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Spin–orbit coupling and nonlinear modes of the polariton condensate in a harmonic trap

机译:谐波陷阱中极化子冷凝物的自旋轨道耦合和非线性模式

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We consider a model of the exciton-polariton condensate based on a system of two Gross–Pitaevskii equations coupled by the second-order differential operator, which represents the spin–orbit coupling in the system. Also included are the linear gain, effective diffusion, nonlinear loss, and the standard harmonic-oscillator trapping potential, as well as the Zeeman splitting. By means of combined analytical and numerical methods, we identify stable two-dimensional modes supported by the nonlinear system. In the absence of the Zeeman splitting, these are mixed modes, which combine zero and nonzero vorticities in each of the two spinor components, and vortex–antivortex complexes. We have also found a range of parameters where the mixed-mode and vortex–antivortex states coexist and are stable. Sufficiently strong Zeeman splitting creates stable semi-vortex states, with vorticities 0 in one component and 2 in the other.
机译:我们考虑一个基于两个Gross-Pitaevskii方程的系统的激子-极化子凝聚体模型,该方程由二阶微分算子耦合,代表系统中的自旋-轨道耦合。还包括线性增益,有效扩散,非线性损耗和标准谐波振荡器的陷获电势以及塞曼分裂。通过结合分析和数值方法,我们确定了非线性系统支持的稳定二维模式。在没有塞曼分裂的情况下,这些是混合模式,在两个旋转子分量的每一个中都将零涡和非零涡以及涡旋-反涡旋复合体结合在一起。我们还发现了混合模式和涡旋-反涡旋状态共存且稳定的一系列参数。足够强的塞曼分裂产生稳定的半涡旋状态,其中一个分量的涡度为0,另一分量的涡度为2。

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