Short Hydroxy single-walled Crabon Nanotubes

>90%,ID:0.8-1.6nm,OD:1-2nm,Length:1-3μm,-OH:~4wt%

Reagent Code: #94620
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CAS Number 308068-56-6

blur_circular Chemical Specifications

badge Registry Numbers
MDL Number MFCD00133992
thermostat Physical Properties
Melting Point 3550 °C(lit.)
Boiling Point 500-600 °C(lit.)
inventory_2 Storage & Handling
Density ~1.7 g/mL at 25 °C(lit.)
Storage room temperature

description Product Description

Short hydroxy single-walled carbon nanotubes are widely used in biomedical applications due to their unique properties. They serve as effective drug delivery systems, enabling targeted and controlled release of therapeutic agents. Their high surface area and functional groups allow for efficient loading of drugs, while their biocompatibility ensures minimal adverse effects. Additionally, they are employed in tissue engineering, where they enhance the mechanical strength and conductivity of scaffolds, promoting cell growth and regeneration. In biosensing, these nanotubes are utilized for their exceptional electrical conductivity and sensitivity, enabling the detection of biomolecules at very low concentrations. Their application in cancer therapy is also notable, as they can be used for photothermal ablation, where they absorb near-infrared light to generate heat and destroy cancer cells.

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Test Parameter Specification
ID 0.8-1.6nm
OD 1-2
Length 1-3 um
Appearance Black powder
Purity 90
SSA 380 m²/g

shopping_cart Available Sizes & Pricing

Size Availability Unit Price Quantity
inventory 250mg
10-20 days ฿3,800.00
inventory 1g
10-20 days ฿11,000.00
Short Hydroxy single-walled Crabon Nanotubes
Short hydroxy single-walled carbon nanotubes are widely used in biomedical applications due to their unique properties. They serve as effective drug delivery systems, enabling targeted and controlled release of therapeutic agents. Their high surface area and functional groups allow for efficient loading of drugs, while their biocompatibility ensures minimal adverse effects. Additionally, they are employed in tissue engineering, where they enhance the mechanical strength and conductivity of scaffolds, promoting cell growth and regeneration. In biosensing, these nanotubes are utilized for their exceptional electrical conductivity and sensitivity, enabling the detection of biomolecules at very low concentrations. Their application in cancer therapy is also notable, as they can be used for photothermal ablation, where they absorb near-infrared light to generate heat and destroy cancer cells.
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