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首页> 外文期刊>Physical review >Ultracold quantum wires with localized losses: Many-body quantum Zeno effect
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Ultracold quantum wires with localized losses: Many-body quantum Zeno effect

机译:Ultracold量子线具有本地化损耗:多体量子Zeno效果

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We study a one-dimensional system of interacting spinless fermions subject to a localized loss, where the interplay of gapless quantum fluctuations and particle interactions leads to an incarnation of the quantum Zeno effect of genuine many-body nature. This model constitutes a nonequilibrium counterpart of the paradigmatic Kane-Fisher potential barrier problem, and it exhibits strong interaction effects due to the gapless nature of the system. As a central result, we show that the loss probability is strongly renormalized near the Fermi momentum as a realization of the quantum Zeno effect, resulting in a suppression of the emission of particles at the Fermi level. This is reflected in the structure of the particle momentum distribution, exhibiting a peak close to the Fermi momentum. We substantiate these findings by three complementary approaches: a real-space renormalization group of a general microscopic continuum model, a dynamical Hartree-Fock numerical analysis of a microscopic model on a lattice, and a renormalization group analysis based on an effective Luttinger liquid description incorporating mode-coupling effects.
机译:我们研究了经受局部损失的无纺光徒的一维系统,其中无间断量子波动和颗粒相互作用的相互作用导致真正的多体性质的量子Zeno效应的化量。该模型构成了范式Kane-Fisher潜在屏障问题的非预测对应物,并且由于系统的无间隙性,它表现出强烈的相互作用。作为中央结果,我们表明,由于量子Zeno效应的实现,Fermi势头附近的损耗概率强烈地称为损失概率,导致抑制FERMI水平处的颗粒的排放。这反映在粒子动量分布的结构中,表现出靠近费米动量的峰值。我们通过三种互补方法证实了这些发现:一般微观连续体模型的实际空间重整组,一种晶格上的微观模型的动态Hartree-Fock数值分析,以及基于有效leuttinger液体描述的重整组分析模式耦合效果。

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  • 来源
    《Physical review 》 |2020年第14期| 144301.1-144301.24| 共24页
  • 作者单位

    Institute for Theoretical Physics University of Cologne 50937 Cologne Germany;

    Institute for Theoretical Physics University of Cologne 50937 Cologne Germany;

    Physikalisches Institut University of Bonn 53115 Bonn Germany;

    Institute for Theoretical Physics University of Cologne 50937 Cologne Germany;

    Institute for Theoretical Physics University of Cologne 50937 Cologne Germany;

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