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Pressure‐induced phase transition and elastic properties of TiO<sub>2</sub>polymorphs
73
Citations
32
References
2009
Year
Relative StabilitiesEngineeringSolid-state ChemistryTio 2ChemistryMolecular DynamicsMaterial PhysicPseudopotential MethodMaterials ScienceCrystal MaterialSolid MechanicsMechanical DeformationCrystallographyMechanical PropertiesPhase EquilibriumApplied PhysicsTitanium Dioxide MaterialsPressure‐induced Phase TransitionMechanics Of Materials
Abstract A theoretical study was carried out by first‐principles calculations using plane‐wave pseudopotential method to investigate the crystal structures, relative stabilities, and elastic properties of seven known titanium dioxide (TiO 2 ) polymorphs. Our calculated equilibrium structural parameters of TiO 2 polymorphs are in good agreement with the experimental results. Firstly, it is worth to note that from our energy‐minimized generalized gradient approximation (GGA) calculations, the four phases of TiO 2 – anatase, rutile, columbite, and baddeleyite – are seen to lie within a very close energy range (0.02 eV/atom) of each other, which implies easy phase transition between them. Secondly, on the basis of enthalpy versus pressure data obtained from our GGA calculations for high‐pressure forms, we demonstrate the phase transition pressure and the expected sequence of the phase transition of TiO 2 , which are in reasonable agreement with experimental observations. Finally, we calculate the elastic constants of all the TiO 2 polymorphs, and based on them, the bulk modulus, shear modulus, Young's modulus, and Poisson's ratio are estimated. The results show that cotunnite‐type TiO 2 is a potential low‐compressible material.
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