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Unscrambling light—automatically undoing strong mixing between modes

机译:解密光线-自动消除模式之间的强烈混合

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摘要

Propagation of light beams through scattering or multimode systems may lead to the randomization of the spatial coherence of the light. Although information is not lost, its recovery requires a coherent interferometric reconstruction of the original signals, which have been scrambled into the modes of the scattering system. Here we show that we can automatically unscramble optical beams that have been arbitrarily mixed in a multimode waveguide, undoing the scattering and mixing between the spatial modes through a mesh of silicon photonics tuneable beam splitters. Transparent light detectors integrated in a photonic chip are used to directly monitor the evolution of each mode along the mesh, allowing sequential tuning and adaptive individual feedback control of each beam splitter. The entire mesh self-configures automatically through a progressive tuning algorithm and resets itself after significantly perturbing the mixing, without turning off the beams. We demonstrate information recovery by the simultaneous unscrambling, sorting and tracking of four mixed modes, with residual cross-talk of −20 dB between the beams. Circuit partitioning assisted by transparent detectors enables scalability to meshes with a higher port count and to a higher number of modes without a proportionate increase in the control complexity. The principle of self-configuring and self-resetting in optical systems should be applicable in a wide range of optical applications.
机译:通过散射或多模系统的光束传播可能导致光的空间相干性随机化。尽管信息不会丢失,但是要恢复信息,则需要对原始信号进行相干干涉重建,这些原始信号已被加扰到散射系统的模式中。在这里,我们展示了我们可以自动解扰在多模波导中任意混合的光束,通过硅光子可调谐分束器的网格消除空间模式之间的散射和混合。集成在光子芯片中的透明光检测器用于直接监视沿网格的每种模式的演变,从而可以对每个分束器进行顺序调整和自适应的单独反馈控制。整个网格通过渐进式调整算法自动进行自我配置,并在显着扰动混合后自动重置自身,而无需关闭光束。我们通过同时解扰,分类和跟踪四种混合模式演示了信息恢复,波束之间的残留串扰为-20 residualdB。透明检测器辅助的电路划分使可伸缩性扩展到具有更高端口数的网格和更多模式,而不会相应增加控制复杂性。光学系统中的自配置和自复位原理应适用于广泛的光学应用。

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