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Enabling data-driven and bidirectional model development in Verilog-A for photonic devices.
Optics Express
|November 22, 2024
Summary
This study introduces a new Verilog-A modeling method for photonic components using bidirectional signaling. This technique accurately captures component responses and enhances electronic-photonic co-simulation for integrated circuits.
Area of Science:
- Electrical Engineering
- Optoelectronics
- Computational Electromagnetics
Background:
- Accurate modeling of photonic components is crucial for electronic-photonic integrated circuit (EPIC) design.
- Existing simulation methods often struggle to capture complex wave interactions and reflections within photonic devices.
- Verilog-A is a standard hardware description language for analog and mixed-signal circuits, but its application to photonics requires specialized techniques.
Purpose of the Study:
- To develop a novel Verilog-A modeling approach for photonic components.
- To enable simultaneous simulation of forward and backward propagating waves on a single port.
- To improve the accuracy and intuitiveness of electronic-photonic co-simulation.
Main Methods:
- Employing the concepts of power waves and scattering parameters from electromagnetism.
- Implementing bidirectional signaling through a single port in Verilog-A.
- Validating the method with examples of Fabry-Perot cavity resonance and reflection effects.
Main Results:
- Demonstrated a method to model photonic components in Verilog-A with bidirectional signaling.
- Successfully captured realistic, measurement-backed responses of photonic components.
- Showcased the technique's efficacy in simulating critical EPIC effects like resonance and reflections.
Conclusions:
- The proposed Verilog-A modeling technique enhances the accuracy of electronic-photonic co-simulation.
- This method provides a more intuitive way to model complex photonic behaviors.
- It facilitates better design and analysis of photonic integrated circuits.
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