English

Kondo physics from quasiparticle poisoning in Majorana devices

Mesoscale and Nanoscale Physics 2016-03-28 v2

Abstract

We present a theoretical analysis of quasiparticle poisoning in Coulomb-blockaded Majorana fermion systems tunnel-coupled to normal-conducting leads. Taking into account finite-energy quasiparticles, we derive the effective low-energy theory and present a renormalization group analysis. We find qualitatively new effects when a quasiparticle state with very low energy is localized near a tunnel contact. For M=2M=2 attached leads, such "dangerous" quasiparticle poisoning processes cause a spin S=1/2S=1/2 single-channel Kondo effect, which can be detected through a characteristic zero-bias anomaly conductance peak in all Coulomb blockade valleys. For more than two attached leads, the topological Kondo effect of the unpoisoned system becomes unstable. A strong-coupling bosonization analysis indicates that at low energy the poisoned lead is effectively decoupled and hence, for M>3M>3, the topological Kondo fixed point re-emerges, though now it involves only M1M-1 leads. As a consequence, for M=3M=3, the low-energy fixed point becomes trivial corresponding to decoupled leads.

Keywords

Cite

@article{arxiv.1601.04332,
  title  = {Kondo physics from quasiparticle poisoning in Majorana devices},
  author = {S. Plugge and A. Zazunov and E. Eriksson and A. M. Tsvelik and R. Egger},
  journal= {arXiv preprint arXiv:1601.04332},
  year   = {2016}
}

Comments

14 pages, 3 figures, final version (more discussion and one figure added) accepted to PRB