The Open Quantum Materials Database (OQMD): assessing the accuracy of DFT formation energies

Открытая база данных квантовых материалов (OQMD): оценка точности энергий образования, вычисленных методом DFT
Chris Wolverton, Bryce Meredig, James E. Saal, Muratahan Aykol, Jeff W. Doak, Stefan Rühl, Scott Kirklin, Alexander Thompson
2015-12-09

DFT formation energiesICSDOpen Quantum Materials Database (OQMD)density functional theoryexperimental formation energies
Abstract The Open Quantum Materials Database (OQMD) is a high-throughput database currently consisting of nearly 300,000 density functional theory (DFT) total energy calculations of compounds from the Inorganic Crystal Structure Database (ICSD) and decorations of commonly occurring crystal structures. To maximise the impact of these data, the entire database is being made available, without restrictions, at www.oqmd.org/download . In this paper, we outline the structure and contents of the database, and then use it to evaluate the accuracy of the calculations therein by comparing DFT predictions with experimental measurements for the stability of all elemental ground-state structures and 1,670 experimental formation energies of compounds. This represents the largest comparison between DFT and experimental formation energies to date. The apparent mean absolute error between experimental measurements and our calculations is 0.096 eV/atom. In order to estimate how much error to attribute to the DFT calculations, we also examine deviation between different experimental measurements themselves where multiple sources are available, and find a surprisingly large mean absolute error of 0.082 eV/atom. Hence, we suggest that a significant fraction of the error between DFT and experimental formation energies may be attributed to experimental uncertainties. Finally, we evaluate the stability of compounds in the OQMD (including compounds obtained from the ICSD as well as hypothetical structures), which allows us to predict the existence of ~3,200 new compounds that have not been experimentally characterised and uncover trends in material discovery, based on historical data available within the ICSD.
1
Analysis of experimental-to-experimental deviations (where multiple sources exist) shows an experimental MAE of 0.082 eV/atom, implying experimental uncertainty contributes substantially to DFT–experiment discrepancies.
2
Comparison of DFT predictions with experimental data for elemental ground states and 1,670 compound formation energies yields a mean absolute error (MAE) of 0.096 eV/atom.
3
OQMD contains nearly 300,000 DFT total energy calculations for ICSD compounds and common structure decorations, and the full database is publicly downloadable.
4
OQMD data enable analysis of historical trends in material discovery based on ICSD entries.
5
Using OQMD stability analysis for both experimental and hypothetical structures, the authors predict approximately 3,200 previously uncharacterized stable compounds.

The Open Quantum Materials Database (OQMD) consisting of ~300,000 DFT total energy calculations of inorganic compounds and hypothetical structures

Assessment of the accuracy of DFT formation energies by comparing OQMD-calculated formation energies and elemental ground-state stabilities with experimental formation energies and inter-experimental deviations, and using the database to predict novel stable compounds

Publication Details
Publication Date
2015-12-09
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Chris Wolverton
Bryce Meredig
James E. Saal
Muratahan Aykol
Jeff W. Doak
Stefan Rühl
Scott Kirklin
Alexander Thompson
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%