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Localization and flat bands in bond-inflated lattices

2026/04/14 by Richard Berkovits
Materials Science · Physics and Astronomy · #Boundary (topology) #Intersection (aeronautics) #Noise (video) #Nonlinear Photonic Systems #Organic and Molecular Conductors Research #Quasicrystal Structures and Properties #Set (abstract data type) #Spectrum (functional analysis)

paper · pdf · doi:10.1103/8x11-bq9x

openalex publication_date 2026/07/08 · openalex created_date 2026/07/09 · openalex updated_date 2026/08/01

Abstract

We study localization and flat-band formation in lattices generated by repeated bond inflation of square, honeycomb, and triangular parent lattices. Replacing each bond by a finite tight-binding chain produces several distinct classes of flat bands: chain-induced flat bands at the eigenenergies of the inserted chains, symmetry-protected zero-energy flat bands in bipartite bond-inflated lattices, and nearly flat junction bands near the spectral edges for sufficiently long chains. We analyze these mechanisms for ordered Lieb-L, superLhoneycomb, and superLtriangular lattices, and examine their response to bond disorder, site disorder, random magnetic flux, and randomness in the inflation process itself. While bond and site disorder broaden most flat bands, the zero-energy chiral band and the junction-induced flat bands remain robust under certain perturbations. Remarkably, substantial flat-band features also persist in randomly bond-inflated graphs, even in the absence of translational symmetry. In particular, the number of zero-energy states is found to be well estimated by the matching deficiency N-2ν(G), indicating that local tree-like structure continues to control the low-energy nullity. These results identify bond-inflated lattices as a broad class of systems in which geometry alone generates robust localization in both ordered and random settings.

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