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Enhanced spin orbit interaction of light in highly confining optical fibers for mode division multiplexing

机译:用于模式分割多路复用的高度限制光纤中光的增强型旋转轨道相互作用

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Light carries both orbital angular momentum (OAM) and spin angular momentum (SAM), related to wavefront rotation and polarization, respectively. These are usually approximately independent quantities, but they become coupled by light's spin-orbit interaction (SOI) in certain exotic geometries and at the nanoscale. Here we reveal a manifestation of strong SOI in fibers engineered at the micro-scale and supporting the only known example of propagating light modes with non-integer mean OAM. This enables propagation of a record number (24) of states in a single optical fiber with low cross-talk (purity??93%), even as tens-of-meters long fibers are bent, twisted or otherwise handled, as fibers are practically deployed. In addition to enabling the investigation of novel SOI effects, these light states represent the first ensemble with which mode count can be potentially arbitrarily scaled to satisfy the exponentially growing demands of high-performance data centers and supercomputers, or telecommunications network nodes.
机译:光携带轨道角动量(OAM)和旋转角动量(SAM),分别与波前旋转和极化相关。这些通常大约是独立的数量,但它们在某些异乎寻常的几何形状和纳米级上的光的旋转轨道相互作用(SOI)耦合。在这里,我们揭示了在微尺度设计的纤维中强壮的SOI的表现,并支持具有非整数平均OAM的唯一已知的传播光模式的示例。这使得能够在单个光纤中传播状态的状态(24),其具有低交叉口(纯度?> 93%),即使长度长纤维弯曲,扭曲或以其他方式处理,如纤维实际部署。除了实现新型SOI效果的调查之外,这些光源还代表了第一款,其中模式计数可能是潜在任意扩展的,以满足高性能数据中心和超级计算机的指数增长,或电信网络节点。

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