Non-equilibrium critical scaling and universality in a quantum simulator

Fuente: arXiv
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Autores principales: De, Arinjoy, Cook, Patrick, Ali, Mostafa, Collins, Kate, Morong, William, Paz, Daniel, Titum, Paraj, Pagano, Guido, Gorshkov, Alexey V., Maghrebi, Mohammad, Monroe, CHristopher
Formato: Preprint
Publicado: 2023
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author De, Arinjoy
Cook, Patrick
Ali, Mostafa
Collins, Kate
Morong, William
Paz, Daniel
Titum, Paraj
Pagano, Guido
Gorshkov, Alexey V.
Maghrebi, Mohammad
Monroe, CHristopher
author_facet De, Arinjoy
Cook, Patrick
Ali, Mostafa
Collins, Kate
Morong, William
Paz, Daniel
Titum, Paraj
Pagano, Guido
Gorshkov, Alexey V.
Maghrebi, Mohammad
Monroe, CHristopher
contents Universality and scaling laws are hallmarks of equilibrium phase transitions and critical phenomena. However, extending these concepts to non-equilibrium systems is an outstanding challenge. Despite recent progress in the study of dynamical phases, the universality classes and scaling laws for non-equilibrium phenomena are far less understood than those in equilibrium. In this work, using a trapped-ion quantum simulator with single-spin resolution, we investigate the non-equilibrium nature of critical fluctuations following a quantum quench to the critical point. We probe the scaling of spin fluctuations after a series of quenches to the critical Hamiltonian of a long-range Ising model. With systems of up to 50 spins, we show that the amplitude and timescale of the post-quench fluctuations scale with system size with distinct universal critical exponents, depending on the quench protocol. While a generic quench can lead to thermal critical behavior, we find that a second quench from one critical state to another (i.e.~a double quench) results in a new universal non-equilibrium behavior, identified by a set of critical exponents distinct from their equilibrium counterparts. Our results demonstrate the ability of quantum simulators to explore universal scaling beyond equilibrium.
format Preprint
id arxiv_https___arxiv_org_abs_2309_10856
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Non-equilibrium critical scaling and universality in a quantum simulator
De, Arinjoy
Cook, Patrick
Ali, Mostafa
Collins, Kate
Morong, William
Paz, Daniel
Titum, Paraj
Pagano, Guido
Gorshkov, Alexey V.
Maghrebi, Mohammad
Monroe, CHristopher
Quantum Physics
Quantum Gases
Atomic Physics
Universality and scaling laws are hallmarks of equilibrium phase transitions and critical phenomena. However, extending these concepts to non-equilibrium systems is an outstanding challenge. Despite recent progress in the study of dynamical phases, the universality classes and scaling laws for non-equilibrium phenomena are far less understood than those in equilibrium. In this work, using a trapped-ion quantum simulator with single-spin resolution, we investigate the non-equilibrium nature of critical fluctuations following a quantum quench to the critical point. We probe the scaling of spin fluctuations after a series of quenches to the critical Hamiltonian of a long-range Ising model. With systems of up to 50 spins, we show that the amplitude and timescale of the post-quench fluctuations scale with system size with distinct universal critical exponents, depending on the quench protocol. While a generic quench can lead to thermal critical behavior, we find that a second quench from one critical state to another (i.e.~a double quench) results in a new universal non-equilibrium behavior, identified by a set of critical exponents distinct from their equilibrium counterparts. Our results demonstrate the ability of quantum simulators to explore universal scaling beyond equilibrium.
title Non-equilibrium critical scaling and universality in a quantum simulator
topic Quantum Physics
Quantum Gases
Atomic Physics
url https://arxiv.org/abs/2309.10856