Carbon nanotube,multi-walled
>90%,OD:8-15nm,Length:30-50μm
Reagent
Code: #94607
CAS Number
308068-56-6
blur_circular Chemical Specifications
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Registry Numbers
MDL Number
MFCD00133992
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Physical Properties
Melting Point
3550 °C(lit.)
Boiling Point
500-600 °C(lit.)
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Storage & Handling
Density
~1.7 g/mL at 25 °C(lit.)
Storage
room temperature
description Product Description
Carbon nanotubes, particularly multi-walled ones, are widely used in various industries due to their exceptional strength, conductivity, and thermal properties. In electronics, they are employed to create conductive films, transistors, and sensors, enhancing device performance and miniaturization. Their high mechanical strength makes them ideal for reinforcing composites in aerospace, automotive, and construction materials, improving durability and reducing weight. In energy storage, they are utilized in batteries and supercapacitors to increase energy density and charge-discharge efficiency. Additionally, their large surface area and chemical stability make them suitable for use in filtration systems, catalysis, and environmental remediation, where they can effectively capture pollutants or facilitate chemical reactions. In biomedical applications, they are explored for drug delivery systems, tissue engineering, and biosensors due to their unique interaction with biological molecules.
format_list_bulleted Product Specification
Test Parameter | Specification |
---|---|
OD | 8-15 |
Length | 30-50 |
SSA | 250-300 |
Appearance | Black powder |
Purity | 90 |
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Carbon nanotube,multi-walled
Carbon nanotubes, particularly multi-walled ones, are widely used in various industries due to their exceptional strength, conductivity, and thermal properties. In electronics, they are employed to create conductive films, transistors, and sensors, enhancing device performance and miniaturization. Their high mechanical strength makes them ideal for reinforcing composites in aerospace, automotive, and construction materials, improving durability and reducing weight. In energy storage, they are utilized in batteries and supercapacitors to increase energy density and charge-discharge efficiency. Additionally, their large surface area and chemical stability make them suitable for use in filtration systems, catalysis, and environmental remediation, where they can effectively capture pollutants or facilitate chemical reactions. In biomedical applications, they are explored for drug delivery systems, tissue engineering, and biosensors due to their unique interaction with biological molecules.
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