English

Thermoelectric effects in correlated quantum dots and molecules

Mesoscale and Nanoscale Physics 2011-03-10 v2

Abstract

We investigate thermoelectric properties of correlated quantum dots and molecules, described by a single level Anderson model coupled to conduction electron leads, by using Wilson's numerical renormalization group method. In the Kondo regime, the thermopower, S(T)S(T), exhibits two sign changes, at temperatures T=T1T=T_{1} and T=T2>T1T=T_{2}>T_{1}. We find that T2T_{2} is of order the level width Γ\Gamma and T1>TpTKT_{1}> T_{p}\approx T_{K}, where TpT_{p} is the position of the Kondo induced peak in the thermopower and TKT_{K} is the Kondo scale. No sign change is found outside the Kondo regime, or, for weak correlations, making a sign change in S(T)S(T) a particularly sensitive signature of strong correlations and Kondo physics. For molecules, we investigate the effect of screening by conduction electrons on the thermoelectric transport. We find that a large screening interaction enhances the figure of merit in the Kondo and mixed valence regimes.

Keywords

Cite

@article{arxiv.1007.4522,
  title  = {Thermoelectric effects in correlated quantum dots and molecules},
  author = {V. Schoeps and V. Zlatic and T. A. Costi},
  journal= {arXiv preprint arXiv:1007.4522},
  year   = {2011}
}

Comments

4 pages, 3 figures; to appear in the Proceedings of the International Conference on Strongly Correlated Electron Systems, Santa Fe 2010; revised version: typos corrected and references updated

R2 v1 2026-06-21T15:53:10.455Z