English

Self-consistent Hubbard parameters from density-functional perturbation theory in the ultrasoft and projector-augmented wave formulations

Materials Science 2021-02-02 v2

Abstract

The self-consistent evaluation of Hubbard parameters using linear-response theory is crucial for quantitatively predictive calculations based on Hubbard-corrected density-functional theory. Here, we extend a recently-introduced approach based on density-functional perturbation theory (DFPT) for the calculation of the on-site Hubbard UU to also compute the inter-site Hubbard VV. DFPT allows to reduce significantly computational costs, improve numerical accuracy, and fully automate the calculation of the Hubbard parameters by recasting the linear response of a localized perturbation into an array of monochromatic perturbations that can be calculated in the primitive cell. In addition, here we generalize the entire formalism from norm-conserving to ultrasoft and projector-augmented wave formulations, and to metallic ground states. After benchmarking DFPT against the conventional real-space Hubbard linear response in a supercell, we demonstrate the effectiveness of the present extended Hubbard formulation in determining the equilibrium crystal structure of Lix_xMnPO4_4 (x=0,1) and the subtle energetics of Li intercalation.

Keywords

Cite

@article{arxiv.2011.03271,
  title  = {Self-consistent Hubbard parameters from density-functional perturbation theory in the ultrasoft and projector-augmented wave formulations},
  author = {Iurii Timrov and Nicola Marzari and Matteo Cococcioni},
  journal= {arXiv preprint arXiv:2011.03271},
  year   = {2021}
}

Comments

15 pages, 3 figures

R2 v1 2026-06-23T19:57:29.390Z