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Slow-Light Lasing in 1D Photonic crystal InGaAs/GaAs Nano-Ridges Epitaxially Grown on a Si Wafer

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cris.virtual.orcid0000-0002-8986-4109
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cris.virtual.orcid0000-0001-9845-8965
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cris.virtualsource.department44589ac6-6fd6-4f68-89da-f989df2e6b2b
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cris.virtualsource.department73673e54-a32b-4195-9170-d2d361923667
cris.virtualsource.orcid00e049bc-79d0-4325-b281-791064db1c14
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dc.contributor.authorFahmy, Eslam
dc.contributor.authorOuyang, Zhongtao
dc.contributor.authorColucci, Davide
dc.contributor.authorVan Campenhout, Joris
dc.contributor.authorKunert, Bernardette
dc.contributor.authorVan Thourhout, Dries
dc.contributor.imecauthorFahmy, E. M. B.
dc.contributor.imecauthorOuyang, Z.
dc.contributor.imecauthorColucci, D.
dc.contributor.imecauthorVan Campenhout, J.
dc.contributor.imecauthorKunert, B.
dc.contributor.imecauthorVan Thourhout, D.
dc.date.accessioned2025-05-25T05:34:01Z
dc.date.available2025-05-25T05:34:01Z
dc.date.issued2025
dc.description.abstractThe integration of lasers on silicon photonics is often considered the "holy grail" of photonics, due to its potential to revolutionize various applications, including sensing, high-speed communication and computing. Silicon-based lasers can facilitate more capable and cost effective photonic integrated circuits (PICs). Aspect ratio trapping (ART) and nano-ridge engineering (NRE) enable the direct growth of high-quality, defect free, direct bandgap III-V semiconductors in the form of nano-ridges on the silicon substrate [1]. These techniques offer an attractive platform for silicon photonics, bringing us closer to realizing the full potential of this technology. Single nano-ridge optically pumped DFB lasers [2], PIN detectors, and more recently, electrically injected continuous-wave lasers have been showcased on this platform [3]. Here, we demonstrate a novel, optically pumped laser, leveraging the slow-light mode arising from the coupling of multiple InGaAs/GaAs nano-ridges in a one-dimensional photonic crystal configuration. This configuration serves to trap light in the form of a high Q-factor slow-light mode while simultaneously coupling it to vertical emission. We experimentally show low-threshold lasing (≤10kW/Cm^2) for a 20 times shorter cavity (~15μm) than previously demonstrated DFB lasers. The laser operates in single mode with a high side-mode suppression ratio (SMSR) (≥10dB). Also, we studied the beam profile in depth, showing highly directional emission. We will present detailed simulation and experimental results.
dc.description.wosFundingTextThis project has received funding from the European Union's Horizon 2020 research and innovation program under grant agreement No. 884963 (ERC AdG NARIOS).
dc.identifier.doi10.1117/12.3043386
dc.identifier.eisbn978-1-5106-8491-1
dc.identifier.isbn978-1-5106-8490-4
dc.identifier.issn0277-786X
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/45714
dc.publisherSPIE-INT SOC OPTICAL ENGINEERING
dc.source.beginpage133710V-1
dc.source.conference2025 Conference on Silicon Photonics
dc.source.conferencedate2025-03-20
dc.source.conferencelocationSan Francisco
dc.source.endpage133710V-5
dc.source.journalProceedings of SPIE
dc.source.numberofpages5
dc.title

Slow-Light Lasing in 1D Photonic crystal InGaAs/GaAs Nano-Ridges Epitaxially Grown on a Si Wafer

dc.typeProceedings paper
dspace.entity.typePublication
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