| Product |
Lithium Cobalt Oxide Powder
|
| CAS No. |
12190-79-3 |
| Appearance |
Blue/Black |
| Purity |
99% |
| APS |
1-5 µM (Can be customized) |
| Ingredient |
LiCoO2 |
| Product Code |
NCZ-NSC522/20 |
| Molecular Weight |
97.87 g/mol |
| Density |
4.79 g/cm3 |
| Melting Point |
N/A |
Lithium Cobalt Oxide Powder Description
Lithium Cobalt Oxide is a highly insoluble thermally stable source suitable for glass, optic, and ceramic applications. Oxide compounds are not conductive to electricity. However, certain perovskite structured oxides are electronically conductive finding application in the cathode of solid oxide fuel cells and oxygen generation systems. They are compounds containing at least one oxygen anion and one metallic cation. They are typically insoluble in aqueous solutions (water) and extremely stable making them useful in ceramic structures as simple as producing clay bowls to advanced electronics and in lightweight structural components in aerospace and electrochemical applications such as fuel cells in which they exhibit ionic conductivity. Metal oxide compounds are basic anhydrides and can therefore react with acids and with strong reducing agents in redox reactions. Cobalt Lithium Oxide is also available in forms such as pellets, pieces, powders, sputtering targets, and nanoparticles (from Nanochemazone nanoscale production facilities). See Nanotechnology for more nanotechnology application information. High purity, submicron and nanopowder forms may be considered. Additional technical, research and safety (MSDS) information are available.
Lithium Cobalt Oxide Related Information
Storage Conditions:
Airtight sealed, avoid light, and keep dry at room temperature.
Please contact us for customization and price inquiry
Email: contact@nanochemazone.com
Note: We supply different size ranges of Nano and micron as per the client’s requirements and also accept customization in various parameters.
Market Focus: Lithium/Ion Batteries, High Purity Thin Film Coating, High Purity Fiber Optics, High Purity Crystal Growth