English

Quantum Criticality in Ferromagnetic Single-Electron Transistors

Strongly Correlated Electrons 2007-05-23 v3 Mesoscale and Nanoscale Physics

Abstract

Considerable evidence exists for the failure of the traditional theory of quantum critical points (QCPs), pointing to the need to incorporate novel excitations. The destruction of Kondo entanglement and the concomitant critical Kondo effect may underlie these emergent excitations in heavy fermion metals -- a prototype system for quantum criticality -- but the effect remains poorly understood. Here, we show how ferromagnetic single-electron transistors can be used to study this effect. We theoretically demonstrate a gate-voltage induced quantum phase transition. The critical Kondo effect is manifested in a fractional-power-law dependence of the conductance on temperature (TT). The AC conductance and thermal noise spectrum have related power-law dependences on frequency (ω\omega) and, in addition, show an ω/T\omega/T scaling. Our results imply that the ferromagnetic nanostructure constitutes a realistic model system to elucidate magnetic quantum criticality that is central to the heavy fermions and other bulk materials with non-Fermi liquid behavior.

Keywords

Cite

@article{arxiv.cond-mat/0507215,
  title  = {Quantum Criticality in Ferromagnetic Single-Electron Transistors},
  author = {Stefan Kirchner and Lijun Zhu and Qimiao Si and D. Natelson},
  journal= {arXiv preprint arXiv:cond-mat/0507215},
  year   = {2007}
}

Comments

16 pages, 4 figures; references added and typo in the critical exponent for the paramagnon case corrected; as published in PNAS

R2 v1 2026-07-22T11:19:39.642Z