English

Many-body Correlation Effect on Mesoscopic Charge Relaxation

Mesoscale and Nanoscale Physics 2011-08-25 v1

Abstract

We investigate in a nonperturbative way the dynamics of a correlated quantum capacitor. We find that the many-body correlations do not disturb the universal low-frequency relaxation resistance per channel, Rq(ω=0)=h/4e2R_q(\omega=0) = h/4e^2 ensured by the Korringa-Shiba rule whereas the interpretation of the quantum capacitance CqC_q in terms of the density of states fails when strong correlations are present. The AC resistance Rq(ω)R_q(\omega) shows huge peaks (with values larger than h/4e2h/4e^2) at ω±Γ\hbar\omega \approx \pm \Gamma^*, where Γ\Gamma^* is the renormalized level broadening. These peaks are merged to a single one at ω=0\omega=0 when a finite Zeeman field is applied comparable to Γ\Gamma^*. The observed features of RqR_q, being most evident in the Kondo regime, are attributed to the generation of particle-hole excitations in the contacts accomplished by spin-flip processes in the dot.

Keywords

Cite

@article{arxiv.1101.0468,
  title  = {Many-body Correlation Effect on Mesoscopic Charge Relaxation},
  author = {Minchul Lee and Rosa Lopez and Mahn-Soo Choi and Thibaut Jonckheere and Thierry Martin},
  journal= {arXiv preprint arXiv:1101.0468},
  year   = {2011}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-21T17:06:44.154Z