Long-wavelength optical lattices from optical beatnotes: theory and applications

Fuente: arXiv
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Main Authors: Petrucciani, Tommaso, Santoni, Andrea, Mazzinghi, Chiara, Trypogeorgos, Dimitrios, Minardi, Francesco, Fattori, Marco, Modugno, Michele
Format: Preprint
Published: 2025
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author Petrucciani, Tommaso
Santoni, Andrea
Mazzinghi, Chiara
Trypogeorgos, Dimitrios
Minardi, Francesco
Fattori, Marco
Modugno, Michele
author_facet Petrucciani, Tommaso
Santoni, Andrea
Mazzinghi, Chiara
Trypogeorgos, Dimitrios
Minardi, Francesco
Fattori, Marco
Modugno, Michele
contents We present a theoretical analysis of Beat-Note Superlattices (BNSLs), a recently demonstrated technique for generating periodic trapping potentials for ultracold atomic clouds, with arbitrarily large lattice spacings while maintaining interferometric stability. By combining two optical lattices with slightly different wavelengths, a beatnote intensity pattern is formed, generating, for low depths, an effective lattice potential with a periodicity equal to the wavelength associated to the difference between the wavevectors of the two lattices. We study the range of lattice depths and wavelengths under which this approximation is valid and investigate its robustness against perturbations. We present a few examples where the use of BNSLs could offer significant advantages in comparison to well established techniques for the manipulation of ultracold atomic gases. Our results highlight the potential of BNSLs for quantum simulation, atom interferometry, and other applications in quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2504_12831
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Long-wavelength optical lattices from optical beatnotes: theory and applications
Petrucciani, Tommaso
Santoni, Andrea
Mazzinghi, Chiara
Trypogeorgos, Dimitrios
Minardi, Francesco
Fattori, Marco
Modugno, Michele
Quantum Gases
Atomic Physics
Quantum Physics
We present a theoretical analysis of Beat-Note Superlattices (BNSLs), a recently demonstrated technique for generating periodic trapping potentials for ultracold atomic clouds, with arbitrarily large lattice spacings while maintaining interferometric stability. By combining two optical lattices with slightly different wavelengths, a beatnote intensity pattern is formed, generating, for low depths, an effective lattice potential with a periodicity equal to the wavelength associated to the difference between the wavevectors of the two lattices. We study the range of lattice depths and wavelengths under which this approximation is valid and investigate its robustness against perturbations. We present a few examples where the use of BNSLs could offer significant advantages in comparison to well established techniques for the manipulation of ultracold atomic gases. Our results highlight the potential of BNSLs for quantum simulation, atom interferometry, and other applications in quantum technologies.
title Long-wavelength optical lattices from optical beatnotes: theory and applications
topic Quantum Gases
Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2504.12831