Final Magnetic Moment0.000 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 / Atom-2.071 eVCalculated formation energy from the elements normalized to per atom in the unit cell. |
Energy Above Hull / Atom0.000 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. |
Density5.60 g/cm3The calculated bulk crystalline density, typically underestimated due calculated cell volumes overestimated on average by 3% (+/- 6%) |
Decomposes ToStable |
Band Gap1.835 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 MauguinI41/amd [141] |
HallI 4bw 2bw 1bw |
Point Group4/mmm |
Crystal Systemtetragonal |
Topological Classificationtrivial*
|
SubclassificationLCEBR†
|
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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substrate material | substrate orientation | film orientation | MCIA† [Å2] |
---|---|---|---|
LaAlO3 (mp-2920) | <0 0 1> | <1 0 0> | 208.0 |
LaAlO3 (mp-2920) | <1 0 0> | <0 0 1> | 288.3 |
LaAlO3 (mp-2920) | <1 1 0> | <1 0 0> | 124.8 |
AlN (mp-661) | <0 0 1> | <0 0 1> | 134.5 |
AlN (mp-661) | <1 0 0> | <1 1 1> | 61.9 |
AlN (mp-661) | <1 0 1> | <0 0 1> | 211.4 |
AlN (mp-661) | <1 1 0> | <0 0 1> | 288.3 |
AlN (mp-661) | <1 1 1> | <1 0 1> | 229.2 |
CeO2 (mp-20194) | <1 0 0> | <0 0 1> | 153.8 |
CeO2 (mp-20194) | <1 1 0> | <0 0 1> | 288.3 |
GaAs (mp-2534) | <1 0 0> | <0 0 1> | 173.0 |
BaF2 (mp-1029) | <1 0 0> | <0 0 1> | 38.4 |
BaF2 (mp-1029) | <1 1 0> | <1 0 0> | 166.4 |
GaN (mp-804) | <0 0 1> | <0 0 1> | 192.2 |
GaN (mp-804) | <1 0 0> | <1 0 1> | 137.5 |
GaN (mp-804) | <1 0 1> | <1 1 1> | 247.6 |
GaN (mp-804) | <1 1 0> | <1 0 1> | 229.2 |
GaN (mp-804) | <1 1 1> | <0 0 1> | 153.8 |
SiO2 (mp-6930) | <0 0 1> | <0 0 1> | 153.8 |
SiO2 (mp-6930) | <1 0 0> | <0 0 1> | 326.7 |
SiO2 (mp-6930) | <1 1 0> | <1 1 0> | 294.2 |
SiO2 (mp-6930) | <1 1 1> | <0 0 1> | 269.1 |
KCl (mp-23193) | <1 0 0> | <0 0 1> | 173.0 |
DyScO3 (mp-31120) | <1 1 1> | <1 0 0> | 291.2 |
InAs (mp-20305) | <1 0 0> | <0 0 1> | 38.4 |
InAs (mp-20305) | <1 1 1> | <1 0 0> | 332.8 |
ZnSe (mp-1190) | <1 0 0> | <0 0 1> | 173.0 |
DyScO3 (mp-31120) | <1 0 1> | <1 0 0> | 166.4 |
DyScO3 (mp-31120) | <1 1 0> | <0 0 1> | 249.9 |
InAs (mp-20305) | <1 1 0> | <1 0 0> | 166.4 |
KTaO3 (mp-3614) | <1 0 0> | <0 0 1> | 76.9 |
KTaO3 (mp-3614) | <1 1 0> | <1 0 0> | 249.6 |
CdS (mp-672) | <1 1 1> | <1 0 0> | 208.0 |
CdS (mp-672) | <0 0 1> | <0 0 1> | 307.5 |
