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首页> 外文期刊>Japanese journal of applied physics >Optimization of figure of merit in magnetoplasmonic waveguides with Fe/Au multilayer for optical isolator based on nonreciprocal coupling on Si waveguides
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Optimization of figure of merit in magnetoplasmonic waveguides with Fe/Au multilayer for optical isolator based on nonreciprocal coupling on Si waveguides

机译:基于Si波导上的不可逆耦合,用于Fe / Au多层光隔离器的磁电浆波导的品质因数优化

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摘要

We report on magnetoplasmonic Si waveguides with a ferromagnetic Fe/conductive metal Au multilayer for realizing a sizable magnetooptic effect with a low propagation loss for integrated optical isolators. By combining the ferromagnetic metal Fe with a highly conductive Au layer, the largest nonreciprocal differences in effective index were estimated for propagation lengths of 1-20 mu m. Mode analysis with and without a Au layer clarified that the insertion of a Au layer on an Fe layer improves the optical confinement in the Fe layer with reduced propagation loss and is effective in enlarging the magnetooptic effect for the same propagation length. On the basis of the optimized Fe/Au multilayer structure, we designed waveguide optical isolators based on nonreciprocal coupling by the finite difference time domain (FDTD) method. We estimated an optical isolation of 10.8 dB with a forward insertion loss of 13.4 dB in a 34-mu m-long nonreciprocal directional coupler. (C) 2018 The Japan Society of Applied Physics.
机译:我们报告了具有铁磁Fe /导电金属Au多层膜的磁等离子体Si波导,用于实现集成光隔离器具有低传播损耗的相当大的磁光效应。通过将铁磁金属Fe与高导电性的Au层结合,对于1-20微米的传播长度,可以估算出有效折射率的最大互易差异。在有和没有Au层的情况下的模式分析表明,在Fe层上插入Au层可以改善Fe层中的光学限制,同时降低传播损耗,并且对于相同的传播长度,可以有效地扩大磁光效应。在优化的Fe / Au多层结构的基础上,我们通过时差有限域(FDTD)方法设计了基于不可逆耦合的波导光隔离器。我们估计,在34微米长的不可逆定向耦合器中,光隔离度为10.8 dB,正向插入损耗为13.4 dB。 (C)2018年日本应用物理学会。

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  • 来源
    《Japanese journal of applied physics》 |2018年第4s期|04FN07.1-04FN07.5|共5页
  • 作者单位

    Tokyo Univ Agr & Technol, Dept Elect & Elect Engn, Koganei, Tokyo 1848588, Japan;

    Tokyo Univ Agr & Technol, Dept Elect & Elect Engn, Koganei, Tokyo 1848588, Japan;

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