Title
A single sentence description.
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Tersoff-ZBL potential for FeO developed by Byggmastar et al. (2019) v000 |
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Description
A short description of the Model describing its key features including for example: type of model (pair potential, 3-body potential, EAM, etc.), modeled species (Ac, Ag, ..., Zr), intended purpose, origin, and so on.
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This is an analytical bond-order potential for the Fe–O system, capable of reproducing the basic properties of wustite as well as the energetics of oxygen impurities in alpha-iron. The potential predicts binding energies of various small oxygen-vacancy clusters in alpha-iron in good agreement with density functional theory results, and is therefore suitable for simulations of oxygen-based defects in iron. The potential is not suitable for simulations of the Fe2O3 and Fe3O4 phases. |
Species
The supported atomic species.
| Fe, O |
Disclaimer
A statement of applicability provided by the contributor, informing users of the intended use of this KIM Item.
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None |
Content Origin | https://www.ctcms.nist.gov/potentials/entry/2019--Byggmastar-J-Nagel-M-Albe-K-et-al--Fe-O/ |
Contributor |
ilia Nikiforov |
Maintainer |
ilia Nikiforov |
Developer |
Jesper Byggmästar Morten Nagel Karsten Albe Krister O. E. Henriksson Kai Nordlund |
Published on KIM | 2022 |
How to Cite |
This Model originally published in [1] is archived in OpenKIM [2-5]. [1] Byggmästar J, Nagel M, Albe K, Henriksson KOE, Nordlund K. Analytical interatomic bond-order potential for simulations of oxygen defects in iron. Journal of Physics: Condensed Matter [Internet]. 2019Mar;31(21):215401. Available from: https://doi.org/10.1088/1361-648x/ab0931 doi:10.1088/1361-648x/ab0931 — (Primary Source) A primary source is a reference directly related to the item documenting its development, as opposed to other sources that are provided as background information. [2] Tersoff-ZBL potential for FeO developed by Byggmastar et al. (2019) v000. OpenKIM; 2022. doi:10.25950/dc7b5aa7 [3] Model driver for Tersoff-style potentials ported from LAMMPS v005. OpenKIM; 2021. doi:10.25950/9a7dc96c [4] Tadmor EB, Elliott RS, Sethna JP, Miller RE, Becker CA. The potential of atomistic simulations and the Knowledgebase of Interatomic Models. JOM. 2011;63(7):17. doi:10.1007/s11837-011-0102-6 [5] Elliott RS, Tadmor EB. Knowledgebase of Interatomic Models (KIM) Application Programming Interface (API). OpenKIM; 2011. doi:10.25950/ff8f563a Click here to download the above citation in BibTeX format. |
Funding |
Award Number: 259249 Funder: Academy of Finland Award Number: 633053 Funder: H2020 Euratom |
Short KIM ID
The unique KIM identifier code.
| MO_608695023236_000 |
Extended KIM ID
The long form of the KIM ID including a human readable prefix (100 characters max), two underscores, and the Short KIM ID. Extended KIM IDs can only contain alpha-numeric characters (letters and digits) and underscores and must begin with a letter.
| Tersoff_LAMMPS_ByggmastarNagelAlbe_2019_FeO__MO_608695023236_000 |
DOI |
10.25950/dc7b5aa7 https://doi.org/10.25950/dc7b5aa7 https://search.datacite.org/works/10.25950/dc7b5aa7 |
KIM Item Type
Specifies whether this is a Portable Model (software implementation of an interatomic model); Portable Model with parameter file (parameter file to be read in by a Model Driver); Model Driver (software implementation of an interatomic model that reads in parameters).
