密集波分复用硅光子学的多物理场设计与仿真方法

J. Youn, L. Ramini, Zeqin Lu, Ahsan Alam, J. Pond, Marco Fiorentino, R. Beausoleil
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引用次数: 0

摘要

我们提出了一种新的设计方法,涵盖了用于高性能计算系统和数据中心的基于微环的密集波分复用(DWDM)硅光子学(SiPh)电路的多物理场模拟工作流程。主要工作流程是电子-光子学联合仿真,包括来自SiPh工艺设计套件(PDK)的各种光学器件,使用商用CMOS代工厂的PDK设计的电子电路,以及使用全波电磁(EM)求解器生成的通道s参数模型,例如中间层和封装。通过联合仿真,可以同时分析电学和光学以及电光行为,因为一流的电子和光子集成电路模拟器可以相互作用。因此,在同一仿真平台上,不仅可以评估光谱和眼图,还可以评估电眼图。此外,所提出的方法包括一个统计和热感知光子电路仿真工作流程,以评估过程和温度变化,以及估计所需的热调谐功率,因为这些非理想性可能导致微环的共振波长移动。为此,采用三维EM模型进行热仿真,该模型还用于信道链路仿真和红外降等信号和功率完整性分析。此外,还进行了光子电路仿真,其中需要对微环的q因子和偏压等设计参数进行设计探索和优化,以选择最有前途的设计,例如,满足特定的误码率。采用具有这些多物理场仿真工作流的设计方法,可以充分优化DWDM SiPh以具有可靠的系统性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiphysics Design and Simulation Methodology for Dense WDM Silicon Photonics
We present a novel design methodology covering multiphysics simulation workflows for microring-based dense wavelength division multiplexing (DWDM) Silicon Photonics (SiPh) circuits used for high-performance computing systems and data centers. The main workflow is an electronics-photonics co-simulation comprising various optical devices from a SiPh process design kit (PDK), electronic circuits designed with a commercial CMOS foundry's PDK, and channel S-parameter models, such as interposers and packages, generated by using a full-wave electromagnetic (EM) solver. With the co-simulation, electrical and optical as well as electro-optical behaviors can be analyzed at the same time because best-in-class electronics and photonic integrated circuit simulators interact with each other. As a result, not only optical spectrum and eye diagrams but also electrical eye diagrams can be evaluated on the same simulation platform. In addition, the proposed methodology includes a statistical- and thermal-aware photonic circuit simulation workflow to evaluate process and temperature variations as well as estimate the required thermal tuning power as those non-idealities can lead to microring's resonance wavelengths shifting. For this, thermal simulation is conducted with a 3D EM model which is also used for such signal and power integrity analysis as a channel link simulation and IR drop. Also, photonic circuit simulations are performed where a design exploration and optimization of such microring's design parameters as Q-factor, and bias voltages are required to select the most promising designs, for example, to satisfy a specific bit-error rate. With the proposed design methodology having those multiphysics simulation workflows, DWDM SiPh can be fully optimized to have reliable system performance.
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