0000000000424250

AUTHOR

Anderson S. L. Gomes

showing 2 related works from this author

Microchip Random Laser based on a disordered TiO2-nanomembranes arrangement

2012

International audience; We developed a new scheme for obtaining coherent random lasing based on a chip consisting of a polymer film doped with Rhodamine 6G, having as scatterers butterfly-like TiO2 nanomembranes (TiO2-NM) supported on a glass substrate. The feedback mechanism for laser action is due to the multiple scattering of light by TiO2-NM rather than provided by localized variations of the refractive index in the polymer film. The above-threshold multiple spikes signature indicative of random laser emission with coherent feedback is confirmed. As nanomembranes are foreseen as new MEMS/NEMS building blocks, a new generation of combined active/passive photonic devices can be envisaged.

Materials sciencePhysics::Optics02 engineering and technology01 natural sciencesLight scatteringlaw.inventionRhodamine 6Gchemistry.chemical_compoundCondensed Matter::Materials ScienceOpticslaw0103 physical sciencesSCATTERING010306 general physicsDye laserRandom laserbusiness.industry021001 nanoscience & nanotechnologyLaserAtomic and Molecular Physics and OpticschemistryOptoelectronicsPhotonics0210 nano-technologybusinessRefractive indexLasing threshold
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(Ga,In)P nanowires grown without intentional catalyst

2015

Abstract We have grown (Ga,In)P nanowires through the MOCVD method without a intentional catalyst. The organometallic precursor triethylgallium ( ( C 2 H 5 ) 3 Ga ) , used as Ga source, is transported by the N 2 gas carrier to the reactor chamber where reacts with the InP vapor pressure producing the nanowires. Two different reactor pressures (70 and 740 Torr) were used leading to nanowires with different In contents. The nanowires are straight or wool-like and exhibit a twinned structure. They emit an intense orange to red color visible even to the naked eyes. Interface tunneling process at Ga 1 − x In x P / Ga 1 − y In y P interfaces ( x ≠ y ) is proposed to explain this efficient light e…

Materials scienceVapor pressureNanowireAnalytical chemistryNanotechnologyCondensed Matter PhysicsCatalysisInorganic Chemistrychemistry.chemical_compoundchemistryMaterials ChemistryLight emissionMetalorganic vapour phase epitaxyVapor–liquid–solid methodTriethylgalliumQuantum tunnellingJournal of Crystal Growth
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