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Hierarchical Design and Optimization of Silicon Photonics

机译:硅光子学的层次设计与优化

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Silicon photonics is a rapidly maturing platform for optical communication and sensing. As systems leveraging silicon photonics have grown in size and complexity, so too has the demand for high performance silicon photonics components. In order to meet these demands, we propose a hierarchical approach to design and optimization of silicon photonics components. Our approach applies simple physical analysis to choose an effective starting geometry for a two-step gradient-based shape optimization. This optimization employs carefully chosen geometrical constraints in order to consistently produce robust, high performance devices which satisfy practical fabrication constraints of deep UV lithography. In order to demonstrate the versatility of method, we optimize a 3 dB coupler which achieves better than 0.04 dB excess loss over the O-band, a four port 3-dB coupler which achieves better than 0.41 dB excess lass and near 50:50 splitting over the O-band, and a fabrication-tolerant waveguide crossing which achieves better than 0.075 dB insertion loss over the O-band even when subject to +/- 10% silicon thickness variations. These results pave the way for high efficiency silicon photonic component libraries.
机译:硅光子是一种快速成熟的光学通信和传感平台。随着利用硅光子的系统尺寸和复杂性地生长,所以对高性能硅光子组件的需求太大。为了满足这些需求,我们提出了一种分层方法来设计和优化硅光子组件。我们的方法适用于简单的物理分析,为两步梯度的形状优化选择有效的起始几何体。这种优化采用精心选择的几何约束,以始终生产满足深紫色光刻的实际制造限制的强大的高性能设备。为了证明方法的多功能性,我们优化了一台3 DB耦合器,通过O带,四端口3-DB耦合器实现了优于0.04 dB的多余损耗,这使得优于0.41 dB超出0.41 dB多余的余数,靠近50:50分裂在O波段,以及制造耐受波导交叉,即使在+/- 10%硅厚度变化时,也可以在O频带上实现优于0.075dB的插入损耗。这些结果为高效硅光子组分文库铺平了道路。

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