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Interactions and scattering of quantum vortices in a polariton fluid

机译:极化子流体中量子涡的相互作用和散射

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摘要

Quantum vortices, the quantized version of classical vortices, play a prominent role in superfluid and superconductor phase transitions. However, their exploration at a particle level in open quantum systems has gained considerable attention only recently. Here we study vortex pair interactions in a resonant polariton fluid created in a solid-state microcavity. By tracking the vortices on picosecond time scales, we reveal the role of nonlinearity, as well as of density and phase gradients, in driving their rotational dynamics. Such effects are also responsible for the split of composite spin–vortex molecules into elementary half-vortices, when seeding opposite vorticity between the two spinorial components. Remarkably, we also observe that vortices placed in close proximity experience a pull–push scenario leading to unusual scattering-like events that can be described by a tunable effective potential. Understanding vortex interactions can be useful in quantum hydrodynamics and in the development of vortex-based lattices, gyroscopes, and logic devices.
机译:量子涡旋是经典涡旋的量化形式,在超流体和超导体相变中起着重要作用。但是,直到最近,他们在开放量子系统中的粒子级探索才获得了相当大的关注。在这里,我们研究在固态微腔中产生的共振极化子流体中的涡对相互作用。通过在皮秒时间尺度上跟踪涡旋,我们揭示了非线性以及密度和相位梯度在驱动其旋转动力学中的作用。当在两个脊椎成分之间注入相反的涡度时,这种效应还导致复合的自旋涡旋分子分裂成基本的半旋涡。值得注意的是,我们还观察到紧邻放置的涡流会经历拉-推的情况,从而导致异常的类似散射的事件,这些事件可以用可调的有效电位来描述。了解涡旋相互作用在量子流体动力学以及基于涡旋的晶格,陀螺仪和逻辑设备的开发中可能很有用。

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