Palladium Iodide Powder
₹0.00
Palladium Iodide Powder
Product |
Palladium Iodide Powder |
| Colour | Black |
| Purity | 99% |
| Particle size | 100-325 Mesh (customizable) |
| Ingredient/MF | PdI2 |
| Density | 6,003 g/cm3 |
| Solubility in water | Insoluble in water |
| Product Code | NCZ-CP-213/20 |
| CAS Number | 7790-38-7 |
Palladium Iodide Description
Nanochemazone specializes in producing spray dry and non-spray dry high purity Palladium Oxide Powder with the smallest possible average grain sizes for use in preparation of pressed and bonded sputtering targets and in Chemical Vapor Deposition (CVD) and Physical Vapor Deposition (PVD) processes including Thermal and Electron Beam (E-Beam) Evaporation, Low Temperature Organic Evaporation, Atomic Layer Deposition (ALD), Metallic-Organic and Chemical Vapor Deposition (MOCVD).
Powders are also useful in any application where high surface areas are desired such as water treatment and in fuel cell and solar applications. Nanoparticles also produce very high surface areas. Our standard powder particle sizes average in the range of – 325 mesh, – 100 mesh, 10-50 microns and submicron (< 1 micron) and our spray dried powder with binder provides an extremely narrow particle size distribution (PSD) for use in thermal and plasma spray guns and other coating applications. We can also provide many materials in the nanoscale range.
We also produce Palladium Oxide as pellets, pieces, tablets, and sputtering target. 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. Other shapes are available by request.
Related Information
Please email us for the customization.
Email: contact@nanochemazone.com
Please contact us for customization and price inquiry
Note: We supply different size ranges of Nano and micron as per the client’s requirements and also accept customization in various parameters.
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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Cesium Selenide Related Information
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Gallium Arsenide Nanopowder Related Information
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Rubidium Selenide Related Information
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| CAS No. | 10097-28-6 |
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| Purity | >99% |
| APS | 400 nm (Customizable) |
| Appearance | Black Brown Powder |
| Molecular Weight | 44.08 |
| Melting Point | 1702°C |
| Boiling Point | 1880°C |
| Density | 2.13g/cm³ |
| Refractive index | 1.980 |
| Application | Plating of optical equipment such as lens |
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| Fe | <20 ppm |
| Al | <20 ppm |
| Cu | <10 ppm |
| Ti | <10 ppm |
| Ca | <10 ppm |
| Mn | <30 ppm |
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Lithium-ion secondary battery anode material precursors to prepare silicon-based anode material Fine ceramic, synthetic raw materials; such as silicon nitride and silicon carbide Because silicon monoxide fine powder is very active, it can be used as fine ceramic, synthetic raw materials, such as silicon nitride and silicon carbide fine ceramic powder raw materials. Used for the preparation of optical glass and semiconductor materials.
Evaporate it in a vacuum and coat it on the metal mirror surface of the optical instrument as a protective film. Preparation of semiconductor materials.
The hunt is on advanced battery materials with enhanced storage capacity, higher energy density, and better cycle characteristics than traditional lithium-ion batteries. Conventional lithium-ion batteries rely on graphite-based anodes, whose well-established properties aren’t ideal for meeting the growing consumer demand for high-performance electronics, such as smartphones, laptops, and electric vehicles. Current research focuses on developing new alternatives that perform better and are safer than lithium-ion, and Nanochemazone is leading the way.
Silicon monoxide is a promising alternative to graphite because of its high specific gravity, low volume expansion, and small initial surface area. Silicon-based anodes can increase capacity ten times over standard graphite, allowing smaller batteries to produce the same amount of power or increasing the ability of a battery of the same size. This is possible because of the internal channels within the silicon monoxide Nanospheres. These channels allow lithium ions to flow rapidly for quick charging, and they shorten the paths for a boost in power.
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| Density | 2.65 g/mL at 25 °C (lit) |
| Melting Point | 150 °C (lit) |
| Vapor Density | 12.1 (vs air) |
| Vapor Pressure | 1.2 mmHg (67 °C) |
| Impurities | < 1 % Mo |

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