Search results for "Photorefractive"

showing 10 items of 72 documents

Kinetics of Photorefractive Light Scattering in Stoichiometric LiNbO3Single Crystals Grown from Melt Containing 58.6 Mole% of Li2O

2011

A study of kinetics of photo-refractive light scattering in ostensibly pure stoichiometric LiNbO3 (Li/Nb = 1) single crystal grown from melt containing 58.6 mole% Li2O excited by laser radiation of 0.53 μm is reported. Asymmetry of the distribution of scattered light intensity is revealed and found to be a linear function of the intensity of the exciting radiation in the 35–160 mW range. Due to heating of the crystal, at farther increase of the radiation intensity the distribution of scattered light contracts.

Materials sciencebusiness.industryLithium niobateAnalytical chemistryPhotorefractive effectCondensed Matter PhysicsLaserLight scatteringElectronic Optical and Magnetic Materialslaw.inventionCrystalchemistry.chemical_compoundchemistrylawOptoelectronicsbusinessRadiant intensitySingle crystalIntensity (heat transfer)Ferroelectrics
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Structural and Optical Homogeneity in Lithium Niobate Crystals of Low Photorefractivity

2015

Comprehensive studies by Raman and photo-induced light scattering complemented by laser conoscopy and electron spectroscopy of structural and optical homogeneity of nominally pure and modified lithium niobate crystals are reported.

Materials sciencebusiness.industryLithium niobatePhysics::OpticsPhotorefractive effectCondensed Matter PhysicsLaserConoscopyElectron spectroscopyLight scatteringElectronic Optical and Magnetic Materialslaw.inventionsymbols.namesakechemistry.chemical_compoundOpticschemistrylawsymbolsOptoelectronicsPhysics::Atomic PhysicsbusinessRaman spectroscopySingle crystalFerroelectrics
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Manipulation of fast light using photorefractive beam fanning

2014

Light pulse group velocity manipulations due to the specific dispersion of a medium (so-called “slow” and “fast” light phenomena) can be obtained on the basis of several mechanisms. One of these techniques is two-wave mixing in a photorefractive crystal. This work presents a modification of this method, exploiting the strong beam fanning in Sb-doped Sn2P2S6 crystals. Our experimental results demonstrate a “fast light” behavior of Gaussian pulses transmitted through a Sn2P2S6:Sb sample. The phenomenon is due to the beam fanning (i.e., the self-diffraction of the incident beam on self-induced noisy photorefractive gratings) that ensures a significant depletion of the input beam. Due to the re…

Materials sciencebusiness.industryPhase (waves)Statistical and Nonlinear PhysicsPhotorefractive effectAtomic and Molecular Physics and OpticsOpticsDispersion (optics)Light beamGroup velocityM squaredLaser beam qualitybusinessBeam (structure)Journal of the Optical Society of America B
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Nanotechnology in lithium niobate for integrated optic frequency conversion in the UV

2017

In the domain of Earth Explorer satellites nanoengineered nonlinear crystals can optimize UV tunable solid-state laser converters. Lightweight sources can be based on Lithium Niobate (LN) domain engineering by electric field poling and guided wave interactions. In this Communication we report the preliminary experimental results and the very first demonstration of UltraViolet second-harmonic generation by first-order quasi-phase-matching in a surface-periodically-poled proton-exchanged LN waveguide. The pump source was a Ti-Sapphire laser with a tunability range of 700- 980 nm and a 40 GHz linewidth. We have measured UV continuous-wave light at 390 nm by means of a lock-in amplifier and of …

Materials sciencenanotechnologysecond harmonic generationbusiness.industrylithium niobateferroelectricsLithium niobateEnergy conversion efficiencySecond-harmonic generationPhotorefractive effectmedicine.disease_causeLaserlaw.inventionchemistry.chemical_compoundLaser linewidthOpticschemistrylawLithium tantalatemedicineOptoelectronicsbusinessUltravioletInternational Conference on Space Optics — ICSO 2006
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Optical properties and structure particularities of LiNbO 3 crystals grown from a boron-doped melt

2019

A series of LiNbO3:B crystals was grown from the melt doped by boron. It is shown that LiNbO3:B crystals possess an increased resistance to optical damage. We have found changes according to Raman spectra confirming the ordering of Li+, Nb5+ cations and vacancies along the polar axis. The chemical interactions were studied in the system Li2O–B2O3–Nb2O5. Boron cations are unable to incorporate into a cation sublattice of LiNbO3, but they change the physic-chemical structure of a melt. It contributes to an increased structure and optical uniformity of LiNbO3:B.

