Ytterbium Fluoride Nanoparticles
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Ytterbium Fluoride Nanoparticles
Ytterbium Fluoride Nanopowder
| MF: | YbF3 |
| Chemical Name: | Ytterbium Fluoride |
| Purity: | > 99.99% |
| APS: | 50 nm (Size Customization possible) |
| Form: | Nanopowder |
| Product Number: | #NCZ6101 |
| CAS Number | 13860-80-0 |
Note: We supply different size products of microparticles and Nanoparticles size range powder according to client’s requirements.
Note: For pricing & ordering information, please contact us at sales@nanochemazone.com
Please contact us for quotes on Larger Quantities & Customization. E-mail: contact@nanochemazone.com
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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| APS: | 100 nm (Size Customization possible) |
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| Purity | 99.9% |
| APS | 40 nm to 200 nm (customization available) |
| Morphology | Spherical |
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| Stock No. | NCZNP109-19 |
| CAS | 1306-19-0 |
| Purity | 99.5% |
| APS | 20-30 nm (customization available) |
| Colour | white |
| Morphology | Spherical |
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| Melting Point | 1427 ËšC |
| Boiling Point | 1559 ËšC |
Cadmium Selenide Nanoparticles
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| Product | Cadmium Selenide Nanoparticles |
| Formula | CdSe |
| Stock No. | NCZNP110-19 |
| CAS | 1306-24-7 |
| Purity | 99.5% |
| APS | 10 nm (customization available) |
| Molar mass | 191.39 g/mol |
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| Melting Point | 1240 ËšC |
| Boiling Point | 1510 ËšC |
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| Purity: | > 99.99% |
| APS: | 50 nm (Size Customization possible) |
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| APS | 50-100 nm, 1 to 5 um, 10 um, 325 Mesh (Size Customization possible) |
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Technical Parameter:
| Product Name | MF | Purity | Particle Size | Melting Point | Density | Color |
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| Purity: | > 99.99% |
| APS: | 30 nm (Size Customization possible) |
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| CAS Number | 1314-23-4 |
| Particle Size | 70 nm, 1 micron, 10 microns, 325 Mesh (Customization is available) |
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Stefanic et al. have study the influence of processing parameters (pH value, type of anion, and reaction temperature) on the properties of hydrous zirconia. They mix zirconium n-isopropoxide in isopropanol with aqueous solutions of different pH values and ion types. After that, they calcined the sample at 400°C. They obtain tetragonal zirconia as the dominant phase after calcination.
Stocker & Baiker have prepared zirconia aerogel by sol-gel method using tetra-n-butoxy zirconium (IV) and acid catalysis. They vary the acid to alkoxide ratio and types of alcoholic solvent in the reaction. They found out that zirconia aerogel prepared with an acid-to-alkoxide ratio of 0.95 and butanol have the largest BET surface area (205 m2g-1).
Beena et al. synthesized nanocrystalline zirconia using sol-gel and precipitation techniques. For sol-gel synthesis, they dilute zirconium propoxide to 30wt% by adding propanol and then hydrolyze with dropwise ammonia solution under continuous stirring until pH 10-10.5. For precipitation synthesis, they dissolved zirconium oxychloride in distilled water and then hydrolyzed with dropwise ammonia solution under continuous stirring until pH 10-10.5. The precipitates are then filtered and washed with distilled water to remove chlorine ions. Both sol-gel and precipitate samples are dried in an oven as well as under vacuum in rotavapor before calcined at different temperatures (400-700°C).
Size Options: also available in the other nano and micron size range, 325 Mesh, 200 Mesh, etc. (Ask for the size and ratio customization)
