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孤立量子系统无碰撞预热态中的动力学相变:理论与实验

Dynamical phase transitions in the collisionless pre-thermal states of isolated quantum systems: theory and experiments.

作者信息

Marino Jamir, Eckstein Martin, Foster Matthew S, Rey Ana Maria

机构信息

Institut für Physik, Johannes Gutenberg-Universität Mainz, D-55099 Mainz, Germany.

Department of Physics, University of Erlangen-Nürnberg, 91058 Erlangen, Germany.

出版信息

Rep Prog Phys. 2022 Oct 19;85(11). doi: 10.1088/1361-6633/ac906c.

Abstract

We overview the concept of dynamical phase transitions (DPTs) in isolated quantum systems quenched out of equilibrium. We focus on non-equilibrium transitions characterized by an order parameter, which features qualitatively distinct temporal behavior on the two sides of a certain dynamical critical point. DPTs are currently mostly understood as long-lived prethermal phenomena in a regime where inelastic collisions are incapable to thermalize the system. The latter enables the dynamics to substain phases that explicitly break detailed balance and therefore cannot be encompassed by traditional thermodynamics. Our presentation covers both cold atoms as well as condensed matter systems. We revisit a broad plethora of platforms exhibiting pre-thermal DPTs, which become theoretically tractable in a certain limit, such as for a large number of particles, large number of order parameter components, or large spatial dimension. The systems we explore include, among others, quantum magnets with collective interactions,quantum field theories, and Fermi-Hubbard models. A section dedicated to experimental explorations of DPTs in condensed matter and AMO systems connects this large variety of theoretical models.

摘要

我们概述了处于非平衡态猝灭的孤立量子系统中的动力学相变(DPT)概念。我们关注以序参量为特征的非平衡相变,序参量在某个动力学临界点两侧具有定性不同的时间行为。目前,DPT大多被理解为在非弹性碰撞无法使系统热化的 regime 中的长寿命预热现象。后者使动力学能够维持明确打破细致平衡的相,因此不能被传统热力学所涵盖。我们的介绍涵盖了冷原子以及凝聚态物质系统。我们重新审视了大量表现出预热DPT的平台,这些平台在一定极限下在理论上变得易于处理,例如对于大量粒子、大量序参量分量或大空间维度的情况。我们探索的系统包括具有集体相互作用的量子磁体、量子场论和费米 - 哈伯德模型等。专门讨论凝聚态物质和原子分子光学(AMO)系统中DPT实验探索的一节将这众多的理论模型联系起来。

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