Mn3SnO8

Mn3SnO8 is a semiconducting ternary oxide being investigated for its potential role in oxygen-evolution catalytic processes.

Crystal structure of Mn3SnO8
Ground-state structure · Materials Project
Overview

About Mn3SnO8

Mn3SnO8 is a semiconducting oxide that functions within the specialized class of oxygen-evolution catalysts. Its unique composition of manganese, tin, and oxygen positions it as a candidate for electrochemical energy conversion processes where stable, active surfaces are required for efficient water splitting. Although it is classified as a metastable phase, its structural complexity is highlighted by multiple reported configurations across research databases. This compound represents an intriguing intersection of transition metal chemistry and catalytic science, offering a distinct electronic environment compared to more conventional binary oxides. Its role in the broader landscape of oxygen-evolution catalysts depends on its ability to facilitate charge transfer and maintain surface integrity under operating conditions.

At a glance

Key Properties

Cross-validated computational properties for Mn3SnO8, aggregated across 3 databases.

Band Gap

1.31–1.67 eV
Range across DFT structures

Energy Above Hull

0.057 eV/atom
Best (lowest) across sources

Stability

Metastable
2 DFT sources

Structures

11
3 databases, 3 space groups
Uses

Applications

Where Mn3SnO8 is used.

Oxygen-evolution catalysisElectrochemical water splittingEnergy conversion research
Reference

Frequently Asked Questions

Common questions about Mn3SnO8, answered from cross-validated data.

What is Mn3SnO8?

Mn3SnO8 is a semiconducting ternary oxide being investigated for its potential role in oxygen-evolution catalytic processes.

More questions
What is Mn3SnO8 used for?
Mn3SnO8 is used in oxygen-evolution catalysis, electrochemical water splitting, and energy conversion research.
What is the band gap of Mn3SnO8?
Mn3SnO8 has a DFT-computed band gap of 1.31–1.67 eV across 11 reported structures.
Is Mn3SnO8 a metal, semiconductor, or insulator?
With a band gap up to 1.67 eV it is a semiconductor.
Is Mn3SnO8 thermodynamically stable?
Mn3SnO8 has a lowest energy above hull of 0.057 eV/atom (metastable).
How many polymorphs of Mn3SnO8 are known?
11 structures of Mn3SnO8 are reported across 3 databases, spanning 3 distinct space groups.
What elements does Mn3SnO8 contain?
Mn3SnO8 contains Mn, O, and Sn (3 elements).
Where does the data for Mn3SnO8 come from?
Mn3SnO8 data is cross-referenced from latticegraph.
Comparison

How It Compares

Within the oxide oxygen-evolution catalysts class.

Within the diverse family of oxygen-evolution catalysts, Mn3SnO8 occupies a more niche position than widely utilized materials like LiMn2O4 or LaMnO3. While many of its siblings, such as NiO or LaNiO3, are characterized by their robust thermodynamic stability and well-understood catalytic pathways, Mn3SnO8 offers a different structural framework that may provide unique active sites for electrochemical reactions.

Explore

Related Compounds

Other Oxide Oxygen-Evolution Catalysts in the database.

Data sources & attribution
  • latticegraph — Lattice Graph Materials Intelligence Platform

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