Jump to: Tests | Visualizers | Files | Wiki

Sim_LAMMPS_ReaxFF_StrachanVanDuinChakraborty_2003_CHNO__SM_107643900657_001

Interatomic potential for Carbon (C), Hydrogen (H), Nitrogen (N), Oxygen (O).
Use this Potential

Title
A single sentence description.
LAMMPS ReaxFF potential for RDX (C-H-N-O) systems developed by Strachan et al. (2003) v001
Citations

This panel presents information regarding the papers that have cited the interatomic potential (IP) whose page you are on.

The OpenKIM machine learning based Deep Citation framework is used to determine whether the citing article actually used the IP in computations (denoted by "USED") or only provides it as a background citation (denoted by "NOT USED"). For more details on Deep Citation and how to work with this panel, click the documentation link at the top of the panel.

The word cloud to the right is generated from the abstracts of IP principle source(s) (given below in "How to Cite") and the citing articles that were determined to have used the IP in order to provide users with a quick sense of the types of physical phenomena to which this IP is applied.

The bar chart shows the number of articles that cited the IP per year. Each bar is divided into green (articles that USED the IP) and blue (articles that did NOT USE the IP).

Users are encouraged to correct Deep Citation errors in determination by clicking the speech icon next to a citing article and providing updated information. This will be integrated into the next Deep Citation learning cycle, which occurs on a regular basis.

OpenKIM acknowledges the support of the Allen Institute for AI through the Semantic Scholar project for providing citation information and full text of articles when available, which are used to train the Deep Citation ML algorithm.

This panel provides information on past usage of this interatomic potential (IP) powered by the OpenKIM Deep Citation framework. The word cloud indicates typical applications of the potential. The bar chart shows citations per year of this IP (bars are divided into articles that used the IP (green) and those that did not (blue)). The complete list of articles that cited this IP is provided below along with the Deep Citation determination on usage. See the Deep Citation documentation for more information.

Help us to determine which of the papers that cite this potential actually used it to perform calculations. If you know, click the  .
Description LAMMPS ReaxFF potential for RDX (C-H-N-O) systems ('pair_style reax/c' with potential file ffield.reax.rdx and additional control and charge equilibration information). The parameters of the nitramine ReaxFF are based on a large number of ab initio QM calculations. Over 40 reactions and over 1600 equilibrated molecules have been used; they are designed to characterize the atomic interactions under various environments likely and unlikely high energy each atom can encounter. The training set contains bond breaking and compression curves for all possible bonds, angle and torsion bending data for all possible cases, as well as crystal data. See the supplemental material from Phys. Rev. Lett. 2003, 91, 098301 for a detailed description of the parameterization of this force field.
Species
The supported atomic species.
C, H, N, O
Disclaimer
A statement of applicability provided by the contributor, informing users of the intended use of this KIM Item.
None
Content Origin LAMMPS package 29-Feb-2019
Contributor Ellad B. Tadmor
Maintainer Ellad B. Tadmor
Developer Debashis Chakraborty
Siddharth Dasgupta
Adri C. T. van Duin
Alejandro Strachan
William A. Goddard
Published on KIM 2020
How to Cite

This Simulator Model originally published in [1] is archived in OpenKIM [2-4].

[1] Strachan A, Duin ACT van, Chakraborty D, Dasgupta S, Goddard WA. Shock Waves in High-Energy Materials: The Initial Chemical Events in Nitramine RDX. Physical Review Letters. 2003Aug;91(9):098301. doi:10.1103/PhysRevLett.91.098301 — (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] Chakraborty D, Dasgupta S, Duin ACT van, Strachan A, Goddard WA. LAMMPS ReaxFF potential for RDX (C-H-N-O) systems developed by Strachan et al. (2003) v001. OpenKIM; 2020. doi:10.25950/ecee6dc8

[3] 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

[4] 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 Not available
Short KIM ID
The unique KIM identifier code.
SM_107643900657_001
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.
Sim_LAMMPS_ReaxFF_StrachanVanDuinChakraborty_2003_CHNO__SM_107643900657_001
DOI 10.25950/ecee6dc8
https://doi.org/10.25950/ecee6dc8
https://commons.datacite.org/doi.org/10.25950/ecee6dc8
KIM Item TypeSimulator Model
KIM API Version2.1
Simulator Name
The name of the simulator as defined in kimspec.edn.
LAMMPS
Potential Type reax
Simulator Potential reax/c
Run Compatibility portable-models
Previous Version Sim_LAMMPS_ReaxFF_StrachanVanDuinChakraborty_2003_CHNO__SM_107643900657_000

