产品名称
碳化硅, nanopowder, ≥99% trace metals basis, 18 nm avg. part. size
InChI
1S/CSi/c1-2
SMILES string
[C-]#[Si+]
InChI key
HBMJWWWQQXIZIP-UHFFFAOYSA-N
assay
≥99% trace metals basis
form
nanopowder
greener alternative product characteristics
Design for Energy Efficiency
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sustainability
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avg. part. size
18 nm
mp
2700 °C (lit.)
density
3.22 g/mL at 25 °C (lit.)
bulk density
0.03 g/cm3
application(s)
battery manufacturing
greener alternative category
Quality Level
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相关类别
Application
Our >=99% pure silicon carbide nanopowder with an average particle size of 18 nm is the ideal choice for a variety of applications. Due to its unique combination of high hardness, high thermal conductivity, and excellent corrosion resistance, it is a popular choice for advanced ceramic materials used in electronic and semiconductor devices. The nanopowder is also useful in the production of high-purity abrasive powders and refractory materials due to its high wear resistance and high temperature stability. Its properties also make it useful in the production of composite materials, where it provides excellent reinforcement and thermal management capabilities. Additionally, it can be used in catalysts, sensors, and energy storage devices. Our silicon carbide nanopowder is a high-quality product that offers consistent performance and reliability, making it an ideal choice for a variety of applications.
General description
Our silicon carbide nanopowder is a high-quality product with a purity greater than 99% and an average particle size of 18 nm. This fine powder has a uniform particle size distribution, which makes it an excellent choice for a variety of applications. With its high melting point, extreme hardness, and excellent thermal conductivity, our silicon carbide nanopowder is ideal for use in advanced ceramics, electronics, and semiconductors.
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存储类别
11 - Combustible Solids
wgk
nwg
flash_point_f
Not applicable
flash_point_c
Not applicable
法规信息
新产品
此项目有
Xuejiao Sun et al.
Frontiers in chemistry, 6, 166-166 (2018-06-06)
The development of high energy lithium-ion batteries (LIBs) has spurred the designing and production of novel anode materials to substitute currently commercial using graphitic materials. Herein, twisted SiC nanofibers toward LIBs anode materials, containing 92.5 wt% cubic β-SiC and 7.5
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