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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Electrodynamic duality and vortex unbinding in driven-dissipative condensates
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Electrodynamic duality and vortex unbinding in driven-dissipative condensates

机译:驱动耗散性冷凝物中的电对偶性和涡旋解开

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摘要

We investigate the superfluid properties of two-dimensional driven Bose liquids, such as polariton condensates, using their long-wavelength description in terms of a compact Kardar-Parisi-Zhang (KPZ) equation for the phase dynamics. We account for topological defects (vortices) in the phase field through a duality mapping between the compact KPZ equation and a theory of nonlinear electrodynamics coupled to charges. Using the dual theory, we derive renormalization group equations that describe vortex unbinding in these media. When the nonequilibirum drive is turned off, the KPZ nonlinearity X vanishes and the RG flow gives the usual Kosterlitz-Thouless (KT) transition. On the other hand, with nonlinearity k > 0 vortices always unbind, even if the same system with k = 0 is superfluid. We predict the finite-size scaling behavior of the superfluid stiffness in the crossover governed by vortex unbinding showing its clear distinction from the scaling associated with the KT transition.
机译:我们根据二维Karose-Parisi-Zhang(KPZ)方程的相态动力学,使用其长波长描述,研究了二维驱动的玻色液体(例如极化子冷凝物)的超流体性质。我们通过紧凑的KPZ方程和耦合电荷的非线性电动力学理论之间的对偶映射,解决了相场中的拓扑缺陷(旋涡)。使用对偶理论,我们得出了重归一化组方程,这些方程描述了这些介质中的涡旋解除。当非平衡驱动器关闭时,KPZ非线性X消失,RG流动产生通常的Kosterlitz-Thouless(KT)过渡。另一方面,即使k = 0的同一个系统是超流体,在非线性k> 0的情况下,涡旋也总是解开的。我们预测了超流体刚度在涡旋解开控制下的有限尺寸尺度行为,表明其与与KT跃迁相关的尺度明显不同。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第10期|104520.1-104520.20|共20页
  • 作者单位

    Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot 7610001, Israel,Department of Physics, University of Toronto, Toronto, Ontario, Canada M5S 1A7;

    Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot 7610001, Israel,Department of Physics, University of California, Berkeley, California 94720, USA;

    Institute of Theoretical Physics, University of Cologne, D-50937 Cologne, Germany;

    Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot 7610001, Israel,Department of Physics, University of California, Berkeley, California 94720, USA;

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