LiO12P3Sn2

LiO12P3Sn2 has a DFT band gap of 2.70–4.68 eV across 15 reported structures in 6 space groups; its reference structure is triclinic (P-1 (No. 2)). Cross-validated across 3 computational databases.

LiOPSn
At a glance

Key Properties

Cross-validated computational properties for LiO12P3Sn2, aggregated across 3 databases.

Band Gap

2.70–4.68 eV
Range across DFT structures · ground state: insulator

Energy Above Hull

0.000 eV/atom
Best (lowest) across sources

Stability

Stable
2 DFT sources

Structures

15
3 databases, 6 space groups
Validation

Cross-Source DFT Agreement

How well independent DFT databases agree on the thermodynamics of LiO12P3Sn2. Tight agreement means computed properties can be trusted without re-running calculations.

Only 1 independent DFT source (materials_project) reports a hull energy for LiO12P3Sn2, so cross-source agreement can't be assessed yet.

Crystallography

Reported Structures

Lowest-energy structures reported for LiO12P3Sn2, ranked by energy above hull.

Space GroupCrystal SystemBand Gap (eV)E above hull (eV/atom)E/atom (eV)Density (g/cm³)
P-1 (No. 2)triclinic4.680.0000-7.2823.81
P21/c (No. 14)monoclinic3.390.0027-7.2793.77
P-1 (No. 2)triclinic3.430.0027-7.2793.64
P-1 (No. 2)triclinic3.450.0034-7.2783.63
P21/c (No. 14)monoclinic3.310.0052-7.2773.77
R-3c (No. 167)trigonal3.130.0056-7.2763.81
Pna21 (No. 33)orthorhombic3.050.0122-7.2703.70
P-1 (No. 2)triclinic3.490.0143-7.2673.60
P21212 (No. 18)orthorhombic2.920.0155-7.2663.66
Pca21 (No. 29)orthorhombic2.700.0197-7.2623.67
P-1 (No. 2)triclinic0.003.5635-3.7183.63
P-1 (No. 2)triclinic0.004.6501-2.6323.64
Synthesis

Synthesis Routes

Literature-extracted synthesis procedures targeting LiO12P3Sn2.

Solid State
Procedure available · ceder_solid_state
Solid State
Procedure available · ceder_solid_state
Reference

Frequently Asked Questions

Common questions about LiO12P3Sn2, answered from cross-validated data.

What is the band gap of LiO12P3Sn2?

LiO12P3Sn2 has a DFT-computed band gap of 2.70–4.68 eV across 15 reported structures. Standard DFT underestimates band gaps, so the measured gap is typically larger.

More questions
Is LiO12P3Sn2 a metal, semiconductor, or insulator?
DFT predicts a wide band gap of up to 4.68 eV (an insulator or wide-band-gap material).
Is LiO12P3Sn2 thermodynamically stable?
Yes — LiO12P3Sn2 sits on the convex hull (energy above hull 0 eV/atom), i.e. stable.
What is the crystal structure of LiO12P3Sn2?
The reference structure of LiO12P3Sn2 is triclinic symmetry, space group P-1 (No. 2).
What is the density of LiO12P3Sn2?
The computed density of the ground-state structure of LiO12P3Sn2 is 3.81 g/cm³.
How many polymorphs of LiO12P3Sn2 are known?
15 structures of LiO12P3Sn2 are reported across 3 databases, spanning 6 distinct space groups.
How is LiO12P3Sn2 synthesized?
Literature-reported routes for LiO12P3Sn2 include solid state (2 procedures documented).
What elements does LiO12P3Sn2 contain?
LiO12P3Sn2 contains Li, O, P, and Sn (4 elements).
Where does the data for LiO12P3Sn2 come from?
LiO12P3Sn2 data is cross-referenced from materials_project, cod, alexandria.
Data sources & attribution
  • materials_project — Data from the Materials Project (materialsproject.org). Cite: Jain et al., APL Materials 1, 011002 (2013). (CC-BY-4.0)
  • cod — Data from the Crystallography Open Database (crystallography.net/cod/). Cite: Grazulis et al., J. Appl. Cryst. 42, 726 (2009). (CC0-1.0)
  • alexandria — Data from Alexandria. Cite: Schmidt et al., npj Comput. Mater. 10, 200 (2024). (CC-BY-4.0)

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