| Portable Model using Model Driver Tersoff_LAMMPS__MD_077075034781_005 |
Driver | Tersoff_LAMMPS__MD_077075034781_005 |
KIM API Version | 2.2 |
Potential Type | tersoff |
Grade | Name | Category | Brief Description | Full Results | Aux File(s) |
---|---|---|---|---|---|
P | vc-species-supported-as-stated | mandatory | The model supports all species it claims to support; see full description. |
Results | Files |
P | vc-periodicity-support | mandatory | Periodic boundary conditions are handled correctly; see full description. |
Results | Files |
P | vc-permutation-symmetry | mandatory | Total energy and forces are unchanged when swapping atoms of the same species; see full description. |
Results | Files |
A | vc-forces-numerical-derivative | consistency | Forces computed by the model agree with numerical derivatives of the energy; see full description. |
Results | Files |
F | vc-dimer-continuity-c1 | informational | The energy versus separation relation of a pair of atoms is C1 continuous (i.e. the function and its first derivative are continuous); see full description. |
Results | Files |
P | vc-objectivity | informational | Total energy is unchanged and forces transform correctly under rigid-body translation and rotation; see full description. |
Results | Files |
P | vc-inversion-symmetry | informational | Total energy is unchanged and forces change sign when inverting a configuration through the origin; see full description. |
Results | Files |
P | vc-memory-leak | informational | The model code does not have memory leaks (i.e. it releases all allocated memory at the end); see full description. |
Results | Files |
P | vc-thread-safe | mandatory | The model returns the same energy and forces when computed in serial and when using parallel threads for a set of configurations. Note that this is not a guarantee of thread safety; see full description. |
Results | Files |
N/A | vc-unit-conversion | mandatory | The model is able to correctly convert its energy and/or forces to different unit sets; see full description. |
Results | Files |
This bar chart plot shows the mono-atomic body-centered cubic (bcc) lattice constant predicted by the current model (shown in the unique color) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
This graph shows the cohesive energy versus volume-per-atom for the current mode for four mono-atomic cubic phases (body-centered cubic (bcc), face-centered cubic (fcc), simple cubic (sc), and diamond). The curve with the lowest minimum is the ground state of the crystal if stable. (The crystal structure is enforced in these calculations, so the phase may not be stable.) Graphs are generated for each species supported by the model.
This bar chart plot shows the mono-atomic face-centered diamond lattice constant predicted by the current model (shown in the unique color) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
This bar chart plot shows the mono-atomic face-centered cubic (fcc) elastic constants predicted by the current model (shown in blue) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
This bar chart plot shows the mono-atomic face-centered cubic (fcc) lattice constant predicted by the current model (shown in red) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
This bar chart plot shows the intrinsic and extrinsic stacking fault energies as well as the unstable stacking and unstable twinning energies for face-centered cubic (fcc) predicted by the current model (shown in blue) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
(No matching species)This bar chart plot shows the mono-atomic face-centered cubic (fcc) relaxed surface energies predicted by the current model (shown in blue) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
(No matching species)This bar chart plot shows the mono-atomic simple cubic (sc) lattice constant predicted by the current model (shown in the unique color) compared with the predictions for all other models in the OpenKIM Repository that support the species. The vertical bars show the average and standard deviation (one sigma) bounds for all model predictions. Graphs are generated for each species supported by the model.
Test | Test Results | Link to Test Results page | Benchmark time
Usertime multiplied by the Whetstone Benchmark. This number can be used (approximately) to compare the performance of different models independently of the architecture on which the test was run.
Measured in Millions of Whetstone Instructions (MWI) |
---|---|---|---|
Cohesive energy versus lattice constant curve for bcc Fe v004 | view | 2298 | |
Cohesive energy versus lattice constant curve for bcc O v004 | view | 2616 | |
Cohesive energy versus lattice constant curve for diamond Fe v004 | view | 2337 | |
Cohesive energy versus lattice constant curve for diamond O v003 | view | 2013 | |
Cohesive energy versus lattice constant curve for fcc Fe v004 | view | 2870 | |
Cohesive energy versus lattice constant curve for fcc O v003 | view | 2079 | |
Cohesive energy versus lattice constant curve for sc Fe v004 | view | 2348 | |
Cohesive energy versus lattice constant curve for sc O v003 | view | 2125 |
Test | Test Results | Link to Test Results page | Benchmark time
Usertime multiplied by the Whetstone Benchmark. This number can be used (approximately) to compare the performance of different models independently of the architecture on which the test was run.
