Publication | Closed Access
First principles calculation of thermo-mechanical properties of thoria using Quantum ESPRESSO
18
Citations
33
References
2016
Year
First Principles CalculationEngineeringThorium DioxideExperimental ThermodynamicsComputational ChemistryComputational MechanicsThermal ConductivityThermodynamic ModellingMechanicsQuantum MaterialsRheologyThermodynamicsThermal ConductionThermomechanical AnalysisQuantum EspressoThermoanalytical MethodMaterials SciencePhysicsThermal TransportThermal PropertyQuantum ChemistryPython Programming LanguageNatural SciencesApplied PhysicsCondensed Matter PhysicsPhononThermo-mechanical Properties
In this work, we have used Quantum ESPRESSO (QE), an open source first principles code, based on density-functional theory, plane waves, and pseudopotentials, along with quasi-harmonic approximation (QHA) to calculate the thermo-mechanical properties of thorium dioxide (ThO[Formula: see text]. Using Python programming language, our group developed qe-nipy-advanced, an interface to QE, which can evaluate the structural and thermo-mechanical properties of materials. We predicted the phonon contribution to thermal conductivity ([Formula: see text] using the Slack model. We performed the calculations within local density approximation (LDA) and generalized gradient approximation (GGA) with the recently proposed version for solids (PBEsol). We employed a Monkhorst-Pack [Formula: see text] k-points mesh in reciprocal space with a plane wave cut-off energy of 150 Ry to obtain the convergence of the structure. We calculated the dynamical matrices of the lattice on a [Formula: see text] mesh. We have predicted the heat capacity, thermal expansion and the phonon contribution to thermal conductivity, as a function of temperature up to 1400[Formula: see text]K, and compared them with the previous work and known experimental results.
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