Floquet Superheating

Fuente: arXiv
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Bibliographic Details
Main Authors: Hou, Yang, Pizzi, Andrea, Jin, Huike, Knolle, Johannes, Moessner, Roderich, Zhao, Hongzheng
Format: Preprint
Published: 2025
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_version_ 1866911269003460608
author Hou, Yang
Pizzi, Andrea
Jin, Huike
Knolle, Johannes
Moessner, Roderich
Zhao, Hongzheng
author_facet Hou, Yang
Pizzi, Andrea
Jin, Huike
Knolle, Johannes
Moessner, Roderich
Zhao, Hongzheng
contents Periodically driven many-body systems generally heat towards a featureless 'infinite-temperature' state. As an alternative to uniform heating in a clean system, here we establish a Floquet superheating regime, where fast heating nucleates at ''hot spots" generated by rare fluctuations in the local energy with respect to an appropriate effective Hamiltonian. Striking macroscopic consequences include exceptionally long-lived prethermalization and non-ergodic bimodal distributions of macroscopic observables. Superheating is predicated on a heating rate depending strongly on the local fluctuation; in our example, this is supplied by a sharp state-selective spin-echo, where the energy absorption is strongly suppressed for low-energy states, while thermal fluctuations open up excessive heating channels. A simple phenomenological theory is developed to show the existence of a critical droplet size, which incorporates heating by the driving field as well as the heat current out of the droplet. Our results shine light on a new heating mechanism and suggest new routes towards stabilizing non-equilibrium phases of matter in driven systems.
format Preprint
id arxiv_https___arxiv_org_abs_2511_12877
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Floquet Superheating
Hou, Yang
Pizzi, Andrea
Jin, Huike
Knolle, Johannes
Moessner, Roderich
Zhao, Hongzheng
Statistical Mechanics
Quantum Gases
Quantum Physics
Periodically driven many-body systems generally heat towards a featureless 'infinite-temperature' state. As an alternative to uniform heating in a clean system, here we establish a Floquet superheating regime, where fast heating nucleates at ''hot spots" generated by rare fluctuations in the local energy with respect to an appropriate effective Hamiltonian. Striking macroscopic consequences include exceptionally long-lived prethermalization and non-ergodic bimodal distributions of macroscopic observables. Superheating is predicated on a heating rate depending strongly on the local fluctuation; in our example, this is supplied by a sharp state-selective spin-echo, where the energy absorption is strongly suppressed for low-energy states, while thermal fluctuations open up excessive heating channels. A simple phenomenological theory is developed to show the existence of a critical droplet size, which incorporates heating by the driving field as well as the heat current out of the droplet. Our results shine light on a new heating mechanism and suggest new routes towards stabilizing non-equilibrium phases of matter in driven systems.
title Floquet Superheating
topic Statistical Mechanics
Quantum Gases
Quantum Physics
url https://arxiv.org/abs/2511.12877