English

The Colored Hofstadter Butterfly for the Honeycomb Lattice

Mathematical Physics 2015-06-19 v1 Mesoscale and Nanoscale Physics math.MP Spectral Theory

Abstract

We rely on a recent method for determining edge spectra and we use it to compute the Chern numbers for Hofstadter models on the honeycomb lattice having rational magnetic flux per unit cell. Based on the bulk-edge correspondence, the Chern number σH\sigma_H is given as the winding number of an eigenvector of a 2×22 \times 2 transfer matrix, as a function of the quasi-momentum k(0,2π)k \in (0,2 \pi). This method is computationally efficient (of order O(n4)O(n^4) in the resolution of the desired image). It also shows that for the honeycomb lattice the solution for σH\sigma_H for flux p/qp/q in the rr-th gap conforms with the Diophantine equation r=σHp+sqr=\sigma_H\cdot p+ s\cdot q, which determines σHmodq\sigma_H \mod q. A window such as σH(q/2,q/2)\sigma_H \in(-q/2,q/2), or possibly shifted, provides a natural further condition for σH\sigma_H, which however turns out not to be met. Based on extensive numerical calculations, we conjecture that the solution conforms with the relaxed condition σH(q,q)\sigma_H\in(-q,q).

Keywords

Cite

@article{arxiv.1403.1270,
  title  = {The Colored Hofstadter Butterfly for the Honeycomb Lattice},
  author = {Andrea Agazzi and Jean-Pierre Eckmann and Gian Michele Graf},
  journal= {arXiv preprint arXiv:1403.1270},
  year   = {2015}
}

Comments

Lossless versions of Figures 4 and 5 can be obtained from the authors