Search results for " amorphous materials"

showing 5 items of 5 documents

Phosphorous doping and drawing effects on the Raman spectroscopic properties of O=P bond in silica-based fiber and preform.

2012

International audience; We report an experimental study of the doping and drawing effects on the Raman activities of phosphorus (P)-doped silica-based optical fiber and its related preform. Our data reveal a high sensitivity level in the full width at half maximum value of the 1330 cm−1 (O = P) Raman band to the P-doping level. Its increase with the P doping level does not clash with an increase in the disorder of the O = P surrendering matrix. In addition, we observe that in the central core region of the sample (higher doping level), the drawing process decreases the relative band amplitude. We tentatively suggest that this phenomenon is due to the change in the first derivate of the bond…

(060.2310) Fiber optics; (300.6450) Spectroscopy Raman; (160.2750) Glass and other amorphous materials; (060.2280) Fiber design and fabrication; (060.2290) Fiber materials.inorganic chemicalsMaterials scienceOptical fiberAnalytical chemistryChemical vapor depositionlaw.inventionCondensed Matter::Materials Sciencesymbols.namesakeOpticslawPolarizabilityCondensed Matter::SuperconductivityFiber[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics]business.industryDopingtechnology industry and agricultureFiber optics Spectroscopy Raman Glass and other amorphous materials Fiber design and fabrication Fiber materialsElectronic Optical and Magnetic MaterialsFull width at half maximumsymbolsbusinessRaman spectroscopyhuman activitiesRaman scattering
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Evidence of delocalized excitons in amorphous solids

2010

We studied the temperature dependence of the absorption coefficient of amorphous ${\mathrm{SiO}}_{2}$ in the range from 8 to 17.5 eV obtained by Kramers-Kronig dispersion analysis of reflectivity spectra. We demonstrate the main excitonic resonance at 10.4 eV to feature a close Lorentzian shape redshifting with increasing temperature. This provides a strong evidence of excitons being delocalized notwithstanding the structural disorder intrinsic to amorphous ${\mathrm{SiO}}_{2}$. Excitons turn out to be coupled to an average phonon mode of 83 meV energy.

Condensed Matter - Materials ScienceMaterials scienceCondensed matter physicsPhononExcitonMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesvacuum ultraviolet absorptionGeneral Physics and AstronomyExcitons; amorphous materials; vacuum ultraviolet absorptionResonance (chemistry)Condensed Matter::Disordered Systems and Neural NetworksSpectral lineAmorphous solidDelocalized electronCondensed Matter::Materials ScienceAttenuation coefficientddc:550Excitonamorphous materialEnergy (signal processing)
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First principles simulation of amorphous InSb

2013

Ab initio molecular dynamics simulations based on density functional theory have been performed to generate a model of amorphous InSb by quenching from the melt. The resulting network is mostly tetrahedral with a minor fraction ($10%$) of atoms in a fivefold coordination. The structural properties are in good agreement with available x-ray diffraction and extended x-ray-absorption fine structure data and confirm the proposed presence of a sizable fraction of homopolar In-In and Sb-Sb bonds whose concentration in our model amounts to about $20%$ of the total number of bonds.

DiffractionQuenchingMaterials scienceCondensed matter physicsHomopolar motorCondensed Matter PhysicsMolecular physicsElectronic Optical and Magnetic MaterialsAmorphous solidAb initio molecular dynamicsab-initio simulations glasses amorphous materialsTetrahedronDensity functional theoryFIS/03 - FISICA DELLA MATERIA
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Time-resolved luminescence of non-bridging oxygen hole centre in silica: Bulk and surface properties

2007

Disordered structures time resolved luminescence amorphous materials laser spectroscopy
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Thermally induced structural modifications and O2 trapping in highly porous silica nanoparticles

2014

Abstract In this work we investigate by Raman spectroscopy the effect of isochronal (2 h) thermal treatments in air in the temperature range 200–1000 °C of amorphous silicon dioxide porous nanoparticles with diameters ranging from 5 up to 15 nm and specific surface 590–690 m2/g. Our results indicate that the amorphous structure changes similarly to other porous systems previously investigated, in fact superficial SiOH groups are removed, Si–O–Si linkages are created and the ring statistic is modified, furthermore these data evidence that the three membered rings do not contribute significantly to the Raman signal detected at about 495 cm−1. In addition, after annealing at 900 and 1000 °C we…

Thin layersMaterials scienceSettore FIS/01 - Fisica SperimentaleAnalytical chemistryNanoparticleAtmospheric temperature rangeCondensed Matter Physicslaw.inventionAmorphous solidNanostructures Amorphous materials Luminescence Raman spectroscopy and scattering Heat treatment Porous silicasymbols.namesakelawsymbolsGeneral Materials ScienceSurface layerElectron paramagnetic resonancePorous mediumRaman spectroscopy
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