(Click here to learn more about Verification Checks)

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
F vc-periodicity-support mandatory
Periodic boundary conditions are handled correctly; see full description.
Results Files
F vc-permutation-symmetry mandatory
Total energy and forces are unchanged when swapping atoms of the same species; see full description.
Results Files
D 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
F vc-objectivity informational
Total energy is unchanged and forces transform correctly under rigid-body translation and rotation; see full description.
Results Files
F vc-inversion-symmetry informational
Total energy is unchanged and forces change sign when inverting a configuration through the origin; see full description.
Results Files
N/A 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
N/A 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


BCC Lattice Constant

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.

Species: H
Species: N
Species: O
Species: C


Cohesive Energy Graph

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.

Species: O
Species: C
Species: N


Diamond Lattice Constant

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.

Species: C
Species: O
Species: H
Species: N


Dislocation Core Energies

This graph shows the dislocation core energy of a cubic crystal at zero temperature and pressure for a specific set of dislocation core cutoff radii. After obtaining the total energy of the system from conjugate gradient minimizations, non-singular, isotropic and anisotropic elasticity are applied to obtain the dislocation core energy for each of these supercells with different dipole distances. Graphs are generated for each species supported by the model.

(No matching species)

FCC Elastic Constants

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.

Species: H
Species: C
Species: N
Species: O


FCC Lattice Constant

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.

Species: H
Species: O
Species: N
Species: C


FCC Stacking Fault Energies

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)

FCC Surface Energies

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)

SC Lattice Constant

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.

Species: H
Species: N
Species: C
Species: O


Cubic Crystal Basic Properties Table

Species: C

Species: H

Species: N

Species: O





Cohesive energy versus lattice constant curve for monoatomic cubic lattices v003

Creators:
Contributor: karls
Publication Year: 2019
DOI: https://doi.org/10.25950/64cb38c5

This Test Driver uses LAMMPS to compute the cohesive energy of a given monoatomic cubic lattice (fcc, bcc, sc, or diamond) at a variety of lattice spacings. The lattice spacings range from a_min (=a_min_frac*a_0) to a_max (=a_max_frac*a_0) where a_0, a_min_frac, and a_max_frac are read from stdin (a_0 is typically approximately equal to the equilibrium lattice constant). The precise scaling and number of lattice spacings sampled between a_min and a_0 (a_0 and a_max) is specified by two additional parameters passed from stdin: N_lower and samplespacing_lower (N_upper and samplespacing_upper). Please see README.txt for further details.
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 C v003 view 16431
Cohesive energy versus lattice constant curve for bcc N v003 view 7065
Cohesive energy versus lattice constant curve for bcc O v003 view 18413
Cohesive energy versus lattice constant curve for diamond C v003 view 20715
Cohesive energy versus lattice constant curve for diamond N v004 view 45203
Cohesive energy versus lattice constant curve for diamond O v004 view 26884
Cohesive energy versus lattice constant curve for fcc C v004 view 28267
Cohesive energy versus lattice constant curve for fcc N v004 view 52639
Cohesive energy versus lattice constant curve for fcc O v004 view 34304
Cohesive energy versus lattice constant curve for sc C v004 view 5963
Cohesive energy versus lattice constant curve for sc N v004 view 22749
Cohesive energy versus lattice constant curve for sc O v004 view 4157


Elastic constants for cubic crystals at zero temperature and pressure v006

Creators: Junhao Li and Ellad Tadmor
Contributor: tadmor
Publication Year: 2019
DOI: https://doi.org/10.25950/5853fb8f

Computes the cubic elastic constants for some common crystal types (fcc, bcc, sc, diamond) by calculating the hessian of the energy density with respect to strain. An estimate of the error associated with the numerical differentiation performed is reported.
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 C at zero temperature v006 view 42612
Elastic constants for bcc H at zero temperature v006 view 16751
Elastic constants for bcc N at zero temperature v006 view 26213
Elastic constants for bcc O at zero temperature v006 view 64605
Elastic constants for diamond C at zero temperature v001 view 1647867
Elastic constants for diamond H at zero temperature v001 view 59810
Elastic constants for diamond N at zero temperature v001 view 1036019
Elastic constants for diamond O at zero temperature v001 view 602354
Elastic constants for fcc C at zero temperature v006 view 40918
Elastic constants for fcc H at zero temperature v006 view 108592
Elastic constants for fcc N at zero temperature v006 view 46736
Elastic constants for fcc O at zero temperature v006 view 72437
Elastic constants for sc C at zero temperature v006 view 4731
Elastic constants for sc H at zero temperature v006 view 8759
Elastic constants for sc N at zero temperature v006 view 13011
Elastic constants for sc O at zero temperature v006 view 5179


