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    Synthetic horizons in an atomic chain: Horizon-induced effects and connections to quantum Hall systems

    Ali G. Moghaddam1,2, Viktor Könye3,4, Lotte Mertens3,4, Jasper van Wezel4, and Jeroen van den Brink3,5

    • 1Department of Applied Physics, Aalto University, P.O. Box 11000, FI-00076 Aalto, Finland
    • 2Computational Physics Laboratory, Physics Unit, Faculty of Engineering and Natural Sciences, Tampere University, FI-33014 Tampere, Finland
    • 3Institute for Theoretical Solid State Physics, IFW Dresden and Würzburg-Dresden Cluster of Excellence ct.qmat, Helmholtzstrasse 20, 01069 Dresden, Germany
    • 4Institute for Theoretical Physics, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, The Netherlands
    • 5Institute for Theoretical Physics, TU Dresden, 01069 Dresden, Germany

    Phys. Rev. B 113, 195430 – Published 18 May, 2026

    DOI: https://doi.org/10.1103/znlq-8k2p

    Abstract

    We investigate the sine model, a one-dimensional tight-binding Hamiltonian with position-dependent sinusoidal hopping, and demonstrate the formation of synthetic horizons where electronic wave packets exhibit exponential slowdown. Interestingly, using the exact transformation between this model and the Harper equation, we find that analogous semiclassical horizons can emerge in a quantum Hall setup within the Harper-equation representation and at half filling for specific values of the magnetic flux. The Harper equation describes the eigenstates of a square-lattice tight-binding model subjected to a perpendicular magnetic field, as a family of one-dimensional problems parametrized by a conserved transverse quasimomentum. We demonstrate the correspondence between the sine and Harper models by comparing their semiclassical phase-space portraits and by numerically studying wave-packet dynamics in both models. Furthermore, by applying sudden quenches to the sine model's hopping profile, we observe the emergence of states with an effective thermal Fermi-Dirac distribution characterized by a corresponding Unruh temperature. Our numerical calculations reveal a nonuniversal behavior of this temperature, suggesting the involvement of mechanisms beyond a simple low-energy description.

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