Graphitized Hydroxy Multi-Walled Carbon Nanotubes
>99.9%,ID:5-12nm,OD:30-50nm,Length:10-20μm,-OH:~0.5wt%
Reagent
Code: #94640
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
Graphitized hydroxy multi-walled carbon nanotubes are widely used in advanced materials and technologies due to their unique properties. They serve as reinforcing agents in polymer composites, enhancing mechanical strength, thermal conductivity, and electrical properties. These nanotubes are also employed in energy storage devices, such as lithium-ion batteries and supercapacitors, where they improve electrode performance and charge-discharge efficiency. In the field of electronics, they are utilized in conductive inks, sensors, and flexible electronics due to their excellent conductivity and flexibility. Additionally, their high surface area and functional groups make them suitable for applications in catalysis, adsorption, and environmental remediation, where they aid in pollutant removal and catalytic processes. Their biocompatibility further enables their use in biomedical applications, including drug delivery systems and biosensors.
format_list_bulleted Product Specification
Test Parameter | Specification |
---|---|
ID | 5-12 nm |
OD | 30-50 |
Length | 10-20um |
Appearance | Black powder |
SSA | 30 m²/g |
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Graphitized Hydroxy Multi-Walled Carbon Nanotubes
Graphitized hydroxy multi-walled carbon nanotubes are widely used in advanced materials and technologies due to their unique properties. They serve as reinforcing agents in polymer composites, enhancing mechanical strength, thermal conductivity, and electrical properties. These nanotubes are also employed in energy storage devices, such as lithium-ion batteries and supercapacitors, where they improve electrode performance and charge-discharge efficiency. In the field of electronics, they are utilized in conductive inks, sensors, and flexible electronics due to their excellent conductivity and flexibility. Additionally, their high surface area and functional groups make them suitable for applications in catalysis, adsorption, and environmental remediation, where they aid in pollutant removal and catalytic processes. Their biocompatibility further enables their use in biomedical applications, including drug delivery systems and biosensors.
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