Search results for "RAMAN"

showing 10 items of 1328 documents

Pressure-Driven Symmetry-Preserving Phase Transitions in Co(IO3)2

2021

[EN] High-pressure synchrotron X-ray diffraction studies of cobalt iodate, Co(IO3)(2), reveal a counterintuitive pressure-induced expansion along certain crystallographic directions. High-pressure Raman and infrared spectroscopy, combined with density-functional theory calculations, reveal that with increasing pressure, it becomes energetically favorable for certain I-O bonds to increase in length over the full range of pressure studied up to 28 GPa. This phenomenon is driven by the high-pressure behavior of iodate ion lone electron pairs. Two pressure-induced isosymmetric monoclinic-monoclinic phase transitions are observed at around 3.0 and 9.0 GPa, which are characterized by increasing o…

DiffractionPhase transitionElectron pairMaterials sciencechemistry.chemical_elementInfrared spectroscopySynchrotronSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialslaw.inventionsymbols.namesakechemistry.chemical_compoundGeneral EnergychemistrylawChemical physicsFISICA APLICADAsymbolsPhysical and Theoretical ChemistryRaman spectroscopyCobaltIodateThe Journal of Physical Chemistry C
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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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Experimental and Theoretical Studies on alfa-In2Se3 at High Pressure

2018

[EN] alpha(R)-In2Se3 has been experimentally and theoretically studied under compression at room temperature by means of X-ray diffraction and Raman scattering measurements as well as by ab initio total-energy and lattice-dynamics calculations. Our study has confirmed the alpha (R3m) -> beta' (C2/m) ? beta (R (3) over barm) sequence of pressure-induced phase transitions and has allowed us to understand the mechanism of the monoclinic C2/m to rhombohedral R (3) over barm phase transition. The monoclinic C2/m phase enhances its symmetry gradually until a complete transformation to the rhombohedral R (3) over barm structure is attained above 10-12 GPa. The second-order character of this transi…

DiffractionPhase transitionHigh-pressureAb initio02 engineering and technology01 natural sciencesInorganic ChemistryCondensed Matter::Materials Sciencesymbols.namesake0103 physical sciencesPhysical and Theoretical Chemistry010306 general physicsRamanPhase transitionIndium selenideChemistry021001 nanoscience & nanotechnologySymmetry (physics)X-ray diffractionCrystallographyFISICA APLICADAX-ray crystallographyAb initiosymbols0210 nano-technologyRaman spectroscopyRaman scatteringMonoclinic crystal system
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Zircon to monazite phase transition in CeVO4: X-ray diffraction and Raman-scattering measurements

2011

X-ray diffraction and Raman-scattering measurements on cerium vanadate have been performed up to 12 and 16 GPa, respectively. Experiments reveal at 5.3 GPa the onset of a pressure-induced irreversible phase transition from the zircon to the monazite structure. Beyond this pressure, diffraction peaks and Raman-active modes of the monazite phase are measured. The zircon-to-monazite transition in CeVO4 is distinctive among the other rare-earth orthovanadates. We also observed softening of external translational T(Eg )a nd internalν2(B2g) bending modes. We attribute it to mechanical instabilities of zircon phase against the pressure-induced distortion. We additionally report lattice-dynamical a…

DiffractionPhase transitionMaterials scienceAnalytical chemistrychemistry.chemical_elementCondensed Matter PhysicsPhysics::GeophysicsElectronic Optical and Magnetic MaterialsCondensed Matter::Materials Sciencesymbols.namesakeCeriumchemistryMonazitePhase (matter)X-ray crystallographysymbolsRaman scatteringZirconPhysical Review B
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High-pressure vibrational and optical study of Bi2Te3

2011

We report an experimental and theoretical lattice dynamics study of bismuth telluride (Bi2Te 3 )u p to 23 GPa together with an experimental and theoretical study of the optical absorption and reflection up to 10 GPa. The indirect bandgap of the low-pressure rhombohedral (R-3m) phase (α-Bi2Te 3) was observed to decrease with pressure at a rate of − 6m eV/GPa. In regard to lattice dynamics, Raman-active modes of α-Bi2Te 3 were observed up to 7.4 GPa. The pressure dependence of their frequency and width provides evidence of the presence of an electronic-topological transition around 4.0 GPa. Above 7.4 GPa a phase transition is detected to the C2/m structure. On further increasing pressure two …

DiffractionPhase transitionMaterials scienceCondensed matter physicsBand gapHydrostatic pressureCondensed Matter PhysicsElectronic Optical and Magnetic Materialssymbols.namesakeHysteresischemistry.chemical_compoundchemistryPhase (matter)symbolsBismuth tellurideRaman spectroscopyPhysical Review B
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Giant conductivity enhancement: Pressure-induced semiconductor-metal phase transition in Cd0.90Zn0.1Te

2019

Element doping and pressure compression may change material properties for improved performance in applications. We report pressure-induced metallization in the semiconductor $\mathrm{C}{\mathrm{d}}_{0.90}\mathrm{Z}{\mathrm{n}}_{0.1}\mathrm{Te}$. Transport measurements showed an overall resistivity drop of 11 orders of magnitude under compression up to 12 GPa, which is indicative of a metallization transition. X-ray diffraction measurements revealed that the sample underwent a structural transition from a cubic-$F4\overline{3}m$ phase (zinc blende) to a cubic-$Fm\overline{3}m$ phase (rock salt) at about 5.5 GPa, followed by another transition to an orthorhombic $Cmcm$ structure at 13 GPa. A…