Materials sciencephotorefractive effectAnalytical chemistrychemistry.chemical_element02 engineering and technology01 natural sciencessymbols.namesake0103 physical sciencesMaterials Chemistry:NATURAL SCIENCES:Physics [Research Subject Categories]boron dopingElectrical and Electronic EngineeringBoron010302 applied physicsDopingPhotorefractive effect021001 nanoscience & nanotechnologyCondensed Matter PhysicsLithium niobate single crystalElectronic Optical and Magnetic Materialspattern of photoinduced light scatteringchemistryControl and Systems EngineeringBoron dopingRaman spectroscopyCeramics and Compositessymbols0210 nano-technologyRaman spectroscopyIntegrated Ferroelectrics
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Dual-polarization-pump CW laser operation in Nd3+:LiNbO3 channel waveguides fabricated by reverse proton exchange

2008

Abstract In this work, continuous-wave laser action at 1084.5 nm at room temperature in LiNbO 3 :Nd 3+ channel waveguides, fabricated by reverse proton exchange (RPE), is reported. The sample was pumped at λ  = 808 nm in either σ or π-polarized configurations, TE- and TM-pumping schemes, being the laser emission π-polarized at all power levels. The laser characteristics, as function of the pumping scheme (TE or TM), have been obtained. In both cases, the laser emission was stable, without any reduction in the output power even under continuous pump operation at maximum power at room temperature, indicating high resistance to photorefractive damage.

Nd3+Maximum power principleProtonLithium niobateReverse proton exchangeLaserLiNbO3Waveguide (optics)law.inventionInorganic Chemistrychemistry.chemical_compoundOpticslawLaser power scalingElectrical and Electronic EngineeringPhysical and Theoretical ChemistrySpectroscopyChemistrybusiness.industryOrganic ChemistryIntegrated opticPhotorefractive effectLaserAtomic and Molecular Physics and OpticsElectronic Optical and Magnetic MaterialsDual-polarization interferometryWaveguideRPEbusiness
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Electrooptical Chromophores for Nonlinear Optical and Photorefractive Applications

1999

Nonlinear opticalMaterials scienceOpticsMechanics of Materialsbusiness.industryMechanical EngineeringOptoelectronicsGeneral Materials SciencePhotorefractive effectChromophorebusinessAdvanced Materials
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Supplementary optical phase transition in photorefractive coherent oscillator

2001

The semilinear photorefractive coherent oscillator with two counterpropagating pump waves may exhibit two optical phase transitions: one from a disordered state of wide-angle photorefractive scattering into a high-ordered state with the immobile photorefractive grating and the other one from the state with immobile grating into the state with two moving photorefractive gratings. We show, both experimentally and from calculations, that two these phase transitions are the second-order phase transitions.

Phase transitionMaterials scienceCondensed matter physicsbusiness.industryScatteringOrganic ChemistryPhysics::OpticsNonlinear opticsPhotorefractive effectGratingAtomic and Molecular Physics and OpticsElectronic Optical and Magnetic MaterialsOrganic photorefractive materialsInorganic ChemistryOpticsPhysics::Atomic PhysicsElectrical and Electronic EngineeringPhysical and Theoretical ChemistrybusinessPhase conjugationNonlinear Sciences::Pattern Formation and SolitonsSpectroscopyOptical Materials
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Formación de estructuras no lineales mediante control de la fase en sistemas fotorrefractivos

2018

Esta tesis doctoral se ha realizado en el campo de la Óptica No Lineal experimental, dentro de un marco de investigación básica. El objeto de estudio es la manipulación experimental de estructuras que pueden emerger en la sección transversal de un haz láser bajo determinadas condiciones, y que además están caracterizadas por su fase: como, por ejemplo, vórtices, solitones o dominios de fase. Como elemento activo no lineal que contribuye a la generación de este tipo de estructuras, se utilizan diferentes tipos cristal fotorrefractivos (PRCs) con tiempos de respuesta largos como el BaTiO3 y el SBN o tiempos cortos como el KTLN. El presente manuscrito está redactado como un compendio de artícu…

Photorefractive Optical OscillatorPhotorefractivePatternsRocking modulation
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Bistable phase locking of a nonlinear optical cavity via rocking: Transmuting vortices into phase patterns.

2006

We report experimental observation of the conversion of a phase-invariant nonlinear system into a phase-locked one via the mechanism of rocking [G. J. de Valcarcel and K. Staliunas, Phys. Rev. E 67, 026604 (2003)]. This conversion results in that vortices of the phase-invariant system are being replaced by phase patterns such as domain walls. The experiment is carried out on a photorefractive oscillator in two-wave mixing configuration.A model for the experimental device is given that reproduces the observed behavior.

PhysicsBistabilityCondensed matter physicsbusiness.industryPhase (waves)FOS: Physical sciencesGeneral Physics and AstronomyPattern Formation and Solitons (nlin.PS)Photorefractive effectNonlinear Sciences - Pattern Formation and SolitonsVortexNonlinear systemNonlinear opticalOpticsDomain (ring theory)businessPhase conjugationPhysical review letters
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