Coordination corrected ab initio formation enthalpies.pdf

Demet Usanmaz, Rico Friedrich, Corey Oses, Andrew Supka, Marco Fornari, Marco Buongiorno Nardelli, Cormac Toher, Stefano Curtarolo

Research output: Contribution to journalArticlepeer-review

Abstract

The correct calculation of formation enthalpy is one of the enablers of ab-initio computational materials design. For several classes of systems (e.g. oxides) standard density functional theory produces incorrect values. Here we propose the “coordination corrected enthalpies” method (CCE), based on the number of nearest neighbor cation–anion bonds, and also capable of correcting relative stability of polymorphs. CCE uses calculations employing the Perdew, Burke and Ernzerhof (PBE), local density approximation (LDA) and strongly constrained and appropriately normed (SCAN) exchange correlation functionals, in conjunction with a quasiharmonic Debye model to treat zero-point vibrational and thermal effects. The benchmark, performed on binary and ternary oxides (halides), shows very accurate room temperature results for all functionals, with the smallest mean absolute error of 27(24) meV/atom obtained with SCAN. The zero-point vibrational and thermal contributions to the formation enthalpies are small and with different signs—largely canceling each other.
Original languageAmerican English
Journalnpj Computational Materials
StatePublished - May 15 2019

Keywords

  • formation enthalpy
  • ab-initio computational materials design
  • coordination corrected enthalpies
  • CCE
  • PBE
  • LDA
  • SCAN

Disciplines

  • Physical Sciences and Mathematics
  • Physics

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