material

Ba2CaMoO6

ID:

mp-19403

DOI:

10.17188/1194414


Tags: Dibarium calcium molybdate

Material Details

Final Magnetic Moment
0.000 μB

Calculated total magnetic moment for the unit cell within the magnetic ordering provided (see below). Typically accurate to the second digit.

Magnetic Ordering
Unknown
Formation Energy / Atom
-2.949 eV

Calculated formation energy from the elements normalized to per atom in the unit cell.

Energy Above Hull / Atom
0.000 eV

The 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.

Density
5.47 g/cm3

The calculated bulk crystalline density, typically underestimated due calculated cell volumes overestimated on average by 3% (+/- 6%)

Decomposes To
Stable
Band Gap
2.258 eV

In 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.

Space Group

Hermann Mauguin
Fm3m [225]
Hall
-F 4 2 3
Point Group
m3m
Crystal System
cubic

Band Structure

Density of States
Warning! Semi-local DFT tends to severely underestimate bandgaps. Please see the wiki for more info.

sign indicates spin ↑ ↓

  • Cu
  • Ag
  • Mo
  • Fe

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%)

X-Ray Absorption Spectra

FEFF XANES

Select an element to display a spectrum averaged over all sites of that element in the structure.

Apply Gaussian smoothing:

0 eV
3 eV
FWHM: 0 eV

Download spectra for every symmetrically equivalent absorption site in the structure.

Download FEFF Input parameters.

Warning: These results are intended to be semi-quantitative in that corrections, such as edge shifts and Debye-Waller damping, have not been included.

Substrates

Reference for minimal coincident interface area (MCIA) and elastic energy:
substrate orientation:
No elastic tensor calculated for this material, so elastic energies not avaialable. Sorting by MCIA instead.
substrate material substrate orientation film orientation MCIA [Å2]
CeO2 (mp-20194) <1 0 0> <1 0 0> 144.7
GaAs (mp-2534) <1 0 0> <1 0 0> 289.4
SiO2 (mp-6930) <0 0 1> <1 0 0> 217.0
SiO2 (mp-6930) <1 1 1> <1 1 0> 102.3
KTaO3 (mp-3614) <1 0 0> <1 0 0> 144.7
SiO2 (mp-6930) <1 1 0> <1 0 0> 144.7
ZnSe (mp-1190) <1 0 0> <1 0 0> 289.4
KTaO3 (mp-3614) <1 1 0> <1 1 0> 204.6
LiF (mp-1138) <1 0 0> <1 1 1> 250.6
Te2W (mp-22693) <0 1 1> <1 0 0> 289.4
Te2Mo (mp-602) <0 0 1> <1 0 0> 217.0
Ag (mp-124) <1 0 0> <1 0 0> 289.4
Al (mp-134) <1 0 0> <1 0 0> 144.7
Al (mp-134) <1 1 0> <1 1 0> 204.6
LiGaO2 (mp-5854) <0 1 1> <1 0 0> 217.0
TeO2 (mp-2125) <0 0 1> <1 0 0> 289.4
TeO2 (mp-2125) <0 1 0> <1 1 0> 204.6
TeO2 (mp-2125) <1 0 0> <1 1 0> 204.6
TeO2 (mp-2125) <1 1 0> <1 0 0> 289.4
Fe3O4 (mp-19306) <1 1 0> <1 1 0> 102.3
MgO (mp-1265) <1 0 0> <1 0 0> 72.3
MgO (mp-1265) <1 1 1> <1 1 1> 125.3
Fe3O4 (mp-19306) <1 0 0> <1 0 0> 72.3
Fe3O4 (mp-19306) <1 1 1> <1 1 1> 125.3
MgO (mp-1265) <1 1 0> <1 1 0> 102.3
C (mp-66) <1 1 1> <1 0 0> 217.0
GdScO3 (mp-5690) <0 0 1> <1 0 0> 289.4
Mg (mp-153) <1 0 0> <1 0 0> 289.4
PbS (mp-21276) <1 0 0> <1 0 0> 72.3
PbS (mp-21276) <1 1 0> <1 1 0> 102.3
InP (mp-20351) <1 0 0> <1 0 0> 72.3
InP (mp-20351) <1 1 0> <1 1 0> 102.3
Ni (mp-23) <1 1 1> <1 0 0> 217.0
BaTiO3 (mp-5986) <0 0 1> <1 0 0> 144.7
BaTiO3 (mp-5986) <1 0 0> <1 1 0> 102.3
NdGaO3 (mp-3196) <1 1 0> <1 0 0> 289.4
Si (mp-149) <1 0 0> <1 0 0> 144.7
MoSe2 (mp-1634) <0 0 1> <1 1 1> 125.3
C (mp-48) <1 0 0> <1 0 0> 289.4
WSe2 (mp-1821) <0 0 1> <1 1 1> 125.3
NaCl (mp-22862) <1 0 0> <1 0 0> 289.4
CaCO3 (mp-3953) <0 0 1> <1 0 0> 217.0
CaCO3 (mp-3953) <1 1 0> <1 0 0> 144.7
YAlO3 (mp-3792) <1 1 0> <1 0 0> 289.4
SiC (mp-8062) <1 1 0> <1 0 0> 217.0
CdWO4 (mp-19387) <1 0 0> <1 1 1> 125.3
TiO2 (mp-390) <0 0 1> <1 0 0> 72.3
MgF2 (mp-1249) <0 0 1> <1 0 0> 289.4
ZnO (mp-2133) <1 0 1> <1 0 0> 217.0
SrTiO3 (mp-4651) <0 0 1> <1 0 0> 289.4
Up to 50 entries displayed.
minimal coincident interface area.

Elasticity

A full elastic tensor has not been calculated for this material. Registered users can view statistical-learning-based predictions of this material's bulk and shear moduli.

Once you have registered you can also "vote" for full calculation of this material's elastic properties.

Calculation Summary

Structure Optimization

Run Type
GGA+U
Energy Cutoff
520 eV
# of K-points
28
U Values
Mo: 4.38 eV
Pseudopotentials
VASP PAW: O Ca_sv Mo_pv Ba_sv
Final Energy/Atom
-6.8073 eV
Corrected Energy
-75.8174 eV
-75.8174 eV = -68.0727 eV (uncorrected energy) - 4.2137 eV (MP Anion Correction) - 3.5310 eV (MP Advanced Correction)

Detailed input parameters and outputs for all calculations

User Data

dtu

Authors:
name conditions value ref
band gap
type
indirect
method
Kohn-Sham
functional
GLLB-SC
2.85 eV
band gap
type
direct
method
Kohn-Sham
functional
GLLB-SC
2.89 eV
band gap
type
indirect
method
quasiparticle
functional
GLLB-SC
3.62 eV
band gap
type
direct
method
quasiparticle
functional
GLLB-SC
3.66 eV
derivative discontinuity
functional
GLLB-SC
0.76 eV

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ICSD IDs
  • 45317

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)