English

Effect of chiral symmetry on chaotic scattering from Majorana zero modes

Mesoscale and Nanoscale Physics 2015-06-23 v3 Chaotic Dynamics

Abstract

In many of the experimental systems that may host Majorana zero modes, a so-called chiral symmetry exists that protects overlapping zero modes from splitting up. This symmetry is operative in a superconducting nanowire that is narrower than the spin-orbit scattering length, and at the Dirac point of a superconductor/topological insulator heterostructure. Here we show that chiral symmetry strongly modifies the dynamical and spectral properties of a chaotic scatterer, even if it binds only a single zero mode. These properties are quantified by the Wigner-Smith time-delay matrix Q=iSdS/dEQ=-i\hbar S^\dagger dS/dE, the Hermitian energy derivative of the scattering matrix, related to the density of states by ρ=(2π)1TrQ\rho=(2\pi\hbar)^{-1}\,{\rm Tr}\,Q. We compute the probability distribution of QQ and ρ\rho, dependent on the number ν\nu of Majorana zero modes, in the chiral ensembles of random-matrix theory. Chiral symmetry is essential for a significant ν\nu-dependence.

Keywords

Cite

@article{arxiv.1412.3998,
  title  = {Effect of chiral symmetry on chaotic scattering from Majorana zero modes},
  author = {H. Schomerus and M. Marciani and C. W. J. Beenakker},
  journal= {arXiv preprint arXiv:1412.3998},
  year   = {2015}
}

Comments

5 pages, 3 figures + appendix (3 pages, 1 figure)