribution function grows linearly with the distance to the injection energy, independent of filling fraction.

Keywords

Cite

@article{arxiv.0912.3530,
  title  = {Nonequilibrium electron spectroscopy of Luttinger liquids},
  author = {So Takei and Mirco Milletari' and Bernd Rosenow},
  journal= {arXiv preprint arXiv:0912.3530},
  year   = {2015}
}

Comments

4+ pages, 3 figures