Measured in Millions of Whetstone Instructions (MWI) |
---|---|---|---|
Elastic constants for bcc Fe at zero temperature v006 | view | 4584 | |
Elastic constants for bcc O at zero temperature v006 | view | 5703 | |
Elastic constants for diamond O at zero temperature v001 | view | 6784 | |
Elastic constants for fcc Fe at zero temperature v006 | view | 13082 | |
Elastic constants for fcc O at zero temperature v006 | view | 7193 | |
Elastic constants for sc Fe at zero temperature v006 | view | 12810 | |
Elastic constants for sc O at zero temperature v006 | view | 11895 |
Test | Test Results | Link to Test Results page | Benchmark time
Usertime multiplied by the Whetstone Benchmark. This number can be used (approximately) to compare the performance of different models independently of the architecture on which the test was run.
Measured in Millions of Whetstone Instructions (MWI) |
---|---|---|---|
Equilibrium zero-temperature lattice constant for bcc Fe v007 | view | 8375 | |
Equilibrium zero-temperature lattice constant for bcc O v007 | view | 6150 | |
Equilibrium zero-temperature lattice constant for diamond Fe v007 | view | 5516 | |
Equilibrium zero-temperature lattice constant for diamond O v007 | view | 4398 | |
Equilibrium zero-temperature lattice constant for fcc Fe v007 | view | 8275 | |
Equilibrium zero-temperature lattice constant for fcc O v007 | view | 6187 | |
Equilibrium zero-temperature lattice constant for sc Fe v007 | view | 8205 | |
Equilibrium zero-temperature lattice constant for sc O v007 | view | 4622 |
Test | Test Results | Link to Test Results page | Benchmark time
Usertime multiplied by the Whetstone Benchmark. This number can be used (approximately) to compare the performance of different models independently of the architecture on which the test was run.
Measured in Millions of Whetstone Instructions (MWI) |
---|---|---|---|
Equilibrium lattice constants for hcp Fe v005 | view | 29557 |
Test | Test Results | Link to Test Results page | Benchmark time
Usertime multiplied by the Whetstone Benchmark. This number can be used (approximately) to compare the performance of different models independently of the architecture on which the test was run.
Measured in Millions of Whetstone Instructions (MWI) |
---|---|---|---|
Linear thermal expansion coefficient of bcc Fe at 293.15 K under a pressure of 0 MPa v001 | view | 130691345 |
Test | Error Categories | Link to Error page |
---|---|---|
Elastic constants for diamond Fe at zero temperature v001 | other | view |
Test | Error Categories | Link to Error page |
---|---|---|
Elastic constants for hcp Fe at zero temperature v004 | other | view |
Test | Error Categories | Link to Error page |
---|---|---|
Equilibrium lattice constants for hcp O v005 | other | view |
Test | Error Categories | Link to Error page |
---|---|---|
Linear thermal expansion coefficient of bcc Fe at 293.15 K under a pressure of 0 MPa v001 | other | view |
Test | Error Categories | Link to Error page |
---|---|---|
Broken-bond fit of high-symmetry surface energies in bcc Fe v004 | other | view |
Verification Check | Error Categories | Link to Error page |
---|---|---|
MemoryLeak__VC_561022993723_004 | other | view |
PeriodicitySupport__VC_895061507745_004 | other | view |
Tersoff_LAMMPS_ByggmastarNagelAlbe_2019_FeO__MO_608695023236_000.txz | Tar+XZ | Linux and OS X archive |
Tersoff_LAMMPS_ByggmastarNagelAlbe_2019_FeO__MO_608695023236_000.zip | Zip | Windows archive |
This Model requires a Model Driver. Archives for the Model Driver Tersoff_LAMMPS__MD_077075034781_005 appear below.
Tersoff_LAMMPS__MD_077075034781_005.txz | Tar+XZ | Linux and OS X archive |
Tersoff_LAMMPS__MD_077075034781_005.zip | Zip | Windows archive |