Equilibrium structure and energy for a crystal structure at zero temperature and pressure v001

Creators:
Contributor: ilia
Publication Year: 2023
DOI: https://doi.org/10.25950/e8a7ed84

Computes the equilibrium crystal structure and energy for an arbitrary crystal at zero temperature and applied stress by performing symmetry-constrained relaxation. The crystal structure is specified using the AFLOW prototype designation. Multiple sets of free parameters corresponding to the crystal prototype may be specified as initial guesses for structure optimization. No guarantee is made regarding the stability of computed equilibria, nor that any are the ground state.
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 crystal structure and energy for CH in AFLOW crystal prototype A19B34_mP106_4_19a_34a v001 view 23998958
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B8C6D3_mP76_14_2e_8e_6e_3e v000 view 61357607
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B8C6D7_mC92_15_2e_4f_2e2f_e3f v000 view 58385621
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B9C11D8_mC120_15_f_e4f_e5f_4f v000 view 86422148
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B5C5D_mP56_14_3e_5e_5e_e v000 view 45639704
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B6C4D3_mC128_15_3f_6f_4f_3f v000 view 86518517
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B7C3D5_mC72_15_ef_e3f_ef_e2f v000 view 63683058
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B8C2D_aP56_2_6i_16i_4i_2i v000 view 51702867
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B8C3D3_mP68_14_3e_8e_3e_3e v000 view 62494676
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A4B11CD10_aP52_2_4i_11i_i_10i v000 view 49998921
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A4B2C3_oP18_59_ef_ab_ae v000 view 10929037
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A4B2C3_oP72_56_4e_cde_cd2e v000 view 56071581
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A4B2C3_tP72_77_8d_ab2c2d_6d v000 view 64478454
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A4B9CD4_mP72_14_4e_9e_e_4e v000 view 57829492
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A5B12C2D_oP40_31_3ab_2a5b_2a_a v000 view 1584387
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A5B14C2D2_mP92_14_5e_14e_2e_2e v000 view 69066704
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A5B3C3_mP44_14_5e_3e_3e v000 view 127426558
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A5B4_hR18_161_2ab_ab v001 view 36549413
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A5BC2_mP32_14_5e_e_2e v000 view 57747184
Equilibrium crystal structure and energy for HNO in AFLOW crystal prototype A7BC6_oP56_19_7a_a_6a v000 view 1982232
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A8B9CD9_mC216_15_8f_9f_f_9f v000 view 280043548
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cF16_227_c v001 view 229696
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cF240_202_h2i v001 view 4410531
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cF8_227_a v001 view 128983
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cI16_206_c v001 view 98872
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cI16_229_f v001 view 111093
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_cI20_217_ce v001 view 245230
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_cI8_199_a v001 view 92835
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cI8_214_a v001 view 97179
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cP1_221_a v001 view 63976
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_cP20_221_gj v001 view 126995
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_cP8_205_c v001 view 76124
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP12_194_bc2f v001 view 246040
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP12_194_e2f v001 view 157548
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP16_194_e3f v001 view 257156
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP2_191_c v001 view 77302
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_hP2_194_c v001 view 79510
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP4_194_bc v001 view 72737
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP4_194_f v001 view 83265
Equilibrium crystal structure and energy for H in AFLOW crystal prototype A_hP4_194_f v001 view 119118
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_hP4_194_f v001 view 63976
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_hP4_194_f v001 view 54185
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP8_194_ef v001 view 101891
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR10_166_5c v001 view 1064847
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR14_166_7c v001 view 477723
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_hR16_167_cf v001 view 656180
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR2_166_c v001 view 93498
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_hR2_166_c v001 view 71117
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR4_166_2c v001 view 231316
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR60_166_2h4i v001 view 4665257
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_mC16_12_4i v001 view 208125
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_oC12_63_cg v001 view 112345
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oC16_65_mn v001 view 449527
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oC16_65_pq v001 view 178677
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oC8_65_gh v001 view 88197
