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IPKISS

 

IPKISS

 

Overview

 

The IPKISS integrated photonics design platform is a scripting environment that covers the complete photonic IC design flow up to measurement feedback for true component validation. The components rely on a single, centrally defined model for a smooth transition between the different design stages such as layout, physical and circuit simulation. This makes the design flow robust ("What you layout is what you calculate"), reduces design errors and saves considerable design time.

The platform is modular and can be extended to integrate with EDA design flows and AWG (Arrayed Waveguide Grating) design.

Raise the integrity of your design flow:

 

You will leverage on years of design experience by using Luceda’s state-of-the-art component library, adaptable to different FAB technologies with specialized validated components such as AWGs, Mach-Zehnder modulators, photonic crystals and grating couplers. Using the versatile Python scripting you will be able to centralize your expertise within a custom design flow. This streamlining of the design flow allows for more efficient collaboration between designers, faster design iterations and a more robust knowledge management of previous designs.

It is the tool of choice for teams that want to build a competitive edge through an innovative fully controlled design flow.

 

KEY FEATURES

Layout

Circuit/ System simulation framework

Fabrication backend

Python parametric design framework

Physical simulation framework

IPKISS Modules (optional)

IPKISS Links (optional)

 

Design and fabrication of a 5x20Gb/s WDM Ge Receiver

IPKISS application example provided by Ghent University and imec (*).

 

The challenges are low insertion loss, low crosstalk, polarization insensitivity, compact footprint and low power consumption. Equally important are DfX factors such as design for manufacturability and robustness against temperature variations.

The dense WDM (DWDM) filter has 300GHz (2.34nm) channel spacing around 1540nm wavelength.
A 2-dimensional grating coupler decouples the two orthogonal polarization states of a single mode fiber into their own five-channel 300GHz DWDM filter bank (2nd order ring resonators). A single germanium (Ge) high-speed lateral PIN photodiode terminates each decoupled channel.

 

 

The device performed very close to the design specs

IPKISS was used to layout and combine 3 different circuits:

IPKISS generated the measurement routines for characterizing the static and dynamic response of this circuit, both optically and electro-optically, at wafer scale.

The design of fabrication tolerant MZI filters.

IPKISS application example provided by Ghent University and imec (*).

Motivation

Si has a high thermo-optic coefficient (shifts of about 70-100 pm/K on resonance), and is extremely fabrication sensitive (i.e. 1 nm in resonance / nm wire width change and 1.4 nm / nm in thickness).

 

Proposed solution

Passive compensation by optimizing lengths and widths to reduce fabrication and thermal sensitivity. The width sensitivity is reduced by 10 times, the thermal sensitivity by 8 times and the footprint is increased by 2.5 times. CAPHE is used to create a thermal model of the waveguides and MZI as to model the fabrication variability and for parameter exploration.

Design Advantages.

IPKISS Circuit Simulation Advantages

 

 

The optimization of a splitter design combining CST Studio Suite and CAMFR

IPKISS.flow integrates with the CST Studio Suite to assure an automatic, consistent management of PDK, layout and coupled simulation data.

 

Incorporating a simulation model takes 4 easy steps from within IPKISS.flow:

Example objective

We design a 1x2-splitter with a 50:50 percent splitting ratio and optimize it for minimal insertion loss.
In order to do this 3 steps are needed:

 

 

 

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