What is Multi Walled Carbon Nanotubes (MWCNTs) Water Dispersion, 4 wt%?

Multi Walled Carbon Nanotubes (MWCNTs) Water Dispersion (4 wt%) is a stable suspension of MWCNTs in water. This dispersion is used for various applications in nanotechnology, electronics, energy storage, and advanced materials research.

Chemical Properties and CAS Number

  • Material: Multi Walled Carbon Nanotubes (MWCNTs)
  • CAS Number: 308068-56-6
  • Purity: >99%
  • Concentration: 4 wt%
  • Outer Diameter: 10-50 nm
  • Length: 1-10 μm
  • Specific Surface Area: 200-400 m²/g
  • Electrical Conductivity: High
  • Thermal Conductivity: High
  • Appearance: Black aqueous dispersion
  • Solvent: Water

Applications of MWCNTs Water Dispersion

1. Electronics & Conductive Coatings

Used in conductive inks, flexible electronics, and transparent conductive coatings.

2. Energy Storage & Batteries

Enhances performance in lithium-ion batteries, supercapacitors, and fuel cells.

3. Polymer Composites & Coatings

Provides improved mechanical strength and electrical conductivity in composites.

4. Biomedical Applications

Explored for drug delivery, biosensors, and medical coatings.

5. Sensors & Actuators

Used in chemical and pressure sensors due to high sensitivity and conductivity.

6. Advanced Research & Nanotechnology

Aids in material science and nanotechnology research for new applications.

Pricing of MWCNTs Water Dispersion, 4 wt%

Pricing depends on purity, order quantity, and customization:

  • Lab-Scale Orders: $100 – $500 per liter
  • Industrial Orders: $1,000 – $5,000 per batch
  • Custom Orders: Price varies based on volume and specifications

Factors Influencing Pricing

  • Purity and dispersion stability
  • Functionalization requirements (-OH, -COOH, etc.)
  • Bulk order discounts
  • Packaging and shipping costs

Conclusion

Multi Walled Carbon Nanotubes (MWCNTs) Water Dispersion (4 wt%) is an essential material for advanced applications in electronics, energy storage, coatings, biomedical research, and nanotechnology. Its high conductivity and stability make it ideal for cutting-edge scientific and industrial use.

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