Short Carboxyl Purified Multi-Walled Carbon Nanotubes
>95%,ID:5-15nm,OD:>50nm,Length:0.5-2μm,-COOH:~0.5wt%
Reagent
Code: #94630
CAS Number
308068-56-6
blur_circular Chemical Specifications
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Registry Numbers
MDL Number
MFCD00133992
thermostat
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
Short carboxyl purified multi-walled carbon nanotubes are widely used in the field of material science and engineering due to their exceptional mechanical, electrical, and thermal properties. They are often incorporated into polymer composites to enhance strength, conductivity, and durability, making them ideal for applications in aerospace, automotive, and construction industries. In electronics, these nanotubes are utilized in the development of conductive films, sensors, and flexible displays, owing to their high electrical conductivity and transparency. Additionally, their functionalized surface allows for improved dispersion in various solvents, making them suitable for use in energy storage devices like batteries and supercapacitors, where they enhance electrode performance. In biomedical applications, they are explored for drug delivery systems, biosensors, and tissue engineering scaffolds due to their biocompatibility and ability to interact with biological molecules. Their unique properties also make them valuable in environmental applications, such as water filtration and pollutant adsorption, where they effectively remove contaminants from water and air.
format_list_bulleted Product Specification
Test Parameter | Specification |
---|---|
ID | 5-15 nm |
Length | 0.5-2 um |
Appearance | Black powder |
OD | 50 nm |
SSA | 40 m2/g |
Purity | 95 |
shopping_cart Available Sizes & Pricing
Short Carboxyl Purified Multi-Walled Carbon Nanotubes
Short carboxyl purified multi-walled carbon nanotubes are widely used in the field of material science and engineering due to their exceptional mechanical, electrical, and thermal properties. They are often incorporated into polymer composites to enhance strength, conductivity, and durability, making them ideal for applications in aerospace, automotive, and construction industries. In electronics, these nanotubes are utilized in the development of conductive films, sensors, and flexible displays, owing to their high electrical conductivity and transparency. Additionally, their functionalized surface allows for improved dispersion in various solvents, making them suitable for use in energy storage devices like batteries and supercapacitors, where they enhance electrode performance. In biomedical applications, they are explored for drug delivery systems, biosensors, and tissue engineering scaffolds due to their biocompatibility and ability to interact with biological molecules. Their unique properties also make them valuable in environmental applications, such as water filtration and pollutant adsorption, where they effectively remove contaminants from water and air.
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