English

Thermopower and thermoelectric power factor of ${\mathbb Z}_k$ parafermion quantum dots

Mesoscale and Nanoscale Physics 2015-08-18 v2

Abstract

Using the conformal field theory approach to the thermoelectric characteristics of fractional quantum Hall states, previously developed in Nucl. Phys. B 894 (2015) 284, we show that the thermoelectric power factor of Coulomb-blockaded islands, realized by point contacts in Fabry--P\'erot interferometers in the Zk\mathbb{Z}_k parafermion Hall states, could give reliable signatures for distinguishing the topological orders of different quantum Hall states having identical electric properties. For example, while the conductance peak patterns in the Coulomb blockade regime for such states are practically indistinguishable for vnvcv_n \ll v_c even at finite temperature, where vnv_n and vcv_c are the Fermi velocities of the neutral and charged modes respectively, the power factors PT\mathcal{P}_T of the corresponding states are much more sensitive to the neutral modes. In particular, the smaller r=vn/vcr=v_n/v_c the bigger the asymmetries in the power factor which combined with the thermal broadening of the conductance peaks due to the neutral modes' multiplicities could give us the ultimate tool to figure out which of the competing quantum Hall universality classes are indeed realized in the experiments. We give a complete description of the power factor profiles in the Z3\mathbb{Z}_3 and Z4\mathbb{Z}_4 parafermion states with arbitrary number of quasiparticles localized in the bulk which could be useful for comparison with the experiments.

Keywords

Cite

@article{arxiv.1505.02538,
  title  = {Thermopower and thermoelectric power factor of ${\mathbb Z}_k$ parafermion quantum dots},
  author = {Lachezar S. Georgiev},
  journal= {arXiv preprint arXiv:1505.02538},
  year   = {2015}
}

Comments

27 pages, 12 PDF figures; v2: added two more references and corrected several misprints