Final Magnetic Moment0.008 μBCalculated total magnetic moment for the unit cell within the magnetic ordering provided (see below). Typically accurate to the second digit. |
Magnetic OrderingNM |
Formation Energy / Atom0.172 eVCalculated formation energy from the elements normalized to per atom in the unit cell. |
Energy Above Hull / Atom0.172 eVThe energy of decomposition of this material into the set of most stable materials at this chemical composition, in eV/atom. Stability is tested against all potential chemical combinations that result in the material's composition. For example, a Co2O3 structure would be tested for decomposition against other Co2O3 structures, against Co and O2 mixtures, and against CoO and O2 mixtures. |
Density1.41 g/cm3The calculated bulk crystalline density, typically underestimated due calculated cell volumes overestimated on average by 3% (+/- 6%) |
Decomposes ToAl + Na |
Band Gap0.000 eVIn general, band gaps computed with common exchange-correlation functionals such as the LDA and GGA are severely underestimated. Typically the disagreement is reported to be ~50% in the literature. Some internal testing by the Materials Project supports these statements; typically, we find that band gaps are underestimated by ~40%. We additionally find that several known insulators are predicted to be metallic. |
Hermann MauguinFm3m [225] |
Hall-F 4 2 3 |
Point Groupm3m |
Crystal Systemcubic |
Calculated powder diffraction pattern; note that peak spacings may be affected due to inaccuracies in calculated cell volume, which is typically overestimated on average by 3% (+/- 6%)
Select an element to display a spectrum averaged over all sites of that element in the structure.
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Download spectra for every symmetrically equivalent absorption site in the structure.
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substrate material | substrate orientation | film orientation | MCIA† [Å2] |
---|---|---|---|
LaAlO3 (mp-2920) | <0 0 1> | <1 1 1> | 101.8 |
LaAlO3 (mp-2920) | <1 0 0> | <1 0 0> | 293.8 |
LaAlO3 (mp-2920) | <1 1 0> | <1 1 0> | 249.3 |
AlN (mp-661) | <0 0 1> | <1 1 1> | 101.8 |
AlN (mp-661) | <1 0 0> | <1 0 0> | 235.1 |
CeO2 (mp-20194) | <1 0 0> | <1 0 0> | 58.8 |
CeO2 (mp-20194) | <1 1 0> | <1 1 0> | 83.1 |
GaAs (mp-2534) | <1 0 0> | <1 0 0> | 293.8 |
BaF2 (mp-1029) | <1 1 0> | <1 1 0> | 166.2 |
GaN (mp-804) | <0 0 1> | <1 1 0> | 249.3 |
SiO2 (mp-6930) | <1 1 1> | <1 1 0> | 166.2 |
KCl (mp-23193) | <1 1 0> | <1 1 0> | 166.2 |
DyScO3 (mp-31120) | <0 0 1> | <1 1 0> | 249.3 |
DyScO3 (mp-31120) | <0 1 0> | <1 0 0> | 176.3 |
InAs (mp-20305) | <1 0 0> | <1 0 0> | 293.8 |
InAs (mp-20305) | <1 1 0> | <1 1 0> | 166.2 |
ZnSe (mp-1190) | <1 0 0> | <1 0 0> | 293.8 |
KTaO3 (mp-3614) | <1 0 0> | <1 0 0> | 293.8 |
KTaO3 (mp-3614) | <1 1 0> | <1 1 0> | 249.3 |
CdS (mp-672) | <1 0 1> | <1 0 0> | 293.8 |
LiF (mp-1138) | <1 0 0> | <1 0 0> | 293.8 |
Ga2O3 (mp-886) | <1 0 -1> | <1 0 0> | 293.8 |
Ga2O3 (mp-886) | <1 0 1> | <1 0 0> | 235.1 |
Si (mp-149) | <1 0 0> | <1 0 0> | 58.8 |
Si (mp-149) | <1 1 0> | <1 1 0> | 83.1 |
