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Observation of prethermalization in long-range interacting spin chains

机译:远距离相互作用的自旋链中预热的观察

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摘要

Although statistical mechanics describes thermal equilibrium states, these states may or may not emerge dynamically for a subsystem of an isolated quantum many-body system. For instance, quantum systems that are near-integrable usually fail to thermalize in an experimentally realistic time scale, and instead relax to quasi-stationary prethermal states that can be described by statistical mechanics, when approximately conserved quantities are included in a generalized Gibbs ensemble (GGE). We experimentally study the relaxation dynamics of a chain of up to 22 spins evolving under a long-range transverse-field Ising Hamiltonian following a sudden quench. For sufficiently long-range interactions, the system relaxes to a new type of prethermal state that retains a strong memory of the initial conditions. However, the prethermal state in this case cannot be described by a standard GGE; it rather arises from an emergent double-well potential felt by the spin excitations. This result shows that prethermalization occurs in a broader context than previously thought, and reveals new challenges for a generic understanding of the thermalization of quantum systems, particularly in the presence of long-range interactions.
机译:尽管统计力学描述了热平衡状态,但是对于孤立的量子多体系统的子系统,这些状态可能会或可能不会动态出现。例如,当广义Gibbs系综中包含大约守恒量时,接近可积的量子系统通常无法在实验上逼真的时间范围内热化,而是放松到可以由统计力学描述的准静态预热态。 GGE)。我们通过实验研究了突然淬灭后,在一个长距离横向场伊辛哈密顿量下演化的多达22个自旋链的弛豫动力学。对于足够长的相互作用,系统会放松到一种新型的预热状态,从而保留对初始条件的强烈记忆。但是,在这种情况下的预热状态不能用标准的GGE来描述。相反,它来自自旋激发所感觉到的新兴的双阱势。该结果表明,预热发生在比以前认为的更广泛的背景下,并揭示了对量子系统热化的一般理解的新挑战,尤其是在存在长距离相互作用的情况下。

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