English

How to verify the precision of density-functional-theory implementations via reproducible and universal workflows

Materials Science 2024-01-10 v1 Computational Physics

Abstract

In the past decades many density-functional theory methods and codes adopting periodic boundary conditions have been developed and are now extensively used in condensed matter physics and materials science research. Only in 2016, however, their precision (i.e., to which extent properties computed with different codes agree among each other) was systematically assessed on elemental crystals: a first crucial step to evaluate the reliability of such computations. We discuss here general recommendations for verification studies aiming at further testing precision and transferability of density-functional-theory computational approaches and codes. We illustrate such recommendations using a greatly expanded protocol covering the whole periodic table from Z=1 to 96 and characterizing 10 prototypical cubic compounds for each element: 4 unaries and 6 oxides, spanning a wide range of coordination numbers and oxidation states. The primary outcome is a reference dataset of 960 equations of state cross-checked between two all-electron codes, then used to verify and improve nine pseudopotential-based approaches. Such effort is facilitated by deploying AiiDA common workflows that perform automatic input parameter selection, provide identical input/output interfaces across codes, and ensure full reproducibility. Finally, we discuss the extent to which the current results for total energies can be reused for different goals (e.g., obtaining formation energies).

Keywords

Cite

@article{arxiv.2305.17274,
  title  = {How to verify the precision of density-functional-theory implementations via reproducible and universal workflows},
  author = {Emanuele Bosoni and Louis Beal and Marnik Bercx and Peter Blaha and Stefan Blügel and Jens Bröder and Martin Callsen and Stefaan Cottenier and Augustin Degomme and Vladimir Dikan and Kristjan Eimre and Espen Flage-Larsen and Marco Fornari and Alberto Garcia and Luigi Genovese and Matteo Giantomassi and Sebastiaan P. Huber and Henning Janssen and Georg Kastlunger and Matthias Krack and Georg Kresse and Thomas D. Kühne and Kurt Lejaeghere and Georg K. H. Madsen and Martijn Marsman and Nicola Marzari and Gregor Michalicek and Hossein Mirhosseini and Tiziano M. A. Müller and Guido Petretto and Chris J. Pickard and Samuel Poncé and Gian-Marco Rignanese and Oleg Rubel and Thomas Ruh and Michael Sluydts and Danny E. P. Vanpoucke and Sudarshan Vijay and Michael Wolloch and Daniel Wortmann and Aliaksandr V. Yakutovich and Jusong Yu and Austin Zadoks and Bonan Zhu and Giovanni Pizzi},
  journal= {arXiv preprint arXiv:2305.17274},
  year   = {2024}
}

Comments

Main text: 23 pages, 4 figures. Supplementary: 68 pages. Nature Review Physics 2023