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oI120_71_lmn6o v001 view 3263155
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oP16_62_4c v001 view 176763
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_oP24_61_3c v001 view 354998
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_tI8_139_h v001 view 73326
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_tP4_136_f v001 view 67142
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_cI36_199_b_c v001 view 169622
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_cI36_204_d_g v001 view 457699
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_cI36_204_e_g v001 view 264003
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_cP12_205_a_c v001 view 90038
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB2_hP6_164_c_2d v001 view 110725
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_hR24_167_be_cf v001 view 41753867
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_mP12_11_2e_2ef v001 view 4513158
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_mP12_14_e_2e v001 view 231978
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB2_oC12_36_a_2a v001 view 14528858
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_oC12_64_a_f v001 view 106087
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_oP12_60_c_d v001 view 126112
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_oP24_19_2a_4a v001 view 256788
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_oP6_58_a_g v001 view 65817
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_tI12_122_a_d v001 view 92835
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB2_tI24_122_d_e v001 view 277844
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB2_tI6_119_a_f v001 view 97253
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB2_tP6_113_a_e v001 view 62283
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_tP6_136_a_f v001 view 94013
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype AB2C2_mP40_14_2e_4e_4e v000 view 39623731
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype AB2C2_oP20_33_a_2a_2a v000 view 12474184
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype AB2C2_oP40_61_c_2c_2c v000 view 37128585
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB2C2D2_oP56_19_2a_4a_4a_4a v000 view 55102515
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype AB2C_hR24_161_b_2b_b v000 view 924821
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype AB2C_oP80_60_c2d_5d_c2d v000 view 55309904
Equilibrium crystal structure and energy for HN in AFLOW crystal prototype AB3_mC64_9_4a_12a v001 view 44805436
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype AB3C3_mP28_14_e_3e_3e v000 view 47637691
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB3C5D4_oP52_19_a_3a_5a_4a v000 view 43721006
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB4C2D_oC192_20_ab2c_12c_6c_ab2c v000 view 153299820
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB4C2D_tP16_113_c_2e_e_c v000 view 470656
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB4C2D_tP16_129_c_i_ac_c v000 view 9098242
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB4C4D2_aP44_2_2i_8i_8i_4i v000 view 51286691
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB4C4D2_oF176_43_b_4b_4b_2b v000 view 103067301
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype AB5C3_oP36_19_a_5a_3a v000 view 47737446
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB5C3D4_mP52_14_e_5e_3e_4e v000 view 49148825
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB5CD2_mP18_7_a_5a_a_2a v000 view 12103799
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB5CD3_oP80_56_e_5e_e_3e v000 view 57485537
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB6C2D2_oI88_72_j_2j2k_fj_2j v000 view 56274627
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB6C4D_mP48_14_e_6e_4e_e v000 view 64978705
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB6C6D4_aP68_2_2i_12i_12i_8i v000 view 49054885
Equilibrium crystal structure and energy for CNO in AFLOW crystal prototype AB6C_oP32_62_c_6c_c v000 view 22069291
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB7C3D3_mP56_14_e_7e_3e_3e v000 view 60279729
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype AB8C6_mP60_14_e_8e_6e v000 view 54016760
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB9C7D3_oP80_57_d_3d3e_7d_de v000 view 2957630
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype AB9C9_aP38_2_i_9i_9i v000 view 44870149
Equilibrium crystal structure and energy for CH in AFLOW crystal prototype AB_cI16_199_a_a v001 view 150701
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB_cP8_198_a_a v001 view 2360789
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB_hR16_161_ab_ab v001 view 28134000
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB_mP8_14_e_e v001 view 2995176
Equilibrium crystal structure and energy for HN in AFLOW crystal prototype AB_oP32_53_2i_abegh v001 view 35829257
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype AB_tP16_92_b_b v001 view 519687
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype ABC_cP12_198_a_a_a v000 view 101817
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype ABC_mP48_14_4e_4e_4e v000 view 49988540
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype ABC_oI6_44_a_a_a v000 view 95191
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype ABC_tI6_107_a_a_a v000 view 81498


Equilibrium structure and energy for a crystal structure at zero temperature and pressure v002

Creators:
Contributor: ilia
Publication Year: 2024
DOI: https://doi.org/10.25950/2f2c4ad3

