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Light-cone-like spreading of correlations in a quantum many-body system

机译:量子多体系统中相关性的光锥状扩展

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摘要

In relativistic quantum field theory, information propagation is bounded by the speed of light. No such limit exists in the non-relativistic case, although in real physical systems, short-range interactions may be expected to restrict the propagation of information to finite velocities. The question of how fast correlations can spread in quantum many-body systems has been long studied1. The existence of a maximal velocity, known as the Lieb-Robinson bound, has been shown theoretically to exist in several interacting many-body systems (for example, spins on a lattice2"5)— such systems can be regarded as exhibiting an effective light cone that bounds the propagation speed of correlations. The existence of such a 'speed of light' has profound implications for condensed matter physics and quantum information, but has not been observed experimentally. Here we report the time-resolved detection of propagating correlations in an interacting quantum many-body system. By quenching a one-dimensional quantum gas in an optical lattice, we reveal how quasiparticle pairs transport correlations with a finite velocity across the system, resulting in an effective light cone for the quantum dynamics. Our results open perspectives for understanding the relaxation of closed quantum systems far from equilibrium~6, and for engineering the efficient quantum channels necessary for fast quantum computations~7.
机译:在相对论量子场论中,信息传播受到光速的限制。在非相对论的情况下,没有这样的限制,尽管在实际的物理系统中,短距离的相互作用可能会限制信息传播到有限的速度。关于快速相关性如何在量子多体系统中传播的问题已进行了长期研究1。理论上已证明存在一个最大速度,称为李布罗宾逊界,它存在于几个相互作用的多体系统中(例如,在晶格2“ 5上的自旋)-这样的系统可以被视为展现出有效的光这样的“光速”的存在对凝聚态物理和量子信息具有深远的影响,但尚未通过实验观察到,在此我们报告了时间分辨的传播相关性检测。相互作用的量子多体系统。通过淬灭光学晶格中的一维量子气体,我们揭示了准粒子对如何以有限的速度在系统中传输相关性,从而为量子动力学提供了有效的光锥。为了了解封闭量子系统远离平衡〜6的弛豫,以及设计快速量子所需的有效量子通道um计算〜7。

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  • 来源
    《Nature》 |2012年第7382期|p.484-487|共4页
  • 作者单位

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.;

    Departement de physique theorique, Universite de Geneve, 1211 Geneve, Switzerland.;

    Departement de physique theorique, Universite de Geneve, 1211 Geneve, Switzerland.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.,Ludwig-Maximilians-Universitat, 80799 Munchen, Germany.;

    Departement de physique theorique, Universite de Geneve, 1211 Geneve, Switzerland.,Centre de physique theorique, Ecole Polytechnique, CNRS, 91128 Palaiseau, France.;

    Max-Planck-lnstitut fur Quantenoptik, 85748 Garching, Germany.,University of Strathclyde, SUPA, Glasgow G4 ONG, UK;

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