Te2W (mp-22693) | <0 0 1> | <0 0 1> | 153.8 |
Te2W (mp-22693) | <0 1 0> | <1 0 1> | 320.8 |
Te2W (mp-22693) | <1 0 0> | <1 0 0> | 291.2 |
LiF (mp-1138) | <1 0 0> | <0 0 1> | 153.8 |
LiF (mp-1138) | <1 1 0> | <1 0 0> | 249.6 |
YVO4 (mp-19133) | <1 0 0> | <1 1 0> | 176.5 |
YVO4 (mp-19133) | <1 1 0> | <0 0 1> | 192.2 |
TePb (mp-19717) | <1 0 0> | <0 0 1> | 173.0 |
YVO4 (mp-19133) | <0 0 1> | <0 0 1> | 249.9 |
YVO4 (mp-19133) | <1 0 1> | <1 0 0> | 208.0 |
TePb (mp-19717) | <1 1 0> | <1 0 0> | 124.8 |
Te2Mo (mp-602) | <1 0 0> | <1 0 1> | 320.8 |
Te2Mo (mp-602) | <1 0 1> | <1 0 1> | 320.8 |
Te2Mo (mp-602) | <1 1 0> | <1 1 0> | 294.2 |
Te2Mo (mp-602) | <1 1 1> | <0 0 1> | 96.1 |
Ag (mp-124) | <1 0 0> | <0 0 1> | 153.8 |
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Dielectric Tensor εij∞ (electronic contribution) |
||
---|---|---|
4.41 | -0.00 | -0.00 |
-0.00 | 4.41 | -0.00 |
-0.00 | -0.00 | 4.39 |
Dielectric Tensor εij (total) |
||
---|---|---|
18.14 | -0.00 | -0.00 |
-0.00 | 18.14 | -0.00 |
-0.00 | -0.00 | 37.34 |
Polycrystalline dielectric constant
εpoly∞
4.41
|
Polycrystalline dielectric constant
εpoly
24.54
|
Refractive Index n2.10 |
Potentially ferroelectric?Unknown |
material | dissimilarity | Ehull | # of elements |
---|---|---|---|
LiFeO2 (mp-18782) | 0.0420 | 0.020 | 3 |
NaAsSe2 (mp-34663) | 0.1109 | 0.115 | 3 |
LiCrO2 (mp-762454) | 0.1258 | 0.038 | 3 |
LiVO2 (mp-775331) | 0.1384 | 0.027 | 3 |
LiNiO2 (mp-770635) | 0.1589 | 0.015 | 3 |
Li2CrFeO4 (mp-771605) | 0.1378 | 1.035 | 4 |
Li2VFeO4 (mp-868647) | 0.1032 | 0.112 | 4 |
Li2NiSnO4 (mp-773418) | 0.1136 | 0.013 | 4 |
Li2MnCrO4 (mp-773308) | 0.1206 | 0.035 | 4 |
Li2CrNiO4 (mp-773255) | 0.0641 | 0.073 | 4 |
Te2Au (mp-1662) | 0.5738 | 0.018 | 2 |
NaTe3 (mp-28478) | 0.4407 | 0.000 | 2 |
LiTe3 (mp-27466) | 0.4659 | 0.009 | 2 |
Sb2Te3 (mp-1080789) | 0.6108 | 0.128 | 2 |
Te2Au (mp-567525) | 0.5680 | 0.018 | 2 |
Na6MnNi3(SbO6)2 (mp-1094109) | 0.6651 | 0.005 | 5 |
Sb (mp-632286) | 0.6933 | 0.059 | 1 |
Te (mp-570459) | 0.6744 | 0.044 | 1 |
Te (mp-105) | 0.6967 | 0.047 | 1 |
Run TypeGGA |
Energy Cutoff700 eV |
# of K-pointsNone |
U Values-- |
PseudopotentialsVASP PAW: Li_sv In_d O |
Final Energy/Atom-5.3589 eV |
Corrected Energy-45.6800 eV
-45.6800 eV = -42.8709 eV (uncorrected energy) - 2.8092 eV (MP Anion Correction)
|
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)