Search results for " quantum chemistry"

showing 10 items of 549 documents

Sixfold coordinated phosphorus by oxygen in AlPO4 quartz homeotype under high pressure.

2007

International audience; AlPO4 belongs to the berlinite quartz homeotype family, which has been the subject of intense high pressure research triggered by the supposed existence of reversible pressure induced amorphization. New x-ray diffraction experiments, complemented with ab initio calculations, demonstrate the existence of two high pressure crystalline polymorphs and show that AlPO4 share the same two stage densification mechanism as silica. In first place a compact hexagonal sublattice of oxygen atoms is formed. In a second step the cations redistribute in the interstices giving rise to a monoclinic distorted CaCl2 phase. The most outstanding feature of the new phase is that phosphorou…

DiffractionMaterials scienceInorganic chemistrychemistry.chemical_element02 engineering and technology010403 inorganic & nuclear chemistry01 natural sciencesOxygenAb initio quantum chemistry methodsStructural Biology0103 physical sciences[CHIM]Chemical SciencesGeneral Materials Science010306 general physicsQuartzBerliniteMechanical EngineeringPhosphorusGeneral ChemistryCondensed Matter Physics021001 nanoscience & nanotechnology0104 chemical sciencesCrystallographychemistryMechanics of MaterialsClose relationshipHigh pressure0210 nano-technologyMonoclinic crystal system
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Discovery of new boron-rich chalcogenides: Orthorhombic B6X (X=S, Se)

2020

The authors thank T. Chauveau (LSPM) for help with Rietveld analysis, A. Jamali (LRCS) for assistance with SEM measurements, and Drs. Y. Tange (SPring-8) and N. Guignot (SOLEIL) for help in synchrotron experiments that were carried out during beamtimes allocated to proposals 2017A1047 & 2018A1121 at SPring-8 and proposal 20170092 at SOLEIL. Ab initio calculations have been performed using Rurik and Arkuda supercomputers. This work was financially supported by the European Union’s Horizon 2020 Research and Innovation Programme under Flintstone2020 project (grant agreement No. 689279). Z.W. thanks the National Science Foundation of China (grant No. 11604159). A.R.O. thanks the Russian Ministr…

DiffractionMaterials sciencePhononlcsh:MedicineFOS: Physical sciences02 engineering and technology[CHIM.INOR]Chemical Sciences/Inorganic chemistry01 natural scienceschemistry.chemical_compoundsymbols.namesakeCondensed Matter::Materials ScienceAb initio quantum chemistry methodsSelenideCondensed Matter::Superconductivity0103 physical sciences[CHIM.CRIS]Chemical Sciences/Cristallographylcsh:Science010302 applied physicsCondensed Matter - Materials ScienceMultidisciplinaryRietveld refinementlcsh:RMaterials Science (cond-mat.mtrl-sci):NATURAL SCIENCES::Physics [Research Subject Categories][CHIM.MATE]Chemical Sciences/Material chemistry021001 nanoscience & nanotechnologyAmorphizationCrystal structure predictionBoron CarbideCrystallographychemistrysymbolslcsh:QOrthorhombic crystal systemNeutron Absorber0210 nano-technologyRaman spectroscopyScientific Reports
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Crystal behavior of potassium bromate under compression.

2015

We report on high-pressure angle-dispersive X-ray diffraction data up to 15 GPa andab initiototal-energy calculations up to 242 GPa for KBrO3. No phase transition was found below 15 Pa in contrast to previously reported data. Its experimental bulk modulus in the quasi-hydrostatic regime isB0= 18.8 (9) GPa with a bulk modulus pressure derivativeB′0= 8.2 (4). However, according to ourab initiocalculations, KBrO3significantly reduces its rhombohedral distortionviasmall cooperative movements of the atoms and the structure progressively approaches the cubic symmetry, where the KBr subarray would adopt a topology similar to that of the corresponding B2-type bromide. This rearrangement of atoms is…

DiffractionPhase transitionBulk modulusChemistryMetals and AlloysAb initioAtomic and Molecular Physics and OpticsElectron localization functionElectronic Optical and Magnetic MaterialsCrystalCrystallographyAb initio quantum chemistry methodsMaterials ChemistryIsostructuralActa crystallographica Section B, Structural science, crystal engineering and materials
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GaS and InSe equations of state from single crystal diffraction