TePb (mp-19717) | <1 1 0> | <1 1 0> | 249.3 |
Te2Mo (mp-602) | <0 0 1> | <1 0 0> | 293.8 |
Te2Mo (mp-602) | <1 0 0> | <1 1 0> | 166.2 |
Au (mp-81) | <1 0 0> | <1 0 0> | 293.8 |
CdSe (mp-2691) | <1 0 0> | <1 0 0> | 293.8 |
CdSe (mp-2691) | <1 1 0> | <1 1 0> | 166.2 |
WS2 (mp-224) | <0 0 1> | <1 0 0> | 176.3 |
C (mp-48) | <0 0 1> | <1 0 0> | 293.8 |
C (mp-48) | <1 0 0> | <1 1 0> | 249.3 |
C (mp-48) | <1 1 0> | <1 1 0> | 166.2 |
Ag (mp-124) | <1 0 0> | <1 0 0> | 293.8 |
Ag (mp-124) | <1 1 0> | <1 0 0> | 293.8 |
GaSe (mp-1943) | <0 0 1> | <1 1 0> | 249.3 |
BN (mp-984) | <0 0 1> | <1 0 0> | 235.1 |
BN (mp-984) | <1 0 0> | <1 0 0> | 58.8 |
BN (mp-984) | <1 1 0> | <1 1 0> | 166.2 |
BN (mp-984) | <1 1 1> | <1 0 0> | 235.1 |
NaCl (mp-22862) | <1 0 0> | <1 0 0> | 293.8 |
ZrO2 (mp-2858) | <1 0 -1> | <1 0 0> | 293.8 |
ZrO2 (mp-2858) | <1 0 1> | <1 0 0> | 176.3 |
MoS2 (mp-1434) | <0 0 1> | <1 0 0> | 176.3 |
Al (mp-134) | <1 0 0> | <1 0 0> | 293.8 |
YAlO3 (mp-3792) | <0 1 0> | <1 0 0> | 117.5 |
YAlO3 (mp-3792) | <1 0 0> | <1 1 0> | 83.1 |
YAlO3 (mp-3792) | <1 0 1> | <1 0 0> | 293.8 |
Stiffness Tensor Cij (GPa) |
|||||
---|---|---|---|---|---|
17 | 17 | 17 | 0 | 0 | 0 |
17 | 17 | 17 | 0 | 0 | 0 |
17 | 17 | 17 | 0 | 0 | 0 |
0 | 0 | 0 | 14 | 0 | 0 |
0 | 0 | 0 | 0 | 14 | 0 |
0 | 0 | 0 | 0 | 0 | 14 |
Compliance Tensor Sij (10-12Pa-1) |
|||||
---|---|---|---|---|---|
891.5 | -435.8 | -435.8 | 0 | 0 | 0 |
-435.8 | 891.5 | -435.8 | 0 | 0 | 0 |
-435.8 | -435.8 | 891.5 | 0 | 0 | 0 |
0 | 0 | 0 | 71.6 | 0 | 0 |
0 | 0 | 0 | 0 | 71.6 | 0 |
0 | 0 | 0 | 0 | 0 | 71.6 |
Shear Modulus GV9 GPa |
Bulk Modulus KV17 GPa |
Shear Modulus GR1 GPa |
Bulk Modulus KR17 GPa |
Shear Modulus GVRH5 GPa |
Bulk Modulus KVRH17 GPa |
Elastic Anisotropy42.15 |
Poisson's Ratio0.37 |
material | dissimilarity | Ehull | # of elements |
---|---|---|---|
HoErAg2 (mp-972945) | 0.0000 | 0.009 | 3 |
Ac2NiGe (mp-983587) | 0.0000 | 0.000 | 3 |
YErIn2 (mp-979424) | 0.0000 | 0.000 | 3 |
Tm2CdHg (mp-979258) | 0.0000 | 0.011 | 3 |
YbPaRu2 (mp-865828) | 0.0000 | 0.000 | 3 |
TiFeCoAs (mp-998974) | 0.0000 | 0.236 | 4 |
TiGaFeCo (mp-998964) | 0.0000 | 0.000 | 4 |
MnGaFeCo (mp-999552) | 0.0000 | 0.044 | 4 |
VGaFeCo (mp-1066581) | 0.0000 | 0.029 | 4 |
AlVFeCo (mp-1008530) | 0.0000 | 0.029 | 4 |
TaW3 (mp-979289) | 0.0000 | 0.000 | 2 |
Rb3Y (mp-974732) | 0.0000 | 0.632 | 2 |
ErMg3 (mp-862681) | 0.0000 | 0.000 | 2 |
LaH3 (mp-1018144) | 0.0000 | 0.000 | 2 |
ErH3 (mp-1018063) | 0.0000 | 0.077 | 2 |
Cu (mp-998890) | 0.0000 | 0.037 | 1 |
Kr (mp-974400) | 0.0000 | 0.002 | 1 |
H2 (mp-632250) | 0.0000 | 0.000 | 1 |
Ge (mp-998883) | 0.0000 | 0.340 | 1 |
U (mp-108) | 0.0000 | 0.271 | 1 |
Run TypeGGA |
Energy Cutoff520 eV |
# of K-pointsNone |
U Values-- |
PseudopotentialsVASP PAW: Na_pv Al |
Final Energy/Atom-1.7481 eV |
Corrected Energy-6.9925 eV
-6.9925 eV = -6.9925 eV (uncorrected energy)
|
Displaying lattice parameters for primitive cell; note that calculated cell volumes are typically overestimated on average by 3% (+/- 6%). Note the primitive cell may appear less symmetric than the conventional cell representation (see "Structure Type" selector below the 3d structure)