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Thermalization and its mechanism for generic isolated quantum systems

机译:通用孤立量子系统的热化及其机理

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An understanding of the temporal evolution of isolated many-body quantum systems has long been elusive. Recently, meaningful experimental studies of the problem have become possible, stimulating theoretical interest. In generic isolated systems, non-equilibrium dynamics is expected to result in thermalization: a relaxation to states in which the values of macroscopic quantities are stationary, universal with respect to widely differing initial conditions, and predictable using statistical mechanics. However, it is not obvious what feature of many-body quantum mechanics makes quantum thermalization possible in a sense analogous to that in which dynamical chaos makes classical thermalization possible. For example, dynamical chaos itself cannot occur in an isolated quantum system, in which the time evolution is linear and the spectrum is discrete. Some recent studies even suggest that statistical mechanics may give incorrect predictions for the outcomes of relaxation in such systems. Here we demonstrate that a generic isolated quantum many-body system does relax to a state well described by the standard statistical-mechanical prescription. Moreover, we show that time evolution itself plays a merely auxiliary role in relaxation, and that thermalization instead happens at the level of individual eigenstates, as first proposed by Deutsch and Srednicki. A striking consequence of this eigenstate-thermalization scenario, confirmed for our system, is that knowledge of a single many-body eigenstate is sufficient to compute thermal averages-any eigenstate in the microcanonical energy window will do, because they all give the same result.
机译:长期以来,对孤立多体量子系统的时间演化的理解一直难以捉摸。最近,对该问题进行了有意义的实验研究,激发了理论兴趣。在一般的隔离系统中,非平衡动力学有望导致热化:松弛到宏观量值保持稳定,对于广泛不同的初始条件具有普遍性且可以使用统计力学进行预测的状态。然而,在类似于动态混沌使经典热化成为可能的意义上,多体量子力学的什么特征使得量子热化成为可能还不是很明显。例如,动态混沌本身不能在孤立的量子系统中发生,在量子系统中,时间演化是线性的,光谱是离散的。最近的一些研究甚至表明,统计力学可能会对此类系统中的松弛结果给出错误的预测。在这里,我们证明了一个通用的孤立的量子多体系统确实可以放松到标准统计机械处方所描述的状态。此外,我们证明时间演化本身仅在弛豫中起辅助作用,而热化发生在各个本征态的水平上,这是由Deutsch和Srednicki首次提出的。对于我们的系统而言,这种本征态热化场景的一个显着后果是,对单个多体本征态的了解足以计算热均值-微规范能量窗口中的任何本征态都可以做到,因为它们都给出了相同的结果。

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  • 来源
    《Nature》 |2008年第7189期|共页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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