2007

We have performed single crystal angle dispersive X-ray diffraction at high pressure in order to investigate the GaS and InSe equations of state. We situate the transition from β-GaS to GaS-II at 2 7 0 3. ± . GPa. In the InSe experiment we locate the beginning of the phase transition at 7.6 ± 0.6 GPa. The equations of state of β-GaS ( 0 43 27 0 06V = . ± . Å 3 , 37 2 GPaB = ± , 5 2B = .¢ ), GaS-II ( 0 42 4 0 2V = . ± . Å 3 , 50 3 GPaB = ± and 4 3 0 3B = . ± .¢ ) and γ-InSe ( 0 58 4 0 2V = . ± . Å 3 , 24 3 GPaB = ± and 8 6 0 8B = . ± .¢ ) are discussed and compared with the results of an ab-initio calculation.

DiffractionPhase transitionChemistryScattering02 engineering and technology021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesSingle Crystal DiffractionElectronic Optical and Magnetic MaterialsCrystallographyAb initio quantum chemistry methodsHigh pressure[PHYS.COND.CM-GEN]Physics [physics]/Condensed Matter [cond-mat]/Other [cond-mat.other]0103 physical sciencesX-ray crystallographyPACS : 61.10.Nz 61.82.Fk 62.50.+p 64.30.+t010306 general physics0210 nano-technologySingle crystal
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Structural and vibrational properties of CdAl2S4 under high pressure: Experimental and theoretical approach

2014

The behavior of defect chalcopyrite CdAl2S4 at high pressures and ambient temperature has been investigated in a joint experimental and theoretical study. High-pressure X-ray diffraction and Raman scattering measurements were complemented with theoretical ab initio calculations. The equation of state and pressure dependences of the structural parameters of CdAl2S4 were determined and compared to those of other AB(2)X(4) ordered-vacancy compounds. The pressure dependence of the Raman-active mode frequencies is reported, as well as the theoretical phonon dispersion curves and phonon density of states at 1 atm. Our measurements suggest that defect chalcopyrite CdAl2S4 undergoes a phase transit…

DiffractionPhase transitionEquation of stateHigh-pressurePhononSpinelCondensed Matter::Materials Sciencesymbols.namesakeAb initio quantum chemistry methodsPhase (matter)Physical and Theoretical ChemistryRamanCondensed matter physicsChemistryDefect chalcopyriteSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsOrdered-vacancy compoundsX-ray diffractionCrystallographyGeneral EnergyFISICA APLICADAsymbolsRaman spectroscopyRaman scattering
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High-pressure theoretical and experimental study of HgWO4

2011

HgWO 4 at ambient pressure is characterized using a combination of ab initio calculations, X-ray diffraction and Raman scattering measurements. The effect of low pressure and temperature on the structural stability is analysed. Extending our ab initio study to the range of higher pressures, a sequence of stable phases up to 30GPa is proposed. © 2011 Taylor & Francis.

DiffractionRaman scatteringLow pressuresX ray diffractionAb initioExperimental studiesPressure effectsMolecular physicsStable phasisScatteringCondensed Matter::Materials Sciencesymbols.namesakeAb initio quantum chemistry methodsX raysScatteringChemistryRaman Scattering measurementsTungstatesCondensed Matter PhysicsX-ray diffractionAmbient pressuresAb initio studyStructural stabilityPhase transitionsFISICA APLICADAX-ray crystallographysymbolsStructural stabilitiesTungsten compoundsAb initio calculationsCalculationsDiffractionStabilityRaman scatteringAmbient pressure
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Electronic properties and high-pressure behavior of wolframite-type CoWO4

2021

In this work we characterize wolframite-type CoWO4 under ambient conditions and under compression up to 10 GPa, with emphasis on its electronic structure. X-Ray diffraction and vibrational experiments, supported by ab initio calculations, show that CoWO4 is stable under high-pressure conditions, as no structural changes are detected in the studied pressure range. Interesting findings come from optical absorption spectroscopy. On the one hand, CoWO4 is confirmed to have one of the lowest band gaps among similar wolframites, around 2.25 eV. This makes CoWO4 suitable for use in applications such as the photocatalysis of organic pollutants and water splitting. Additionally, a monotonic decrease…

