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Synthetic-lattice enabled all-optical devices based on orbital angular momentum of light

机译:基于光的轨道角动量的支持合成晶格的全光学器件

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All-optical photonic devices are crucial for many important photonic technologies and applications, ranging from optical communication to quantum information processing. Conventional design of all-optical devices is based on photon propagation and interference in real space, which may rely on large numbers of optical elements, and the requirement of precise control makes this approach challenging. Here we propose an unconventional route for engineering all-optical devices using the photon’s internal degrees of freedom, which form photonic crystals in such synthetic dimensions for photon propagation and interference. We demonstrate this design concept by showing how important optical devices such as quantum memory and optical filters can be realized using synthetic orbital angular momentum (OAM) lattices in degenerate cavities. The design route utilizing synthetic photonic lattices may significantly reduce the requirement for numerous optical elements and their fine tuning in conventional design, paving the way for realistic all-optical photonic devices with novel functionalities.
机译:从光学通信到量子信息处理,全光学光子器件对于许多重要的光子技术和应用至关重要。全光设备的常规设计基于光子在现实空间中的传播和干扰,这可能依赖于大量的光学元件,精确控制的要求使该方法具有挑战性。在这里,我们提出了一种使用光子内部自由度设计全光设备的非常规途径,该方法可以以这种合成尺寸形成光子晶体,从而实现光子的传播和干涉。我们通过展示如何在退化的腔体中使用合成轨道角动量(OAM)晶格实现重要的光学器件(例如量子存储器和光学滤波器)来证明该设计概念。利用合成光子晶格的设计路线可以显着减少传统设计中大量光学元件的需求及其微调,为具有新颖功能的现实全光子光子器件铺平了道路。

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