DiffractionPhase transitionMaterials scienceCondensed matter physicsDoping02 engineering and technologyConductivity021001 nanoscience & nanotechnology01 natural sciencesCondensed Matter::Materials Sciencesymbols.namesakeElectrical resistivity and conductivity0103 physical sciencessymbolsOrthorhombic crystal system010306 general physics0210 nano-technologyElectronic band structureRaman spectroscopyPhysical Review B
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High-pressure study of the behavior of mineral barite by x-ray diffraction

2011

In this paper, we report the angle-dispersive x-ray diffraction data of barite, BaSO 4, measured in a diamond-anvil cell up to a pressure of 48 GPa, using three different fluid pressure-transmitting media (methanol-ethanol mixture, silicone oil, and He). Our results show that BaSO 4 exhibits a phase transition at pressures that range from 15 to 27 GPa, depending on the pressure media used. This indicates that nonhydrostatic stresses have a crucial role in the high-pressure behavior of this compound. The new high-pressure (HP) phase has been solved and refined from powder data, having an orthorhombic P2 12 12 1 structure. The pressure dependence of the structural parameters of both room- and…

DiffractionPhase transitionMaterials scienceHigh-pressureAnalytical chemistryDensityHigh pressure (Technology)BaSO4symbols.namesakeBariteCationsPhase (matter)Barium compoundsCompostos de bariRamanMineralTemperatureOxidesTecnologia de les altes pressionsCondensed Matter PhysicsX-ray diffractionElectronic Optical and Magnetic MaterialsFISICA APLICADAHigh pressureTransitionX-ray crystallographysymbolsOrthorhombic crystal systemRaman spectroscopyBASO4Physical Review B
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Structural and vibrational behavior of cubic Cu1.80(3)Se cuprous selenide, berzelianite, under compression

2020

[EN] We have performed an experimental study of the crystal structure and lattice dynamics of cubic Cu1.80(3)Se at ambient temperature and high pressures. Two reversible phase transitions were found at 2.9 and 8.7 GPa. The indexation of the angle-dispersive synchrotron x-ray diffraction patterns suggests a large orthorhombic cell and a monoclinic cell for the high-pressure phases. Raman measurements provide additional information on the local structure. The compressibility of the three ambient temperature phases has been determined and compared to that of other sulphides and selenides.

DiffractionPhase transitionMaterials scienceHigh-pressureBerzelianiteAnalytical chemistry02 engineering and technologyCrystal structure010402 general chemistry01 natural scienceslaw.inventionchemistry.chemical_compoundsymbols.namesakelawSelenideMaterials ChemistryCompressibilityMechanical EngineeringCrystal structureMetals and Alloys021001 nanoscience & nanotechnologySynchrotron0104 chemical scienceschemistryMechanics of MaterialsPhase transitionsFISICA APLICADAsymbolsOrthorhombic crystal system0210 nano-technologyRaman spectroscopyMonoclinic crystal systemCopper selenide
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Pressure-induced amorphization of YVO4:Eu3+ nanoboxes

2016

A structural transformation from the zircon-type structure to an amorphous phase has been found in YVO4:Eu3+ nanoboxes at high pressures above 12.7 GPa by means of x-ray diffraction measurements. However, the pair distribution function of the high-pressure phase shows that the local structure of the amorphous phase is similar to the scheelite-type YVO4. These results are confirmed both by Raman spectroscopy and Eu3+ photoluminescence which detect the phase transition to a scheelite-type structure at 10.1 and 9.1 GPa, respectively. The irreversibility of the phase transition is observed with the three techniques after a maximum pressure in the upstroke of around 20 GPa. The existence of two …

DiffractionPhase transitionMaterials sciencePhotoluminescenceAnalytical chemistryBioengineeringNanotechnology02 engineering and technologyNanocrystal010402 general chemistry01 natural sciencessymbols.namesakePhase (matter)General Materials ScienceElectrical and Electronic EngineeringMechanical EngineeringPair distribution functionGeneral Chemistry021001 nanoscience & nanotechnologyAmorphous phaseAmorphization0104 chemical sciencesHigh pressureNanocrystalMechanics of MaterialsFISICA APLICADAsymbols0210 nano-technologyRaman spectroscopy
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AB$$_{2}$$O$$_{4}$$ Compounds at High Pressures

2014

In this chapter, we present an overview of the effects of pressure on the crystalline structure and physical properties of oxygen-based spinels and other related oxides. Recent X-ray diffraction and Raman spectroscopy studies are summarized. A brief description of pressure-driven transitions and post-spinel structures is also provided. We also compare the response to high-pressure of several spinel oxides. We conclude with an examination of elastic and magnetic properties.

DiffractionPhase transitionMaterials scienceSpinelchemistry.chemical_elementLattice vibrationmacromolecular substancesCrystal structureengineering.materialOxygensymbols.namesakeCrystallographychemistryengineeringsymbolsRaman spectroscopy
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