Computes the equilibrium crystal structure and energy for an arbitrary crystal at zero temperature and applied stress by performing symmetry-constrained relaxation. The crystal structure is specified using the AFLOW prototype designation. Multiple sets of free parameters corresponding to the crystal prototype may be specified as initial guesses for structure optimization. No guarantee is made regarding the stability of computed equilibria, nor that any are the ground state.
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 crystal structure and energy for CN in AFLOW crystal prototype A11B4_oP15_16_abcjku_u v002 view 894636
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A11B4_tP15_111_abcmn_n v002 view 147609
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B10C2D5_oP38_18_c_5c_c_a2c v001 view 228701
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B12C14D_mP58_13_g_6g_7g_e v001 view 2566558
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B2C2D_oP28_62_2c_2c_2c_c v001 view 186229
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype A2B3_oP20_19_2a_3a v002 view 3240088
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B4CD2_mC36_12_2i_2j_g_j v001 view 44461481
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype A2B5_hP14_194_bc_fh v002 view 67626
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B5CD4_mP48_14_2e_5e_e_4e v001 view 1997987
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B5CD_hR54_161_2b_5b_b_b v001 view 8055187
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B6C4D_mP52_14_2e_6e_4e_e v001 view 8374004
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B6CD_oP40_59_ef_ef2g_ab_e v001 view 41818579
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B7C7D6_aP44_2_2i_7i_7i_6i v001 view 7859245
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B8C2D3_oP60_33_2a_8a_2a_3a v001 view 52312813
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B9C3D3_oP68_33_2a_9a_3a_3a v001 view 1156431
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B9C7D6_oP96_29_2a_9a_7a_6a v001 view 42362634
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B9C9D6_aP52_2_2i_9i_9i_6i v001 view 43959758
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype A2B_cP12_205_c_a v002 view 159241
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A2B_cP72_205_2d_d v002 view 480521
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_hP36_185_2cd_2c v002 view 1023325
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_mP36_4_12a_6a v002 view 1374936
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_oI48_72_cdefg_k v002 view 234898
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_oP36_19_6a_3a v002 view 2669038
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_tP36_92_3b_ab v002 view 340134
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype A2BC2_mP20_11_4e_2e_4e v001 view 231978
Equilibrium crystal structure and energy for CHN in AFLOW crystal prototype A2BC3_oC24_36_b_a_ab v001 view 248764
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B20C4D10_oF148_42_ac_2c4e_e_2a4c v001 view 126560560
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B2_cP20_221_j_g v002 view 166603
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype A3B2_oP40_62_a3cd_2cd v002 view 20187477
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_cF56_227_ad_e v002 view 636817
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_cI28_220_a_c v002 view 140659
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_cP7_215_c_e v002 view 65135
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_hP14_176_h_ch v002 view 75221
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_hP14_187_jk_adjk v002 view 84092
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_hP28_159_2c_ab2c v002 view 474779
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B4_hR7_160_b_ab v002 view 258776
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B6C2D2_mP52_14_3e_6e_2e_2e v001 view 38102069
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype A3B8C2_mP52_14_3e_8e_2e v001 view 748989
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A3B9C3D2_oP68_19_3a_9a_3a_2a v001 view 62032412
Equilibrium crystal structure and energy for HN in AFLOW crystal prototype A3B_cP16_198_b_a v002 view 174807


Cohesive energy and equilibrium lattice constant of hexagonal 2D crystalline layers v002

Creators: Ilia Nikiforov
Contributor: ilia
Publication Year: 2019
DOI: https://doi.org/10.25950/dd36239b

Given atomic species and structure type (graphene-like, 2H, or 1T) of a 2D hexagonal monolayer crystal, as well as an initial guess at the lattice spacing, this Test Driver calculates the equilibrium lattice spacing and cohesive energy using Polak-Ribiere conjugate gradient minimization in LAMMPS
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 and equilibrium lattice constant of graphene v002 view 639


Equilibrium lattice constant and cohesive energy of a cubic lattice at zero temperature and pressure v007

Creators: Daniel S. Karls and Junhao Li
Contributor: karls
Publication Year: 2019
DOI: https://doi.org/10.25950/2765e3bf

