Gold Aluminum Alloy
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Gold Aluminum Alloy
| Product |
Gold Aluminum Alloy |
| Colour | N/A |
| Purity | 99% |
| Â size | 1 – 3 mm (Customizable) |
| Ingredient/MF | AuAl |
| Product Code | NCZ-CP-260/20Â Â Â Â Â Â Â Â Â Â |
| Density | N/A |
| CAS No | N/A |
Gold Aluminum Alloy Description
Aluminium alloys (or aluminum alloys; see spelling differences) are alloys in which aluminium (Al) is the predominant metal. The typical alloying elements are copper, magnesium, manganese, silicon, tin and zinc. There are two principal classifications, namely casting alloys and wrought alloys, both of which are further subdivided into the categories heat-treatable and non-heat-treatable. About 85% of aluminium is used for wrought products, for example rolled plate, foils and extrusions. Cast aluminium alloys yield cost-effective products due to the low melting point, although they generally have lower tensile strengths than wrought alloys.
The most important cast aluminium alloy system is Al–Si, where the high levels of silicon (4.0–13%) contribute to give good casting characteristics. Aluminium alloys are widely used in engineering structures and components where light weight or corrosion resistance is required.
Alloys composed mostly of aluminium have been very important in aerospace manufacturing since the introduction of metal-skinned aircraft. Aluminium-magnesium alloys are both lighter than other aluminium alloys and much less flammable than other alloys that contain a very high percentage of magnesium.
Aluminium alloy surfaces will develop a white, protective layer of aluminium oxide if left unprotected by anodizing and/or correct painting procedures.
In a wet environment, galvanic corrosion can occur when an aluminium alloy is placed in electrical contact with other metals with more positive corrosion potentials than aluminium, and an electrolyte is present that allows ion exchange.
Referred to as dissimilar-metal corrosion, this process can occur as exfoliation or as intergranular corrosion. Aluminium alloys can be improperly heat treated. This causes internal element separation, and the metal then corrodes from the inside out.
Aluminium alloy compositions are registered with The Aluminum Association. Many organizations publish more specific standards for the manufacture of aluminium alloy, including the Society of Automotive Engineers standards organization, specifically its aerospace standards subgroups, and ASTM International.
Related Information
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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.
Spherical High Speed Steel
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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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| Product | Gallium Arsenide Nanopowder |
| Cat No | NCZ-NSC810/20 |
| CAS No | 1303-00-0 |
| Purity | 99.9% |
| APS | 80-100nm |
| Molecular Formula | GaAs |
| Molecular Weight | 144.64g/mol |
| Form | Powder |
| Color | Gray |
| Density | 5.3g/cm3 |
| Melting Point | 1400°C |
| Young Modulus | 85 GPa |
| Thermal Conductivity | 47 W/m-K |
| Solubility in water | Insoluble in water |
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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.
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| Cat No | NCZ-NSC811/20 |
| CAS No | 1303-00-0 |
| Purity | 99.9% |
| APS | 40-50 µm |
| Density | 5.32 g/cm³ |
| Group Gallium | 13 |
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| Gallium | 48.2% |
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| Molar Mass | 144.645 g/mol |
| Melting Point | 1238 °C |
| Conclusion | The specifications Confirm with enterprise standard |
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| CAS No | 1303-11-3 |
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| APS | 40-50µm |
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| Form | Powder |
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| Density | 5.67g/cm3 |
| Melting Point | 942°C |
| Refractive Index | 3.51 |
| Dielectric Constant | 15.15 |
| Electrton Mobility | 40000(cm2/(V*s)) |
| Storage | Normal Room Temperature |
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| Cat No | NCZ-MN-259/20 |
| CAS No | 13778-59-1 |
| Purity | 99.9% |
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| Molecular Weight | 233.875 g/mol |
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| Fe2O3 | 0.005 | 0.01 | 0.01 |
| SiO2 | 0.01 | 0.02 | 0.03 |
| CaO | 0.01 | 0.01 | 0.03 |
| Cl- | 0.005 | 0.01 | 0.05 |
| SO4- | 0.01 | 0.01 | 0.03 |
| K2O | 0.01 | 0.01 | 0.01 |
| Na2O | 0.005 | 0.01 | 0.01 |
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| Product | Palladium on Activated Charcoal Catalyst |
| Cat No | NCZ-MN-150/20 |
| CAS No | 7440-05-3 |
| Purity | >99.9% |
| APS | 40-60µm |
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| CAS No | 31052-43-4 |
| Purity | >99 % |
| Molecular Formula | Rb2Se |
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| CAS No. | 10097-28-6 |
| MF | SiO |
| 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 |
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| Fe | <20 ppm |
| Al | <20 ppm |
| Cu | <10 ppm |
| Ti | <10 ppm |
| Ca | <10 ppm |
| Mn | <30 ppm |
Silicon Monoxide Application Fields:
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.
Nanochemazone offers a 99.99% pure silicon monoxide powder prepared using chemical vapor deposition, suitable for secondary battery anode material precursors to prepare silicon-based anode materials and fine ceramic, synthetic raw materials. Our silicon monoxide battery material is prized by researchers and innovators around the world for its quality, purity, and consistency.

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