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    Walking on Archimedean lattices: Insights from Bloch band theory

    Davidson Noby Joseph1,2 and Igor Boettcher1,2,3

    Phys. Rev. E 112, 044118 – Published 10 October, 2025

    DOI: https://doi.org/10.1103/1fvj-91v6

    Abstract

    Returning walks on a lattice are sequences of moves that start at a given lattice site and return to the same site after n steps. Determining the total number of returning walks of a given length n is a typical graph-theoretical problem with connections to lattice models in statistical and condensed matter physics. We derive analytical expressions for the returning walk numbers on the 11 two-dimensional Archimedean lattices by developing a connection to the theory of Bloch energy bands. We benchmark our results through an alternative method that relies on computing the moments of adjacency matrices of large graphs, whose construction we explain explicitly. As condensed matter physics applications, we use our formulas to compute the density of states of tight-binding models on the Archimedean lattices and analytically determine the asymptotics of the return probability. While the Archimedean lattices provide a sufficiently rich structure and are chosen here for concreteness, our techniques can be generalized straightforwardly to other two- or higher-dimensional Euclidean lattices.

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