Lithium Cobalt Oxide Powder
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Lithium Cobalt Oxide Powder
Product Name: Lithium Cobalt Oxide Powder
| Product | Lithium Cobalt Oxide Powder |
| Colour | Dark Blue |
| Purity | ≥ 99.9% |
| Particle size | 1-10µM (customizable) |
| Ingredient/MF | LiCoO2 |
| Product Code | NCZ-CS-177/20 |
| CAS Number | 12190-79-3 |
Lithium Cobalt Oxide Description
The solid consists of layers of monovalent lithium cations that lie between extended anionic sheets of cobalt and oxygen atoms, arranged as edge-sharing octahedra, with two faces parallel to the sheet plane.
Lithium Cobalt Oxide is formally in the trivalent oxidation state. In each layer (cobalt, oxygen, or lithium), Lithium Cobalt Oxide Powder is arranged in a regular triangular lattice.
The lattices are offset so that the lithium atoms are farthest from the cobalt atoms, and the structure repeats in the direction perpendicular to the planes every three cobalt (or lithium) layers. signifying a unit cell with threefold improper rotational symmetry and a mirror plane.
The threefold rotational axis (which is normal to the layers) is termed improper because the triangles of oxygen (being on opposite sides of each octahedron) aligned. Batteries produced with Lithium Cobalt Oxide cathodes have very stable capacities but have lower capacities and power than those with cathodes based on nickel-cobalt-aluminum (NCA) oxides. Issues with thermal stability are better for Lithium Cobalt Oxide cathodes than other nickel-rich chemistries although not significantly.
This makes Lithium Cobalt Oxide batteries susceptible. Lithium Cobalt Oxide decomposition generates oxygen, which then reacts with the organic electrolyte of the cell. This is a safety concern due to the magnitude of this highly exothermic reaction, which can spread to adjacent cells or ignite nearby combustible material. In general, this is seen for many lithium-ion battery cathodes.
Lithium Cobalt Oxide Related Information
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Customization:
If you are planning to order large quantities for your industrial and academic needs, please note that customization of parameters (such as size, length, purity, functionalities, etc.) are available upon request.
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Product Name: Aluminum Diboride Powder
| MF: | AlB2-P |
| Chemical Name | Aluminum Diboride |
| Color | Gray Black |
| EINECS | 234-923-7 |
| Purity: | 99.9% |
| Particle size | 30 µm (Customizable) |
| Product Number: | NCZ-SC-113/20 |
| Cas Number: | 12041-50-8 |
Aluminum Diboride Powder RELATED INFORMATION
Aluminum boride is an ionic compound, with a hexagonal crystal structure. Aluminum boride at an absolute temperature slightly 40K (equivalent to -233 ℃) will be transformed into a superconductor. And its actual operating temperature is 20 ~ 30K. To reach this temperature, we can use liquid neon, liquid hydrogen, or closed-cycle refrigerator to finish cooling. Compared to the current industry using liquid helium to cool the niobium alloy (4K), these methods are simpler and more economical. Once it is doped with carbon or other impurities, magnesium diboride in a magnetic field, or there is a current passing, the ability to maintain the superconducting is as much as niobium alloys, or even better.
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| MF: | AlB2-P |
| Chemical Name | Aluminum Diboride |
| Color | Gray Black |
| EINECS | 234-923-7 |
| Purity: | 99.9% |
| Particle size | 30µm |
| Product Number: | NCZ-SC-113/20 |
| Cas Number: | 12041-50-8 |
Aluminum Diboride Powder Description
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Aluminum Diboride Powder Related Information
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| CAS No. | 7429-90-5 |
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| Purity | 99.9% |
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Description of Al (Aluminum Powder)
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Al Powder Related Information
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| Appearance | Grey |
| Purity | 99.9% |
| APS | 1 – 5 Microns (Can be customized) |
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Ferro Manganese Nitride Powder
Product Name: Ferro Manganese Nitride Powder
| Product | Ferro Manganese Nitride Powder |
| Colour | Gray |
| Purity | ≥ 99.9% |
| Particle size | 1-10 µM (customizable) |
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| Product Code | NCZ-CN-150/20 |
| CAS Number | 7439-89-6 / 7439-96-5 |
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Product Name: Ferro Titanium Carbide Powder
| Product | Ferro Titanium Carbide Powder |
| Colour | Gray Powder |
| Purity | ≥ 99.9% |
| Particle size | 1-10 µM (customizable) |
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| Product Code | NCZ-C-102/20 |
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In the present study, Fe-based hardfacing coating reinforced by TiC particles was obtained by manual shielded metal arc welding (SMAW) in which H08A bare electrode was coated with fluxes, to which different measures of ferrotitanium, rutile, graphite, calcium carbonate, and calcium fluoride had been added.
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Product Name: Ferrochrome Nitride Powder
| Product | Ferrochrome Nitride Powder |
| Colour | Black Powder |
| Purity | ≥ 99.9% |
| Particle size | 1-10 µM (customizable) |
| Ingredient/MF | FeCrN |
| Product Code | NCZ-CN-151/20 |
| CAS Number | 7439-89-6, / 24094-93-7 |
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Ferrochrome is produced by electric arc carbothermic reduction of chromite. Most of the global output is produced in and India, which have large domestic chromite resources. Increasing amounts are coming from Russia and China.
Production of steel, especially that of stainless steel with a chromium content of 10 to 20%, is the largest consumer and the main application of ferrochrome.
Ferrochrome production is essentially a carbothermic reduction operation taking place at high temperatures. Chromium ore (an oxide of Cr and Fe) is reduced by coal and coke to form the iron-chromium alloy.
The heat for this reaction can come from several forms, but typically from the electric arc formed between the tips of electrodes at the bottom of the furnace and the furnace hearth.
This arc creates temperatures of about 2,800 °C (5,070 °F). In the process of smelting, huge amounts of electricity are consumed, making production very expensive in countries where power costs are high.
The tapping of the material from the furnace takes place intermittently. When enough smelted ferrochrome has accumulated in the furnace hearth.
The tap hole is drilled open and a stream of molten metal and slag rushes down a trough into a chill or ladle. Ferrochrome solidifies in large castings that are crushed for sale or further processed.
Ferrochrome is generally classified by the amount of carbon and chrome it contains.
The vast majority of FeCr produced is "charge chrome" from South Africa, with high carbon being the second largest segment followed by the smaller sectors of low carbon and intermediate carbon material.

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