论文标题

具有高阶分散的超流体中的冲击波

Shock Waves in a Superfluid with Higher-Order Dispersion

论文作者

Mossman, Maren E., Delikatny, Edward S., Forbes, Michael McNeil, Engels, Peter

论文摘要

高阶分散会导致有趣的动态,这成为现代流体动力学研究的重点。这种系统自然发生,例如,在浅水波和非线性光学元件中,已经确定了几种类型的新型分散冲击结构。在这里,我们将Ultracold Atoms作为高阶系统的可调量子模拟平台。简并量子气体是对超氟化物分散流体动力学实验研究的良好控制模型系统,已用于研究现象,例如涡流,孤子,分散性冲击波和量子湍流。随着拉曼诱导的自旋轨道耦合的出现,可以灵活地修改稀释的气体阳离子冷凝水的分散体,从而详细研究高阶分散动力学。在这里,我们介绍了这种系统中产生的冲击结构的合并实验和理论研究。旋转轨道耦合使伽利略不变性破裂允许两种不同类型的冲击结构在单个系统中同时出现。数值模拟表明,由于系统中潜在的量子湍流,这些冲击结构的行为受到与涡流相互作用的影响。该结果表明,自旋轨道耦合可以用作强大的手段,以在冷原子实验中作为湍流流体动力学的量子模拟器进行有效粘度,并采用凝结物和光学的应用到中子星的量子模拟。

Higher-order dispersion can lead to intriguing dynamics that are becoming a focus of modern hydrodynamics research. Such systems occur naturally, for example in shallow water waves and nonlinear optics, for which several types of novel dispersive shocks structures have been identified. Here we introduce ultracold atoms as a tunable quantum simulations platform for higher-order systems. Degenerate quantum gases are well controlled model systems for the experimental study of dispersive hydrodynamics in superfluids and have been used to investigate phenomena such as vortices, solitons, dispersive shock waves and quantum turbulence. With the advent of Raman-induced spin-orbit coupling, the dispersion of a dilute gas Bose-Einstein condensate can be modified in a flexible way, allowing for detailed investigations of higher-order dispersion dynamics. Here we present a combined experimental and theoretical study of shock structures generated in such a system. The breaking of Galilean invariance by the spin-orbit coupling allows two different types of shock structures to emerge simultaneously in a single system. Numerical simulations suggest that the behavior of these shock structures is affected by interactions with vortices in a manner reminiscent of emerging viscous hydrodynamics due to an underlying quantum turbulence in the system. This result suggests that spin-orbit coupling can be used as a powerful means to tun the effective viscosity in cold-atom experiments serving as quantum simulators of turbulent hydrodynamics, with applications from condensed matter and optics to quantum simulations of neutron stars.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源