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chemical_formula_hill
string
chemical_formula_reduced
string
chemical_formula_anonymous
string
atomic_numbers
sequence
elements
sequence
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int32
nsites
int32
cell
sequence
positions
sequence
pbc
sequence
dimension_types
sequence
nperiodic_dimensions
int32
structure_hash
string
multiplicity
int32
software
string
method
string
adsorption_energy
float64
atomic_forces
sequence
atomization_energy
float64
cauchy_stress
sequence
cauchy_stress_volume_normalized
bool
electronic_band_gap
float64
electronic_band_gap_type
string
energy
float64
formation_energy
float64
max_force_norm
float64
mean_force_norm
float64
property_object_metadata
string
property_object_metadata_id
string
property_object_last_modified
timestamp[ns]
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string
property_object_id
string
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string
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configuration_last_modified
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configuration_hash
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dataset_description
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dataset_elements
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dataset_nelements
int32
dataset_nproperty_objects
int64
dataset_nconfigurations
int32
dataset_nsites
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dataset_adsorption_energy_count
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dataset_atomic_forces_count
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dataset_atomization_energy_count
int64
dataset_cauchy_stress_count
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dataset_electronic_band_gap_count
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dataset_energy_count
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dataset_energy_mean
float64
dataset_energy_variance
float64
dataset_formation_energy_count
int64
dataset_last_modified
timestamp[ns]
dataset_dimension_types
sequence
dataset_nperiodic_dimensions
sequence
dataset_publication_year
string
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string
Ta
Ta
A
[ 73 ]
[ "Ta" ]
[ 1 ]
1
1
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1
VASP
DFT-PBE
null
[ [ 0, 0, 0 ] ]
null
[ [ 0.0034925470808607204, 0.019003468596856702, 0.008838028127592936 ], [ 0.019003468596856702, 0.01810136536354149, -0.022875730343473878 ], [ 0.008838028127592936, -0.022875730343473878, -0.015834896540536783 ] ]
null
null
null
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null
0
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{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T15:30:32
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PO_1082447645773689401867110
{"configuration_type": "slice_sample", "hash": "7940789923608474251760237604814968442006272925312225567157973028882216171000867096195651611048843836436221007456493621963660978614627133828894574272445958", "id": "MD_7940789923608474251760237"}
MD_7940789923608474251760237
null
[ "slice_sample" ]
[ "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_1021767156492186795663389
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
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45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta
Ta
A
[ 73 ]
[ "Ta" ]
[ 1 ]
1
1
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3
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1
VASP
DFT-PBE
null
[ [ 0, 0, 0 ] ]
null
[ [ 0.02263022091279123, -0.005546305316526952, -0.0043728156677908395 ], [ -0.005546305316526952, 0.020944776733296065, 0.0074485952141868025 ], [ -0.0043728156677908395, 0.0074485952141868025, 0.0215488512263987 ] ]
null
null
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{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T15:18:38
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PO_1302022068679871736677211
{"configuration_type": "fcc", "hash": "3899010675055765347650092215830810790223395615217613879834159826168331602026010327678082945956168388760152702770266025097212166153628481739615276175080854", "id": "MD_3899010675055765347650092"}
MD_3899010675055765347650092
null
[ "fcc" ]
[ "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_1069934185405209845876070
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
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45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
11519904379436006623820937470671622636399095511006003652433518451041718514865535059337610046166856795128655247286843173994218345029697537757479647159093127
DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta2
Ta
A
[ 73, 73 ]
[ "Ta" ]
[ 1 ]
1
2
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[ [ 0, 0, 0 ], [ 1.46594964, 1.82617738, 2.42546151 ] ]
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1
VASP
DFT-PBE
null
[ [ 0, 0, 0 ], [ 0, 0, 0 ] ]
null
[ [ 0.15198606771483728, 0.0051108100341169275, -0.014057871253133977 ], [ 0.0051108100341169275, 0.18211462662226227, 0.022724239848116824 ], [ -0.014057871253133977, 0.022724239848116824, 0.195440517534043 ] ]
null
null
null
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0
0
{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T15:20:31
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PO_4544189362439025846599522
{"configuration_type": "bcc_distorted", "hash": "9319549970378023349687781987856218912743726002575544524059222943706411868747729309398918570357811850777050636974140271241076158066208886341758031349401701", "id": "MD_9319549970378023349687781"}
MD_9319549970378023349687781
null
[ "bcc_distorted" ]
[ "DS_0shp3qrqk9k9_0", "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_7750722075837651134128787
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
3,775
45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
11519904379436006623820937470671622636399095511006003652433518451041718514865535059337610046166856795128655247286843173994218345029697537757479647159093127
DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta6
Ta
A
[ 73, 73, 73, 73, 73, 73 ]
[ "Ta" ]
[ 1 ]
1
6
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[ true, true, true ]
[ 1, 1, 1 ]
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1
VASP
DFT-PBE
null
[ [ 0, 0, 0 ], [ 0, 0, 0 ], [ 0, 0, 0 ], [ 0, 0, 0 ], [ 0.00852823, -0.00560792, 0.01808734 ], [ -0.00852823, 0.00560792, -0.01808734 ] ]
null
[ [ -0.0009695643662678993, -0.00445537747669889, 0.001437336932831102 ], [ -0.00445537747669889, 0.01395874893547318, -0.002123863134582284 ], [ 0.001437336932831102, -0.002123863134582284, 0.0016890845646266549 ] ]
null
null
null
-70.167958
null
0.006923
0.020769
{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T14:56:48
