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An on-chip polarization splitter based on the radiation loss in the bending hybrid plasmonic waveguide structure

机译:基于弯曲混合等离子体激元波导结构中辐射损耗的片上偏振分束器

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摘要

Polarization beam splitters (PBSs) are one of the key components in the integrated photonic circuits. To increase the integration density, various complex hybrid plasmonic structures have been numerically designed to shrink the footprints of the PBSs. Here, to decrease the complexity of the small hybrid structures and the difficulty of the hybrid micro-nano fabrications, the radiation losses are utilized to experimentally demonstrate an ultra-small, broadband, and efficient PBS in a simple bending hybrid plasmonic waveguide structure. The hybrid plasmonic waveguide comprising a dielectric strip on the metal surface supports both the transverse-magnetic (TM) and transverse-electric (TE) waveguide modes. Because of the different field confinements, the TE waveguide mode has larger radiation loss than the TM waveguide mode in the bending hybrid strip waveguide. Based on the different radiation losses, the two incident waveguide modes of orthogonal polarization states are efficiently split in the proposed structure with a footprint of only about 2.2 × 2.2 μm~2 on chips. Since there is no resonance or interference in the splitting process, the operation bandwidth is as broad as Δλ = 70 nm. Moreover, the utilization of the strongly confined waveguide modes instead of the bulk free-space light (with the spot size of at least a few wavelengths) as the incident source considerably increases the coupling efficiency, resulting in a low insertion loss of <3 dB.
机译:偏振分束器(PBS)是集成光子电路中的关键组件之一。为了增加集成密度,已经对各种复杂的混合等离子体激元结构进行了数值设计,以缩小PBS的足迹。在这里,为了减少小型混合结构的复杂性和混合微纳制造的难度,利用辐射损耗在简单的弯曲混合等离激元波导结构中通过实验证明了超小,宽带,高效的PBS。在金属表面上包括电介质条的混合等离子体激元波导同时支持横向磁(TM)和横向电(TE)波导模式。由于场限制的不同,在弯曲混合带状波导中,TE波导模式的辐射损耗大于TM波导模式。基于不同的辐射损耗,在所提出的结构中,仅在芯片上的占位面积仅为约2.2×2.2μm〜2的情况下,正交偏振态的两个入射波导模式得以有效分离。由于在分离过程中没有谐振或干扰,因此操作带宽高达Δλ= 70 nm。此外,使用强约束波导模式代替大量自由空间光(光斑大小至少为几个波长)作为入射源,大大提高了耦合效率,从而导致<3 dB的低插入损耗。

著录项

  • 来源
    《Applied Physics Letters》 |2017年第10期|101105.1-101105.5|共5页
  • 作者单位

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China;

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China;

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China,Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi, China;

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China;

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China,Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi, China;

    State Key Laboratory for Mesoscopic Physics, Collaborative Innovation Center of Quantum Matter, Department of Physics, Peking University, Beijing, China,Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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