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Parallel transport of fiber mode structure: Orbit-orbit interaction

机译:光纤模式结构的并行传输:轨道轨道互动

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That a paraxial light beam with spin angular momentum (SAM,σ) propagating in a helical trajectory leads to the appearance of Rytov-Vladimirsky-Berry (RVB) phase has been a topic of extensive research for the past several decades. Recently, using geometrical optics approximation, it was shown that variations in the beam propagation direction leads to generic parallel transport law - a beam with intrinsic orbital angular momentum (IOAM, l) behaves topologically similar to polarized beam containing only SAM but of magnitude proportional to the total angular momentum TAM = l ± σ. By considering the interaction of a beam with IOAM, propagating in a non-planar trajectory and hence with extrinsic orbital angular momentum (EOAM), in an inhomogeneous medium we study the parallel transport of fiber mode structure as a manifestation of orbit-orbit interaction. The resulting rotation of the transverse beam structure due to the parallel transport of the LP fiber mode propagating along non-planar ray direction is attributed to the 'orbital' Berry phase. The mode transformation is simulated based on the interference of the vector-vortex modes excited in the TMF. The LP mode rotation angle calculated as a function of the beam position at the fiber input is expected to show topological features that can be mapped onto orbital Poincare sphere.
机译:具有旋转角动量(SAM,σ)在螺旋轨迹中传播的瘫痪光束导致Rytov-Vladimirsky-Berry(RVB)阶段的出现是过去几十年来广泛研究的主题。最近,使用几何光学逼近,示出了光束传播方向的变化导致通用并行传输法 - 具有本质轨道角动量(IOam,L)的光束在拓扑上类似于仅包含山姆的偏振光束而不是与总角度动量Tam = L±σ。通过考虑梁与IOam的相互作用,在非平面轨迹中传播并因此在外部轨道角动量(EOAM)中,在不均匀培养基中,我们研究了纤维模式结构的并联传输作为轨道轨道相互作用的表现。由于LP光纤模式的并行传输沿着非平坦光线方向传播的平行传输而导致的横梁结构归因于“轨道”浆膜。基于TMF中激发的矢量涡流模式的干扰来模拟模式变换。作为光纤输入处的光束位置的函数计算的LP模式旋转角度将显示可以绘制在轨道庞的球体上的拓扑特征。

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