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Auteurs principaux: Mustonen, Matias, Ojanen, Teemu, Moghaddam, Ali G.
Format: Preprint
Publié: 2024
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Accès en ligne:https://arxiv.org/abs/2410.18934
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author Mustonen, Matias
Ojanen, Teemu
Moghaddam, Ali G.
author_facet Mustonen, Matias
Ojanen, Teemu
Moghaddam, Ali G.
contents In this work, we establish a generalized transfer matrix method that provides exact analytical and numerical solutions for lattice versions of topological models with surface termination in one direction. We construct a generalized eigenvalue equation, equivalent to the conventional transfer matrix, which neither suffers from nor requires singular (non-invertible) inter-layer hopping matrices, in contrast to previous works. We then apply this formalism to derive, with exactness, the topological surface states and Fermi arc states in two prototypical topological models: the 3D Bernevig-Hughes-Zhang model and a lattice model exhibiting Weyl semimetal behavior. Our results show that the surface states and bulk bands, across the projected 2D Brillouin zone, agree perfectly with those obtained through direct numerical diagonalization of the corresponding Hamiltonians in a slab geometry. This highlights that the generalized transfer matrix method is not only a powerful tool but also a highly efficient alternative to fully numerical methods for investigating surface physics and interfaces in topological systems, particularly when it is required to go beyond low-energy effective descriptions.
format Preprint
id arxiv_https___arxiv_org_abs_2410_18934
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Exact solutions for topological surface states of three-dimensional lattice models
Mustonen, Matias
Ojanen, Teemu
Moghaddam, Ali G.
Mesoscale and Nanoscale Physics
Materials Science
In this work, we establish a generalized transfer matrix method that provides exact analytical and numerical solutions for lattice versions of topological models with surface termination in one direction. We construct a generalized eigenvalue equation, equivalent to the conventional transfer matrix, which neither suffers from nor requires singular (non-invertible) inter-layer hopping matrices, in contrast to previous works. We then apply this formalism to derive, with exactness, the topological surface states and Fermi arc states in two prototypical topological models: the 3D Bernevig-Hughes-Zhang model and a lattice model exhibiting Weyl semimetal behavior. Our results show that the surface states and bulk bands, across the projected 2D Brillouin zone, agree perfectly with those obtained through direct numerical diagonalization of the corresponding Hamiltonians in a slab geometry. This highlights that the generalized transfer matrix method is not only a powerful tool but also a highly efficient alternative to fully numerical methods for investigating surface physics and interfaces in topological systems, particularly when it is required to go beyond low-energy effective descriptions.
title Exact solutions for topological surface states of three-dimensional lattice models
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2410.18934