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PO_6129994183073880286026097
{"configuration_type": "C15", "hash": "11753186631053238971577006604951919533346656466773054385073637404295628073911630652112311084408878366972948297175038930783509526021456897036796421334623045", "id": "MD_1175318663105323897157700"}
MD_1175318663105323897157700
null
[ "C15" ]
[ "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_8550964397925675222606456
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
3,775
45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
11519904379436006623820937470671622636399095511006003652433518451041718514865535059337610046166856795128655247286843173994218345029697537757479647159093127
DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta121
Ta
A
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[ "Ta" ]
[ 1 ]
1
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MD_2876058403211599652222920
2024-08-16T14:53:50
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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MD_2876058403211599652222920
2024-08-16T15:35:55
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2023-12-02T06:25:21
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CO_2143798748868609344905116
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:24:11
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2023-12-02T06:25:21
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This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:54:01
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2023-12-02T06:25:21
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This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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DS_40zw467dnc6d_0
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2024-08-16T15:26:22
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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DS_40zw467dnc6d_0
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2024-08-16T14:49:52
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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DS_40zw467dnc6d_0
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2024-08-16T14:45:34
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:11:42
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:57:17
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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2024-08-16T15:29:49
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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2024-08-16T15:28:11
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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2024-08-16T14:37:05
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:27:49
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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2024-08-16T14:55:27
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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10.60732/43837a12
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DS_40zw467dnc6d_0
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MD_2876058403211599652222920
2024-08-16T15:05:30
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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DS_40zw467dnc6d_0
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2024-08-16T14:50:00
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2024-08-16T14:58:18
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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10.60732/43837a12
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2024-08-16T14:18:59
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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2024-08-16T15:19:54
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2023-12-02T06:25:21
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Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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Ta
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VASP
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2024-08-16T15:40:59
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2023-12-02T06:25:21
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CO_6625611559703046376028862
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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Ta
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VASP
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MD_2876058403211599652222920
2024-08-16T14:58:16
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MD_4659839076329245619199735
null
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2023-12-02T06:25:21
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CO_1198794928707588954808390
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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CC-BY-4.0
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10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta12
Ta
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MD_2876058403211599652222920
2024-08-16T14:43:02
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2023-12-02T06:25:21
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CO_1308265563496556023650076
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
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2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
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CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta6
Ta
A
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MD_2876058403211599652222920
2024-08-16T14:20:19
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MD_1175318663105323897157700
null
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2023-12-02T06:25:21
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CO_1229421731846016494768036
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
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[ 1 ]
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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MD_2876058403211599652222920
2024-08-16T14:17:59
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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DS_40zw467dnc6d_0
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MD_2876058403211599652222920
2024-08-16T14:49:04
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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MD_2876058403211599652222920
2024-08-16T15:17:43
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2023-12-02T06:25:21
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[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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MD_2876058403211599652222920
