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Direct measurement of polariton-polariton interaction strength in the Thomas-Fermi regime of exciton-polariton condensation

机译:在激子-极化子凝聚的托马斯-费米状态下直接测量极化子-极化子相互作用强度

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摘要

Bosonic condensates of exciton polaritons (light-matter quasiparticles in a semiconductor) provide a solid-state platform for studies of nonequilibrium quantum systems with a spontaneous macroscopic coherence. These driven, dissipative condensates typically coexist and interact with an incoherent reservoir, which undermines measurements of key parameters of the condensate. Here, we overcome this limitation by creating a high-density exciton-polariton condensate in an optically induced box trap. In this so-called Thomas-Fermi regime, the condensate is fully separated from the reservoir and its behavior is dominated by interparticle interactions. We use this regime to directly measure the polariton-polariton interaction strength, and reduce the existing uncertainty in its value from four orders of magnitude to within three times the theoretical prediction. The Thomas-Fermi regime has previously been demonstrated only in ultracold atomic gases in thermal equilibrium. In a nonequilibrium exciton-polariton system, this regime offers a novel opportunity to study interaction-driven effects unmasked by an incoherent reservoir.
机译:激子极化子(半导体中的轻质准粒子)的硼酸缩合物为研究具有自发宏观相干性的非平衡量子系统提供了固态平台。这些驱散的耗散凝结水通常共存并与非相干储层相互作用,这破坏了凝结水关键参数的测量。在这里,我们通过在光诱导盒阱中产生高密度激子-极化子冷凝物来克服此限制。在这种所谓的托马斯-费米状态下,凝结水从储层中完全分离出来,其行为受颗粒间相互作用的支配。我们使用这种机制直接测量极化子-极化子的相互作用强度,并将其值的现有不确定性从四个数量级降低到理论预测值的三倍以内。以前仅在超冷原子气体中达到热平衡时才证明了托马斯-费米制度。在非平衡激子-极化子系统中,这种机制提供了一个新的机会来研究由非相干储层所掩盖的相互作用驱动的效应。

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  • 来源
    《Physical review 》 |2019年第3期| 035306.1-035306.10| 共10页
  • 作者单位

    Australian Natl Univ, Res Sch Phys & Engn, Arc Ctr Excellence Future Low Energy Elect Techno, Canberra, ACT 2601, Australia|Australian Natl Univ, Res Sch Phys & Engn, Nonlinear Phys Ctr, Canberra, ACT 2601, Australia;

    Tianjin Univ, Inst Mol Plus, Tianjin 300072, Peoples R China;

    Polish Acad Sci, Inst Phys, A Lotinikow 32-46, PL-02668 Warsaw, Poland;

    Australian Natl Univ, Res Sch Phys & Engn, Arc Ctr Excellence Future Low Energy Elect Techno, Canberra, ACT 2601, Australia|Australian Natl Univ, Res Sch Phys & Engn, Nonlinear Phys Ctr, Canberra, ACT 2601, Australia;

    PRESTO, JST, 4-1-8 Honcho, Kawaguchi, Saitama 3320012, Japan|RIKEN, Ctr Emergent Matter Sci, Quantum Funct Syst Res Grp, 2-1 Hirosawa, Wako, Saitama 3510198, Japan;

    Natl Renewable Energy Lab, Golden, CO 80401 USA;

    Princeton Univ, Princeton Inst Sci & Technol Mat PRISM, Princeton, NJ 08544 USA;

    Princeton Univ, Dept Elect Engn, Princeton, NJ 08544 USA;

    Monash Univ, Arc Ctr Excellence Future Low Energy Elect Techno, Melbourne, Vic 3800, Australia|Monash Univ, Sch Phys & Astron, Melbourne, Vic 3800, Australia;

    Monash Univ, Arc Ctr Excellence Future Low Energy Elect Techno, Melbourne, Vic 3800, Australia|Monash Univ, Sch Phys & Astron, Melbourne, Vic 3800, Australia;

    Nanyang Technol Univ, Div Phys & Appl Phys, Singapore, Singapore;

    Polish Acad Sci, Inst Phys, A Lotinikow 32-46, PL-02668 Warsaw, Poland;

    Univ Pittsburgh, Dept Phys & Astron, Pittsburgh, PA 15260 USA;

    Australian Natl Univ, Res Sch Phys & Engn, Laser Phys Ctr, Canberra, ACT 2601, Australia;

    Australian Natl Univ, Res Sch Phys & Engn, Arc Ctr Excellence Future Low Energy Elect Techno, Canberra, ACT 2601, Australia|Australian Natl Univ, Res Sch Phys & Engn, Nonlinear Phys Ctr, Canberra, ACT 2601, Australia;

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