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Floquet prethermalization and regimes of heating in a periodically driven interacting quantum system

机译:周期性驱动的相互作用量子系统中的浮球预热和加热方式

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摘要

We study the regimes of heating in the periodically driven O(N)-model, which is a well established model for interacting quantum many-body systems. By computing the absorbed energy with a non-equilibrium Keldysh Green’s function approach, we establish three dynamical regimes: at short times a single-particle dominated regime, at intermediate times a stable Floquet prethermal regime in which the system ceases to absorb, and at parametrically late times a thermalizing regime. Our simulations suggest that in the thermalizing regime the absorbed energy grows algebraically in time with an exponent that approaches the universal value of 1/2, and is thus significantly slower than linear Joule heating. Our results demonstrate the parametric stability of prethermal states in a many-body system driven at frequencies that are comparable to its microscopic scales. This paves the way for realizing exotic quantum phases, such as time crystals or interacting topological phases, in the prethermal regime of interacting Floquet systems.
机译:我们研究了周期性驱动的O(N)模型中的加热机制,该模型是一个完善的用于相互作用量子多体系统的模型。通过使用非平衡凯尔迪什·格林函数方法计算吸收的能量,我们建立了三种动力学机制:在短时间内为单粒子为主的机制,在中间时间为系统停止吸收的稳定的Floquet预热机制,以及在参数上晚期是一种热化制度。我们的模拟表明,在热化过程中,吸收的能量随时间以代数形式增长,其指数接近普遍值1/2,因此比线性焦耳加热慢得多。我们的结果证明了在多体系统中预热态的参数稳定性,该系统以与其微观尺度相当的频率驱动。这为在相互作用的Floquet系统的预热状态下实现奇异的量子相(例如时间晶体或相互作用的拓扑相)铺平了道路。

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