English

Exact solution of corner-modified banded block-Toeplitz eigensystems

Quantum Physics 2017-04-27 v2 Statistical Mechanics Mathematical Physics math.MP

Abstract

Motivated by the challenge of seeking a rigorous foundation for the bulk-boundary correspondence for free fermions, we introduce an algorithm for determining exactly the spectrum and a generalized-eigenvector basis of a class of banded block quasi-Toeplitz matrices that we call corner-modified. Corner modifications of otherwise arbitrary banded block-Toeplitz matrices capture the effect of boundary conditions and the associated breakdown of translational invariance. Our algorithm leverages the interplay between a non-standard, projector-based method of kernel determination (physically, a bulk-boundary separation) and families of linear representations of the algebra of matrix Laurent polynomials. Thanks to the fact that these representations act on infinite-dimensional carrier spaces in which translation symmetry is restored, it becomes possible to determine the eigensystem of an auxiliary projected block-Laurent matrix. This results in an analytic eigenvector Ansatz, independent of the system size, which we prove is guaranteed to contain the full solution of the original finite-dimensional problem. The actual solution is then obtained by imposing compatibility with a boundary matrix, also independent of system size. As an application, we show analytically that eigenvectors of short-ranged fermionic tight-binding models may display power-law corrections to exponential decay, and demonstrate the phenomenon for the paradigmatic Majorana chain of Kitaev.

Keywords

Cite

@article{arxiv.1612.05567,
  title  = {Exact solution of corner-modified banded block-Toeplitz eigensystems},
  author = {Emilio Cobanera and Abhijeet Alase and Gerardo Ortiz and Lorenza Viola},
  journal= {arXiv preprint arXiv:1612.05567},
  year   = {2017}
}

Comments

42 pages, no figures. Improved presentation, minor inaccuracies fixed. Published version

R2 v1 2026-06-22T17:26:21.346Z