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Main Authors: Bhattacharya, Sayan, Acharjee, Rhiddha, Nandy, Atanu
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2512.06569
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author Bhattacharya, Sayan
Acharjee, Rhiddha
Nandy, Atanu
author_facet Bhattacharya, Sayan
Acharjee, Rhiddha
Nandy, Atanu
contents We address that a single-band tight-binding Hamiltonian defined on a self-similar corral substrate can give rise to a set of non-diffusive localized modes that follow the same hierarchical distribution. As the lattice, the spatial extent of quantum prison containing a cluster of atomic sites is dependent on the generation of fractal structure. Apart from the quantum imprisonment of the excitation, a magnetic flux threading each elementary plaquette is shown to destroy the boundedness and generate an absolutely continuous sub-band populated by resonant eigen functions. Flux induced engineering of quantum states is corroborated through the evaluation of inverse participation ratio and quantum transport. Moreover, the robustness of the extended states has been checked in presence of diagonal disorder and off-diagonal anisotropy. Flux modulated single-particle mobility edge is characterized through mutlifractal analysis. Quantum interference is the essential issue, reported here, that manipulates the kinematics of the excitation and this is manifested by the workout of persistent current.
format Preprint
id arxiv_https___arxiv_org_abs_2512_06569
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Localization, transport, flux induced extended modes and mobility edge in a self-similar corral substrate
Bhattacharya, Sayan
Acharjee, Rhiddha
Nandy, Atanu
Mesoscale and Nanoscale Physics
Disordered Systems and Neural Networks
We address that a single-band tight-binding Hamiltonian defined on a self-similar corral substrate can give rise to a set of non-diffusive localized modes that follow the same hierarchical distribution. As the lattice, the spatial extent of quantum prison containing a cluster of atomic sites is dependent on the generation of fractal structure. Apart from the quantum imprisonment of the excitation, a magnetic flux threading each elementary plaquette is shown to destroy the boundedness and generate an absolutely continuous sub-band populated by resonant eigen functions. Flux induced engineering of quantum states is corroborated through the evaluation of inverse participation ratio and quantum transport. Moreover, the robustness of the extended states has been checked in presence of diagonal disorder and off-diagonal anisotropy. Flux modulated single-particle mobility edge is characterized through mutlifractal analysis. Quantum interference is the essential issue, reported here, that manipulates the kinematics of the excitation and this is manifested by the workout of persistent current.
title Localization, transport, flux induced extended modes and mobility edge in a self-similar corral substrate
topic Mesoscale and Nanoscale Physics
Disordered Systems and Neural Networks
url https://arxiv.org/abs/2512.06569