Rahmani Amir, Colas David, Voronova Nina, Jamshidi-Ghaleh Kazem, Dominici Lorenzo, Laussy Fabrice P
Department of Physics, Azarbaijan Shahid Madani University, Tabriz, Iran.
Aix Marseille Université, CNRS, Centrale Marseille, LMA UMR 7031 Marseille, France.
Nanophotonics. 2022 May 9;11(12):2909-2919. doi: 10.1515/nanoph-2022-0108. eCollection 2022 Jun.
Quantum vortices are the quantized version of classical vortices. Their center is a phase singularity or vortex core around which the flow of particles as a whole circulates and is typical in superfluids, condensates and optical fields. However, the exploration of the motion of the phase singularities in coherently-coupled systems is still underway. We theoretically analyze the propagation of an interference dislocation in the regime of strong coupling between light and matter, with strong mass imbalance, corresponding to the case of microcavity exciton-polaritons. To this end, we utilize combinations of vortex and tightly focused Gaussian beams, which are introduced through resonant pulsed pumping. We show that a dislocation originates from self-interference fringes, due to the non-parabolic dispersion of polaritons combined with moving Rabi-oscillating vortices. The morphology of singularities is analyzed in the Poincaré space for the pseudospin associated to the polariton states. The resulting beam carries orbital angular momentum with decaying oscillations due to the loss of spatial overlap between the normal modes of the polariton system.
量子涡旋是经典涡旋的量子化形式。它们的中心是一个相位奇点或涡旋核,围绕该奇点,粒子流整体循环,这在超流体、凝聚态和光场中很典型。然而,对相干耦合系统中相位奇点运动的探索仍在进行中。我们从理论上分析了在光与物质强耦合、质量不平衡较大的 regime 下干涉位错的传播,这对应于微腔激子 - 极化激元的情况。为此,我们利用涡旋光束和紧聚焦高斯光束的组合,通过共振脉冲泵浦引入这些光束。我们表明,由于极化激元的非抛物色散与移动的拉比振荡涡旋相结合,位错源于自干涉条纹。针对与极化激元态相关的赝自旋,在庞加莱空间中分析了奇点的形态。由于极化激元系统的正常模式之间空间重叠的丧失,所产生的光束携带具有衰减振荡的轨道角动量。