Search results for "Terbium gallium garnet"

showing 6 items of 6 documents

Laser-induced anisotropy in terbium-gallium garnet

1998

Ga5O12 crystal when illuminated at the terbium ion resonance, becomes optically uniaxial. The optical axis is found to be along the beam-propagation axis. The origin of this symmetry breakdown is a thermal effect. Our observation of a conoscopic pattern is accounted for by a quadratic stress and refractive index distribution model. By spatial integration of the conoscopic pattern, the laser-induced stress birefringence variation as a function of the incident beam power is determined.

BirefringenceMaterials sciencePhysics and Astronomy (miscellaneous)Condensed matter physicsUniaxial crystalbusiness.industryGeneral EngineeringPhysics::OpticsGeneral Physics and Astronomychemistry.chemical_elementTerbiumLaserTerbium gallium garnetlaw.inventionCrystalOptical axischemistry.chemical_compoundOpticschemistrylawbusinessRefractive indexApplied Physics B: Lasers and Optics
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Optical rotary power at the resonance of the Terbium 7F6→5D4 line in Terbium Gallium Garnet

1998

Abstract The Tb 3+ absorption line 7 F 6 → 5 D 4 of the Terbium Gallium Garnet crystal is excited with an Argon ion laser. The Verdet's constant has been determined and reported against 1/ λ 2 , showing no significant resonant behaviour at absorption resonance. The utility and the constraints of the crystal at this particular resonant wavelength are pointed out.

Materials scienceVerdet constantOptical isolatorAnalytical chemistrychemistry.chemical_elementResonanceTerbiumCondensed Matter PhysicsTerbium gallium garnetSpectral lineElectronic Optical and Magnetic Materialslaw.inventionCrystalchemistry.chemical_compoundchemistrylawMaterials ChemistryElectrical and Electronic EngineeringAtomic physicsAbsorption (electromagnetic radiation)Solid-State Electronics
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Spatio-temporal structures of laser-induced anisotropy

1999

We report new observations of optical spatio-temporal structures formed in terbium gallium garnet when it is excited at resonance by a strong laser beam. We also present a theoretical description of this pattern formation, which accounts well for our observations. We finally discuss useful applications of both time and power dependence of these structures.

Materials sciencebusiness.industryPhysics::OpticsResonancePattern formationNonlinear opticsLaserAtomic and Molecular Physics and OpticsTerbium gallium garnetElectronic Optical and Magnetic Materialslaw.inventionCondensed Matter::Materials Sciencechemistry.chemical_compoundOpticschemistrylawExcited stateElectrical and Electronic EngineeringPhysical and Theoretical ChemistryAnisotropybusinessLaser beamsOptics Communications
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Observation of dark dot splitting pattern in terbium gallium garnet

1999

We have observed a new polarisation pattern in terbium gallium garnet which is both laser excited and mechanically stressed. The pattern can be characterized by a splitting from a “one dot” structure to a “two dots” structure. We have found that the new pattern is very sensitive to the orientation and the strength of the external forces applied to the sample. Thanks to this sensitivity and to the image simplicity, this new effect may be used in a vectorial force sensor and actuator.

Orientation (computer vision)business.industryGeneral ChemistryLaserMolecular physicsForce sensorTerbium gallium garnetlaw.inventionchemistry.chemical_compoundOpticschemistrylawExcited stateGeneral Materials ScienceSensitivity (control systems)ActuatorbusinessApplied Physics A: Materials Science & Processing
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Self-focusing in Terbium Gallium Garnet using Z-scan

1998

International audience; When illuminated near its resonance with an Ar ion laser beam (lambda=488 nm), laser induced thermal self-focusing is observed in Terbium Gallium Garnet. The crystal exhibits a strong intensity dependent refractive index change Dn. The Z-scan technique is used to study the beam waist change due to Dn. The refractive index is found to be well described by a quadratic spatial distribution model. Both the sign and the distribution coefficient of Dn are determined.

[PHYS.PHYS.PHYS-OPTICS] Physics [physics]/Physics [physics]/Optics [physics.optics]Materials science[ PHYS.PHYS.PHYS-OPTICS ] Physics [physics]/Physics [physics]/Optics [physics.optics]business.industryResonancePhysics::OpticsSelf-focusingIon laserLaserAtomic and Molecular Physics and OpticsTerbium gallium garnetElectronic Optical and Magnetic Materialslaw.inventionchemistry.chemical_compoundOpticschemistrylawZ-scan techniqueElectrical and Electronic EngineeringPhysical and Theoretical ChemistrybusinessRefractive indexBeam (structure)
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Long-transient conoscopic pattern technique

1999

0038-1098; Recent results on laser induced anisotropy in terbium gallium garnet are extended to the dynamic regime. We observed that the characteristic conoscopic pattern formation time presents a quadratic dependence on the beam size. The observed pattern intensity is accounted for by a simple analytical formula. The transient refractive index change due to thermal stress in the terbium gallium garnet is determined. (C) 1999 Elsevier Science Ltd. All rights reserved.

optical propertiesheat capacityPhysics::OpticsPattern formation02 engineering and technologyTERBIUM-GALLIUM GARNET01 natural sciencesTerbium gallium garnetlaw.invention010309 opticsCondensed Matter::Materials Sciencechemistry.chemical_compoundOpticslaw0103 physical sciencesMaterials ChemistryBirefringenceCondensed matter physicsbusiness.industrynonlinear opticsNonlinear opticsGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsLaserIntensity (physics)chemistryTransient (oscillation)0210 nano-technologybusinessRefractive index
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