DiffractionWolframiteMaterials scienceAbsorption spectroscopyBand gapAb initioElectronic structureengineering.materialChemistry (miscellaneous)Ab initio quantum chemistry methodsChemical physicsengineeringWater splittingGeneral Materials ScienceMaterials Advances
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Effect of High Pressure on the Crystal Structure and Vibrational Properties of Olivine-Type LiNiPO4

2018

In this work, we present an experimental and theoretical study of the effects of high pressure and high temperature on the structural properties of olivine-type LiNiPO4. This compound is part of an interesting class of materials primarily studied for their potential use as electrodes in lithium-ion batteries. We found that the original olivine structure (α-phase) is stable up to ∼40 GPa. Above this pressure, the onset of a new phase is observed, as put in evidence by the X-ray diffraction (XRD) experiments. The structural refinement shows that the new phase (known as β-phase) belongs to space group Cmcm. At room temperature, the two phases coexist at least up to 50 GPa. A complete conversio…

DiffractionWork (thermodynamics)OlivineChemistryThermodynamics02 engineering and technologyCrystal structureengineering.material021001 nanoscience & nanotechnology01 natural sciencesInorganic Chemistrysymbols.namesakeAb initio quantum chemistry methodsPhase (matter)0103 physical sciencesElectrodeengineeringsymbolsPhysical and Theoretical Chemistry010306 general physics0210 nano-technologyRaman spectroscopyInorganic Chemistry
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High-pressure structural, elastic, and thermodynamic properties of zircon-type HoPO4 and TmPO4

2017

[EN] Zircon-type holmium phosphate (HoPO4) and thulium phosphate (TmPO4) have been studied by single-crystal x-ray diffraction and ab initio calculations. We report on the influence of pressure on the crystal structure, and on the elastic and thermodynamic properties. The equation of state for both compounds is accurately determined. We have also obtained information on the polyhedral compressibility which is used to explain the anisotropic axial compressibility and the bulk compressibility. Both compounds are ductile and more resistive to volume compression than to shear deformation at all pressures. Furthermore, the elastic anisotropy is enhanced upon compression. Finally, the calculation…

DiffractionZirconEquation of stateMaterials scienceEcuación de estadoThermodynamicsFOS: Physical sciences02 engineering and technologyCrystal structurezircon01 natural sciencesCondensed Matter::Materials ScienceAb initio quantum chemistry methods0103 physical sciencesGeneral Materials Science010306 general physicsAnisotropySofteningOrthophosphateCondensed Matter - Materials ScienceEquation of stateorthophosphateElastic propertiesMaterials Science (cond-mat.mtrl-sci)Difracción de rayos X021001 nanoscience & nanotechnologyCondensed Matter PhysicsCompression (physics)Cálculos ab initioX-ray diffractionHigh pressureFISICA APLICADAZirconioCompressibilityOrtofosfatosAb initio calculationselastic properties0210 nano-technologyPropiedades elásticasAlta presión
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Polymorphism in Strontium Tungstate SrWO 4 under Quasi-Hydrostatic Compression

2016

The structural and vibrational properties of SrWO4 have been studied experimentally up to 27 and 46 GPa, respectively, by angle-dispersive synchrotron X-ray diffraction and Raman spectroscopy measurements as well as using ab initio calculations. The existence of four polymorphs upon quasi-hydrostatic compression is reported. The three phase transitions were found at 11.5, 19.0, and 39.5 GPa. The ambient-pressure SrWO4 tetragonal scheelite-type structure (S.G. I41/a) undergoes a transition to a monoclinic fergusonite-type structure (S.G. I2/a) at 11.5 GPa with a 1.5% volume decrease. Subsequently, at 19.0 GPa, another structural transformation takes place. Our calculations indicate two possi…

Diffraction[PHYS]Physics [physics]02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesInorganic Chemistrychemistry.chemical_compoundsymbols.namesakeCrystallographyTetragonal crystal systemTungstatechemistryPolymorphism (materials science)Ab initio quantum chemistry methods0103 physical sciencessymbolsOrthorhombic crystal systemPhysical and Theoretical Chemistry010306 general physics0210 nano-technologyRaman spectroscopyComputingMilieux_MISCELLANEOUSMonoclinic crystal system
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