2024-08-16T15:28:07
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2023-12-02T06:25:21
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CO_8181989736290120471445834
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta128
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null
[]
null
null
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MD_2876058403211599652222920
2024-08-16T14:20:01
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PO_4986383563386773500964706
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MD_6686363060092726708743168
null
[ "surf_liquid" ]
[ "DS_0shp3qrqk9k9_0", "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_1139230683890405480042013
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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CC-BY-4.0
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10.60732/43837a12
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DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta2
Ta
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MD_2876058403211599652222920
2024-08-16T15:08:40
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PO_1037009414892544338971075
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MD_9319549970378023349687781
null
[ "bcc_distorted" ]
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2023-12-02T06:25:21
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CO_5846743416206263223775768
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
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2023-12-02T01:26:31
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CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
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DS_40zw467dnc6d_0
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Ta2
Ta
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null
[ [ 0.05164151504018987, -0.007437949140740051, -0.00023326823344413123 ], [ -0.007437949140740051, 0.050570334373992325, 0.0023108455222333488 ], [ -0.00023326823344413123, 0.0023108455222333488, 0.07087410532389112 ] ]
null
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null
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null
0.614319
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{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T15:27:47
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PO_6121574184002856886690524
{"configuration_type": "dia", "hash": "9785073725370572482662770224213369903455095161738817608588706339225102625029916768231407345282484549530115872080342714836850383542847346796892743549006929", "id": "MD_9785073725370572482662770"}
MD_9785073725370572482662770
null
[ "dia" ]
[ "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
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CO_6910696255538871014390532
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
3,775
45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
11519904379436006623820937470671622636399095511006003652433518451041718514865535059337610046166856795128655247286843173994218345029697537757479647159093127
DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
Ta2
Ta
A
[ 73, 73 ]
[ "Ta" ]
[ 1 ]
1
2
[ [ 3.60996993564, -0.124947295548, -0.103722475216 ], [ 0.0593498892165, 3.50160908727, 0.0933104686609 ], [ -0.116786518699, 0.0752688422877, 3.35729335342 ] ]
[ [ 0, 0, 0 ], [ 1.77626665, 1.72596532, 1.67344067 ] ]
[ true, true, true ]
[ 1, 1, 1 ]
3
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1
VASP
DFT-PBE
null
[ [ 0, 0, 0 ], [ 0, 0, 0 ] ]
null
[ [ 0.1419504128119035, -0.006840404695529216, -0.014218254045325044 ], [ -0.006840404695529216, 0.1315844950755533, 0.009942172781193014 ], [ -0.014218254045325044, 0.009942172781193014, 0.12244639185422433 ] ]
null
null
null
-23.125062
null
0
0
{"POTCAR": "PAW_PBE Ta_pv 07Sep2000", "input": {"EDIFF": "1.00e-06", "ENCUT": "500.000000", "GGA": "PE", "ISMEAR": 1, "KSPACING": "bulk: 0.150000; surface: 1 k-point along surface normal", "LASPH": ".TRUE.", "NELMIN": 4, "PREC": "Accurate", "SIGMA": "0.100000", "file-type": "INCAR"}, "hash": "2876058403211599652222920829484496170262922042889077060703352115774764616890365779643895580266213938769668162332893143343175108070464485555315451520034742", "id": "MD_2876058403211599652222920"}
MD_2876058403211599652222920
2024-08-16T14:54:47
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PO_3262393425528802757541059
{"configuration_type": "bcc_distorted", "hash": "9319549970378023349687781987856218912743726002575544524059222943706411868747729309398918570357811850777050636974140271241076158066208886341758031349401701", "id": "MD_9319549970378023349687781"}
MD_9319549970378023349687781
null
[ "bcc_distorted" ]
[ "DS_40zw467dnc6d_0" ]
2023-12-02T06:25:21
7347389890718027333625947626335532027522012810344499703256313823980704267877297575002584488377035326248876546150729249743015595676553728464642665707114089
CO_7347389890718027333625947
Ta_PRM2019
[ "Jesper Byggmästar", "Kai Nordlund", "Flyura Djurabekova" ]
This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.
[ "Ta" ]
1
3,773
3,775
45,439
0
3,773
0
3,773
0
3,773
-136.87296
97,332.124136
0
2023-12-02T01:26:31
[ [ 1, 1, 1 ] ]
[ 3 ]
2023
[ 1 ]
CC-BY-4.0
{'source-publication': 'https://doi.org/10.1103/PhysRevMaterials.4.093802', 'source-data': 'https://gitlab.com/acclab/gap-data/-/tree/master', 'other': None}
10.60732/43837a12
11519904379436006623820937470671622636399095511006003652433518451041718514865535059337610046166856795128655247286843173994218345029697537757479647159093127
DS_40zw467dnc6d_0
Ta_PRM2019__Byggmästar-Nordlund-Djurabekova__DS_40zw467dnc6d_0
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Dataset

Ta PRM2019

Description

This dataset was designed to enable machine-learning of Ta elastic, thermal, and defect properties, as well as surface energetics, melting, and the structure of the liquid phase. The dataset was constructed by starting with the dataset from J. Byggmästar et al., Phys. Rev. B 100, 144105 (2019), then rescaling all of the configurations to the correct lattice spacing and adding in gamma surface configurations.

Additional details stored in dataset columns prepended with "dataset_".

Dataset authors

Jesper Byggmästar, Kai Nordlund, Flyura Djurabekova

Publication

https://doi.org/10.1103/PhysRevMaterials.4.093802

Original data link

https://gitlab.com/acclab/gap-data/-/tree/master

License

CC-BY-4.0

Number of unique molecular configurations

3775

Number of atoms

45439

Elements included

Ta

Properties included

energy, atomic forces, cauchy stress

Cite this dataset

Byggmästar, J., Nordlund, K., and Djurabekova, F. Ta PRM2019. ColabFit, 2023. https://doi.org/10.60732/43837a12

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