Equilibrium lattice constant and cohesive energy of a cubic lattice at zero temperature and pressure.
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 C v007 view 17614
Equilibrium zero-temperature lattice constant for bcc H v007 view 7736
Equilibrium zero-temperature lattice constant for bcc N v007 view 10741
Equilibrium zero-temperature lattice constant for bcc O v007 view 19340
Equilibrium zero-temperature lattice constant for diamond C v007 view 42037
Equilibrium zero-temperature lattice constant for diamond H v007 view 31967
Equilibrium zero-temperature lattice constant for diamond N v007 view 41781
Equilibrium zero-temperature lattice constant for diamond O v007 view 31136
Equilibrium zero-temperature lattice constant for fcc C v007 view 20139
Equilibrium zero-temperature lattice constant for fcc H v007 view 38137
Equilibrium zero-temperature lattice constant for fcc N v007 view 23656
Equilibrium zero-temperature lattice constant for fcc O v007 view 24615
Equilibrium zero-temperature lattice constant for sc C v007 view 3708
Equilibrium zero-temperature lattice constant for sc H v007 view 4955
Equilibrium zero-temperature lattice constant for sc N v007 view 4667
Equilibrium zero-temperature lattice constant for sc O v007 view 3069


CohesiveEnergyVsLatticeConstant__TD_554653289799_003

EquilibriumCrystalStructure__TD_457028483760_000
Test Error Categories Link to Error page
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype A3B2_oP40_62_a3cd_2cd v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hP4_194_f v000 other view
Equilibrium crystal structure and energy for H in AFLOW crystal prototype A_hP4_194_f v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR10_166_5c v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_hR14_166_7c v000 other view
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_oC12_63_cg v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oC16_65_mn v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oI120_71_lmn6o v000 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oP16_62_4c v000 other view
Equilibrium crystal structure and energy for NO in AFLOW crystal prototype AB2_mP12_11_2e_2ef v000 other view

EquilibriumCrystalStructure__TD_457028483760_001
Test Error Categories Link to Error page
Equilibrium crystal structure and energy for H in AFLOW crystal prototype A_cI2_229_a v001 other view
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_cP8_198_2a v001 other view
Equilibrium crystal structure and energy for H in AFLOW crystal prototype A_hP2_194_c v001 other view
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_mC16_12_2ij v001 other view
Equilibrium crystal structure and energy for O in AFLOW crystal prototype A_mC4_12_i v001 other view
Equilibrium crystal structure and energy for C in AFLOW crystal prototype A_oC8_67_m v001 other view
Equilibrium crystal structure and energy for N in AFLOW crystal prototype A_oP2_51_e v001 other view
Equilibrium crystal structure and energy for H in AFLOW crystal prototype A_tP1_123_a v001 other view
Equilibrium crystal structure and energy for CO in AFLOW crystal prototype AB2_tP12_92_a_b v001 other view
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype AB5CD2_aP18_1_2a_10a_2a_4a v000 other view
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype AB_oP16_61_c_c v001 other view

EquilibriumCrystalStructure__TD_457028483760_002
Test Error Categories Link to Error page
Equilibrium crystal structure and energy for CH in AFLOW crystal prototype A19B34_mP106_4_19a_34a v002 other view
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B8C6D3_mP76_14_2e_8e_6e_3e v001 other view
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B8C6D7_mC92_15_2e_4f_2e2f_e3f v001 other view
Equilibrium crystal structure and energy for CHNO in AFLOW crystal prototype A2B9C11D8_mC120_15_f_e4f_e5f_4f v001 other view
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_aP36_1_24a_12a v002 other view
Equilibrium crystal structure and energy for HO in AFLOW crystal prototype A2B_mP12_4_4a_2a v002 other view
Equilibrium crystal structure and energy for CN in AFLOW crystal prototype A3B2_cP20_215_i_2e v002 other view
Equilibrium crystal structure and energy for CHO in AFLOW crystal prototype A3B2C4_tP36_76_3a_2a_4a v001 other view

LatticeConstantHexagonalEnergy__TD_942334626465_005

LinearThermalExpansionCoeffCubic__TD_522633393614_001

VacancyFormationEnergyRelaxationVolume__TD_647413317626_001
Test Error Categories Link to Error page
Monovacancy formation energy and relaxation volume for sc O other view

VacancyFormationMigration__TD_554849987965_001
Test Error Categories Link to Error page
Vacancy formation and migration energy for sc O other view

No Driver
Verification Check Error Categories Link to Error page
MemoryLeak__VC_561022993723_004 other view
PeriodicitySupport__VC_895061507745_004 other view



Wiki is ready to accept new content.

Login to edit Wiki content