Interaction-enabled metal-insulator phase transition in a driven quantum gas

Fuente: arXiv
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Main Authors: Cantillano, Camilo, Ramanathan, Karthick, Chen, Zekai, Yang, Ang, Aguilera-Valdes, Emilio, Ying, Lei, Landini, Manuele, Nägerl, Hanns-Christoph, Guo, Yanliang
Format: Preprint
Published: 2026
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author Cantillano, Camilo
Ramanathan, Karthick
Chen, Zekai
Yang, Ang
Aguilera-Valdes, Emilio
Ying, Lei
Landini, Manuele
Nägerl, Hanns-Christoph
Guo, Yanliang
author_facet Cantillano, Camilo
Ramanathan, Karthick
Chen, Zekai
Yang, Ang
Aguilera-Valdes, Emilio
Ying, Lei
Landini, Manuele
Nägerl, Hanns-Christoph
Guo, Yanliang
contents Particle transport and energy flow are central for our understanding of a wealth of phenomena in physics and the natural sciences. Interactions are generically expected to promote ergodicity and diffusive behavior, yet quantum interference can arrest transport and prevent energy absorption, defying classical expectations. How interactions and quantum coherence compete remains a fundamental open question. Here, we experimentally investigate their interplay in a periodically driven, three-dimensional (3D) quantum gas with tunable interactions. Strikingly, we find that interactions give rise to a sharp dynamical boundary that separates localization from diffusive energy absorption. By tuning the driving amplitude and interaction strength, we map the localization-delocalization phase diagram and characterize the boundary via finite-time scaling. On the insulating side, we observe many-body dynamical localization (MBDL) for a wide range of parameters, finding arrested transport in momentum space. Near the boundary, transport becomes subdiffusive, whereas in the delocalized regime we observe classical diffusion, yielding a metal-insulator transition that we interpret in terms of localization in many-body Hilbert space. Our results exemplify an interaction-enabled dynamical phase transition in a closed Floquet many-body system and clarify how coherence and interactions jointly govern the quantum-to-classical transition.
format Preprint
id arxiv_https___arxiv_org_abs_2605_22449
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Interaction-enabled metal-insulator phase transition in a driven quantum gas
Cantillano, Camilo
Ramanathan, Karthick
Chen, Zekai
Yang, Ang
Aguilera-Valdes, Emilio
Ying, Lei
Landini, Manuele
Nägerl, Hanns-Christoph
Guo, Yanliang
Quantum Gases
Particle transport and energy flow are central for our understanding of a wealth of phenomena in physics and the natural sciences. Interactions are generically expected to promote ergodicity and diffusive behavior, yet quantum interference can arrest transport and prevent energy absorption, defying classical expectations. How interactions and quantum coherence compete remains a fundamental open question. Here, we experimentally investigate their interplay in a periodically driven, three-dimensional (3D) quantum gas with tunable interactions. Strikingly, we find that interactions give rise to a sharp dynamical boundary that separates localization from diffusive energy absorption. By tuning the driving amplitude and interaction strength, we map the localization-delocalization phase diagram and characterize the boundary via finite-time scaling. On the insulating side, we observe many-body dynamical localization (MBDL) for a wide range of parameters, finding arrested transport in momentum space. Near the boundary, transport becomes subdiffusive, whereas in the delocalized regime we observe classical diffusion, yielding a metal-insulator transition that we interpret in terms of localization in many-body Hilbert space. Our results exemplify an interaction-enabled dynamical phase transition in a closed Floquet many-body system and clarify how coherence and interactions jointly govern the quantum-to-classical transition.
title Interaction-enabled metal-insulator phase transition in a driven quantum gas
topic Quantum Gases
url https://arxiv.org/abs/2605.22449