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Observation of a Lee-Huang-Yang Fluid

机译:观察李黄洋液

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摘要

We observe monopole oscillations in a mixture of Bose-Einstein condensates, where the usually dominant mean-field interactions are canceled. In this case, the system is governed by the next-order Lee-Huang-Yang (LHY) correction to the ground state energy, which describes the effect of quantum fluctuations. Experimentally such a LHY fluid is realized by controlling the atom numbers and interaction strengths in a K-39 spin mixture confined in a spherical trap potential. We measure the monopole oscillation frequency as a function of the LHY interaction strength as proposed recently by Jrgensen et al. [Phys. Rev. Lett. 121, 173403 (2018)] and find excellent agreement with simulations of the complete experiment including the excitation procedure and inelastic losses. This confirms that the system and its collective behavior are initially dominated by LHY interactions. Moreover, the monopole oscillation frequency is found to be stable against variations of the involved scattering lengths in a broad region around the ideal values, confirming the stabilizing effect of the LHY interaction. These results pave the way for using the nonlinearity provided by the LHY term in quantum simulation experiments and for investigations beyond the LHY regime.
机译:我们观察到Bose-Einstein缩合物的混合物中的单极振荡,其中通常取消了通常显性的平均场相互作用。在这种情况下,该系统受到对地状态能量的下一个lee-huang-yang(lhy)校正的管辖,这描述了量子波动的效果。通过控制在球面阱电位中限制的K-39旋转混合物中的原子数和相互作用强度来实现这样的这种瘦液。我们测量单极振荡频率,作为Jrgensen等人最近提出的Lhy相互作用强度的函数。 [物理。 rev. lett。 121,173403(2018)]并找到与完整实验的模拟的良好协议,包括励磁程序和非弹性损失。这证实了系统及其集体行为最初由LHY相互作用主导。此外,发现单极振荡频率在理想值周围的宽区域中涉及散射长度的变化是稳定的,确认LHY相互作用的稳定效果。这些结果为使用量子模拟实验中的LHY术语提供的非线性铺平了方法,并进行了超出LHY制度的调查。

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  • 来源
    《Physical review letters》 |2021年第23期|230404.1-230404.5|共5页
  • 作者单位

    Aarhus Univ Ctr Complex Quantum Syst Dept Phys & Astron Ny Munkegade 120 DK-8000 Aarhus C Denmark;

    Aarhus Univ Ctr Complex Quantum Syst Dept Phys & Astron Ny Munkegade 120 DK-8000 Aarhus C Denmark;

    Aarhus Univ Ctr Complex Quantum Syst Dept Phys & Astron Ny Munkegade 120 DK-8000 Aarhus C Denmark;

    Aarhus Univ Ctr Complex Quantum Syst Dept Phys & Astron Ny Munkegade 120 DK-8000 Aarhus C Denmark;

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