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Laser gain compact model for photonic integrated circuit

simulation

V. PACRADOUNI, J. KLEIN, V. DONZELLA, J. POND *

LUMERICAL SOLUTIONS INC., VANCOUVER, CANADA

*JPOND@LUMERICAL.COM

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About LumericalLumerical empowers R&D professionals with industry leading design software and support service to develop next generation photonic technologies

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MotivationSi photonics for photonic integrated circuits (PICs) Leverages mature, scalable, low-cost, high yield processes

Lasers are required for most applications External laser sources driving PICS

Hybrid tunable/switchable lasers sources

No optical isolation Distant reflections/resonances Unintentional

Intentional : Passive (tunable) external resonant mirrors for single-wavelength lasers

Distant/long resonators 3D models inefficient

1D Compact Model for Gain

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Motivation - Examples

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UCSB Intel AurrionSkorpios

Kotura

CEA-LETI

Motivation -Examples cont’d

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J. C. Hulme, J. K. Doylend, J. E. Bowers,

“Widely tunable Vernier ring laser on hybrid

Silicon”, Optics Express, Vol. 21, No. 17,

19722, 2013

Time-Domain 1D Traveling Wave ModelOverview Time samples of slowly-varying envelope of optical mode

amplitudes and time-samples of carrier densities Complex baseband sampling according to bandwidth (not absolute frequency) of laser

1D spatial elements that can scatter light forward backward

Frequency dependencies implemented as IIR TD digital filters

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e.g, Fabry-Perot Laser

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ΔL Facet RRFacet RL

Gain

I(t)

Optical Element

Carrier ElementCarrier Density

Photon Density

Carriers

Photons (Mode Amplitude)

L

e.g, Fabry-Perot Laser

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R2

Γ𝑎𝑐𝑡𝑖 (𝑁)

𝑑𝑎𝑐𝑡

𝑤𝑎𝑐𝑡

Gain medium

Waveguide core

𝑙𝑎𝑐𝑡

R1

I

Results: Fabry-Perot Laser

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FP cavity modes (Gain off) and Gain Curve FP Laser Spectrum modes

Results: Fabry-Perot Laser Turn-On

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20 mW

Ref. 1: A.J. Lowery, New dynamic semiconductor laser model based on the transmission-line modelling method, IEE Proceedings, Vol. 134, Pt. J, No. 5, October 1987.

Simple DBR Laser

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IP

R1

Gain medium Grating

IG

Gain Section DBR section (freq selective mirror)

Phase tuning section

DBR Laser Design

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CavityDBR

DBR Laser Spectrum

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Hybrid Laser Integration into PIC

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J. C. Hulme, J. K. Doylend, J. E. Bowers, “Widely tunable

Vernier ring laser on hybrid Silicon”, Optics Express, Vol. 21, No. 17, 19722, 2013

Conclusions

Developed 1D TD Traveling Wave Gain Model

Used to Model Fabry-Perot Laser Results compare favorably with previously published results

Combined with a waveguide Bragg grating to model external cavity laser Design, single mode spectrum

Can be used to model effects of other external reflections both for hybrid laser design and integration into complex photonic circuits

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Schematic of 1D Element

Optical Element

Carrier Element

• G(nc), TD Filter

• N(nc) TD filtered noise source

Carrier Density

Optical Power

Carriers

Photons (Mode Ampl)

e.g, Fabry-Perot Laser-2Modes/Polarizations

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ΔL Facet RRFacet RL

I(t)

L

Gain

Optical Element

Carrier ElementCarrier Density

Photon Density

Carriers

Photons (Mode Amplitude)

Phase Section – Tune FP Mode Freqeuncies

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