Bulk-hole correspondence and inner robust boundary modes in singular flatband lattices

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Song, Limin, Gao, Shenyi, Xia, Shiqi, Liang, Yongsheng, Tang, Liqin, Song, Daohong, Leykam, Daniel, Chen, Zhigang
Format: Preprint
Publié: 2024
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866929613091897344
author Song, Limin
Gao, Shenyi
Xia, Shiqi
Liang, Yongsheng
Tang, Liqin
Song, Daohong
Leykam, Daniel
Chen, Zhigang
author_facet Song, Limin
Gao, Shenyi
Xia, Shiqi
Liang, Yongsheng
Tang, Liqin
Song, Daohong
Leykam, Daniel
Chen, Zhigang
contents Topological entities based on bulk-boundary correspondence are ubiquitous, from conventional to higher-order topological insulators, where the protected states are typically localized at the outer boundaries (edges or corners). A less explored scenario involves protected states that are localized at the inner boundaries, sharing the same energy as the bulk states. Here, we propose and demonstrate what we refer to as the bulk-hole correspondence - a relation between the inner robust boundary modes (RBMs) and the existence of multiple "holes" in singular flatband lattices, mediated by the immovable discontinuity of the bulk Bloch wavefunctions. We find that the number of independent flatband states always equals the sum of the number of independent compact localized states and the number of nontrivial inner RBMs, as captured by the Betti number that also counts the hole number from topological data analysis. This correspondence is universal for singular flatband lattices, regardless of the lattice shape and the hole shape. Using laser-written Kagome lattices as a platform, we experimentally observe such inner RBMs, demonstrating their real-space topological nature and robustness. Our results may extend to other singular flatband systems beyond photonics, including non-Euclidean lattices, providing a new approach for understanding nontrivial flatband states and topology in hole-bearing lattice systems.
format Preprint
id arxiv_https___arxiv_org_abs_2412_02411
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Bulk-hole correspondence and inner robust boundary modes in singular flatband lattices
Song, Limin
Gao, Shenyi
Xia, Shiqi
Liang, Yongsheng
Tang, Liqin
Song, Daohong
Leykam, Daniel
Chen, Zhigang
Optics
Topological entities based on bulk-boundary correspondence are ubiquitous, from conventional to higher-order topological insulators, where the protected states are typically localized at the outer boundaries (edges or corners). A less explored scenario involves protected states that are localized at the inner boundaries, sharing the same energy as the bulk states. Here, we propose and demonstrate what we refer to as the bulk-hole correspondence - a relation between the inner robust boundary modes (RBMs) and the existence of multiple "holes" in singular flatband lattices, mediated by the immovable discontinuity of the bulk Bloch wavefunctions. We find that the number of independent flatband states always equals the sum of the number of independent compact localized states and the number of nontrivial inner RBMs, as captured by the Betti number that also counts the hole number from topological data analysis. This correspondence is universal for singular flatband lattices, regardless of the lattice shape and the hole shape. Using laser-written Kagome lattices as a platform, we experimentally observe such inner RBMs, demonstrating their real-space topological nature and robustness. Our results may extend to other singular flatband systems beyond photonics, including non-Euclidean lattices, providing a new approach for understanding nontrivial flatband states and topology in hole-bearing lattice systems.
title Bulk-hole correspondence and inner robust boundary modes in singular flatband lattices
topic Optics
url https://arxiv.org/abs/2412.02411