Automated Organization ProfileDepartment of Electromechanical, Systems and Metal Engineering, Ghent University, Belgium
Department of Electromechanical, Systems and Metal Engineering, Ghent University, Belgium
Current S-Index
Sum of Dataset Indices for all datasets
Average Dataset Index per Dataset
Average Dataset Index per dataset
Total Datasets
Total datasets in this organization
Average FAIR Score
Average FAIR Score per dataset
Total Citations
Total citations to the organization's datasets
Total Mentions
Total mentions of the organization's datasets
S-Index Interpretation
The S-Index (Sharing Index) is a comprehensive metric that represents the cumulative impact of all your datasets. It is calculated as the sum of Dataset Index scores across all your claimed datasets.
What it means:
- A higher S-index indicates greater overall impact of your datasets relative to typical datasets in their fields of research
- The S-Index grows as you add more datasets or as existing datasets gain more citations and mentions
- It provides a single number to track your research data impact over time
Current S-Index: 3.2 (sum of 2 datasets Dataset Index scores)
More information here.
S-Index Over Time
Cumulative Citations Over Time
Cumulative Mentions Over Time
Datasets
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). This data entry contains all data to reproduce the results, as well as the resulting curated all-electron dataset and the scripts to generate the figures of the paper.
Authors
- Bosoni, Emanuele ;
- Beal, Louis ;
- Bercx, Marnik ;
- Blaha, Peter ;
- Blügel, Stefan ;
- Bröder, Jens ;
- Callsen, Martin ;
- Cottenier, Stefaan ;
- Degomme, Augustin ;
- Dikan, Vladimir ;
- Eimre, Kristjan ;
- Flage-Larsen, Espen ;
- Fornari, Marco ;
- Garcia, Alberto ;
- Genovese, Luigi ;
- Giantomassi, Matteo ;
- Huber, Sebastiaan P. ;
- Janssen, Henning ;
- Kastlunger, Georg ;
- Krack, Matthias ;
- Kresse, Georg ;
- Kühne, Thomas D. ;
- Lejaeghere, Kurt ;
- Madsen, Georg K. H. ;
- Marsman, Martijn ;
- Marzari, Nicola ;
- Michalicek, Gregor ;
- Mirhosseini, Hossein ;
- Müller, Tiziano M. A. ;
- Petretto, Guido ;
- Pickard, Chris J. ;
- Poncé, Samuel ;
- Rignanese, Gian-Marco ;
- Rubel, Oleg ;
- Ruh, Thomas ;
- Sluydts, Michael ;
- Vanpoucke, Danny E. P. ;
- Vijay, Sudarshan ;
- Wolloch, Michael ;
- Wortmann, Daniel ;
- Yakutovich, Aliaksandr V. ;
- Yu, Jusong ;
- Zadoks, Austin ;
- Zhu, Bonan ;
- Pizzi, Giovanni
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). This data entry contains all data to reproduce the results, as well as the resulting curated all-electron dataset and the scripts to generate the figures of the paper.
Authors
- Bosoni, Emanuele ;
- Beal, Louis ;
- Bercx, Marnik ;
- Blaha, Peter ;
- Blügel, Stefan ;
- Bröder, Jens ;
- Callsen, Martin ;
- Cottenier, Stefaan ;
- Degomme, Augustin ;
- Dikan, Vladimir ;
- Eimre, Kristjan ;
- Flage-Larsen, Espen ;
- Fornari, Marco ;
- Garcia, Alberto ;
- Genovese, Luigi ;
- Giantomassi, Matteo ;
- Huber, Sebastiaan P. ;
- Janssen, Henning ;
- Kastlunger, Georg ;
- Krack, Matthias ;
- Kresse, Georg ;
- Kühne, Thomas D. ;
- Lejaeghere, Kurt ;
- Madsen, Georg K. H. ;
- Marsman, Martijn ;
- Marzari, Nicola ;
- Michalicek, Gregor ;
- Mirhosseini, Hossein ;
- Müller, Tiziano M. A. ;
- Petretto, Guido ;
- Pickard, Chris J. ;
- Poncé, Samuel ;
- Rignanese, Gian-Marco ;
- Rubel, Oleg ;
- Ruh, Thomas ;
- Sluydts, Michael ;
- Vanpoucke, Danny E. P. ;
- Vijay, Sudarshan ;
- Wolloch, Michael ;
- Wortmann, Daniel ;
- Yakutovich, Aliaksandr V. ;
- Yu, Jusong ;
- Zadoks, Austin ;
- Zhu, Bonan ;
- Pizzi, Giovanni