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December 22, 20250 citationsOpen Access

Emergent topological properties in spatially modulated sub-wavelength barrier lattices

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GŽGiedrius ŽlabysWHWen-Bin HeDBDomantas Burba

Key Points

  • The study aims to explore topological phenomena in modulated Dirac-$δ$ lattices and their implications for quantum transport.
  • Investigation of potential modulation frequency in Dirac-$δ$ lattices
  • Calculation of Chern numbers and bulk invariants
  • Demonstration of Wannier center displacement
  • Proposal for experimental realization using optically controlled three-level atoms
  • Emergence of Hofstadter's butterfly-like energy spectrum
  • Identification of topological transport regimes
  • Verification of topological nature through displacement and invariant calculations

Abstract

We investigate topological phenomena in a spatially modulated Dirac-δ lattice, where the scattering potential varies periodically in space. Changing the potential modulation frequency leads to Hofstadter's butterfly-like energy spectrum and enables the emergence of topological transport regimes characterized by non-trivial Chern numbers. We show how the considered modulated system is connected to the Hofstadter model via the Harper equation. By adiabatically varying spatial modulation parameters, we demonstrate controllable quantum transport and verify the topological nature of these effects through Wannier center displacement and bulk invariant calculations. We also propose an experimentally feasible realization of such a system using optically controlled three-level atoms. Our findings showcase spatially engineered Kronig-Penney-type systems as versatile platforms for investigating and exploiting different topological quantum transport regimes.

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Cite This Study

Žlabys et al. (2025) studied this question.

synapsesocial.com/papers/69488bc877063b71e748cfb0https://doi.org/10.48550/arxiv.2512.16187
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