Phonon thermal transport in UO via self-consistent perturbation theory
arXiv:2310.09282 · doi:10.1103/PhysRevLett.132.106502
Abstract
Computing thermal transport from first-principles in UO is complicated due to the challenges associated with Mott physics. Here we use irreducible derivative approaches to compute the cubic and quartic phonon interactions in UO from first-principles, and we perform enhanced thermal transport computations by evaluating the phonon Green's function via self-consistent diagrammatic perturbation theory. Our predicted phonon lifetimes at K agree well with our inelastic neutron scattering measurements across the entire Brillouin zone, and our thermal conductivity predictions agree well with previous measurements. Both the changes due to thermal expansion and self-consistent contributions are nontrivial at high temperatures, though the effects tend to cancel, and interband transitions yield a substantial contribution.
References in corpus (7)
- Distribution of phonon lifetime in Brillouin zone
- Thermal Energy Transport in Oxide Nuclear Fuel
- Capturing the ground state of uranium dioxide from first principles: crystal distortion, magnetic structure, and phonons
- A group theoretical approach to computing phonons and their interactions
- Validating First-Principles Phonon Lifetimes via Inelastic Neutron Scattering
- The generalized quasiharmonic approximation via space group irreducible derivatives
- Anharmonic phonon behavior via irreducible derivatives: self-consistent perturbation theory and molecular dynamics