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Main Authors: Puente-Uriona, Álvaro R., Pettini, Giulio, Modugno, Michele
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2402.12113
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author Puente-Uriona, Álvaro R.
Pettini, Giulio
Modugno, Michele
author_facet Puente-Uriona, Álvaro R.
Pettini, Giulio
Modugno, Michele
contents We present a direct comparison between the stroboscopic and non-stroboscopic effective approaches for ultracold atoms in shaken honeycomb lattices, focusing specifically on the optimal driving introduced by A. Verdeny and F. Mintert [Phys. Rev. A 92, 063615 (2015)]. In the fast-driving regime, we compare the effective non-stroboscopic Hamiltonian derived through a perturbative expansion with a non-perturbative calculation of the stroboscopic Floquet Hamiltonian, obtained through a simple non-perturbative numerical approach. We show that while some of the tunneling parameters are inherently model-dependent, the topological properties of the system remains robust, as expected. Using the same numerical approach we compute the topological phase diagram, arguing that it is most effectively represented in terms of the physical parameters characterizing the driving and the bare Hamiltonian -- parameters directly accessible in experiments -- rather than the emergent tunneling parameters, that depend on the model representation.
format Preprint
id arxiv_https___arxiv_org_abs_2402_12113
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Topological Phase Diagram of Optimally Shaken Honeycomb Lattices: A Dual Perspective from Stroboscopic and Non-Stroboscopic Floquet Hamiltonians
Puente-Uriona, Álvaro R.
Pettini, Giulio
Modugno, Michele
Quantum Gases
We present a direct comparison between the stroboscopic and non-stroboscopic effective approaches for ultracold atoms in shaken honeycomb lattices, focusing specifically on the optimal driving introduced by A. Verdeny and F. Mintert [Phys. Rev. A 92, 063615 (2015)]. In the fast-driving regime, we compare the effective non-stroboscopic Hamiltonian derived through a perturbative expansion with a non-perturbative calculation of the stroboscopic Floquet Hamiltonian, obtained through a simple non-perturbative numerical approach. We show that while some of the tunneling parameters are inherently model-dependent, the topological properties of the system remains robust, as expected. Using the same numerical approach we compute the topological phase diagram, arguing that it is most effectively represented in terms of the physical parameters characterizing the driving and the bare Hamiltonian -- parameters directly accessible in experiments -- rather than the emergent tunneling parameters, that depend on the model representation.
title Topological Phase Diagram of Optimally Shaken Honeycomb Lattices: A Dual Perspective from Stroboscopic and Non-Stroboscopic Floquet Hamiltonians
topic Quantum Gases
url https://arxiv.org/abs/2402.12113