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Multi Walled Carbon Nanotubes N-Methyl-2-Pyrrolidinone Dispersion, 10 wt%, Purity: >95 %, OD: 30-80 nm, Length: <10 µm

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NG02CN0110
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Description

15 ml/89                        
30 ml/168 
60 ml/280                      
120 ml/429        

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Multi Walled Carbon Nanotubes N-Methyl-2-Pyrrolidinone Dispersion

Concentration: 10 wt%, Purity: >95%, OD: 30-80 nm, Length: <10 µm

MWCNT-NMP Dispersion is a high-concentration, industrial-grade suspension engineered for seamless integration into advanced material formulations. By leveraging high-purity Multi-Walled Carbon Nanotubes synthesized via Chemical Vapor Deposition (CVD), this dispersion overcomes the primary challenge of nanotube aggregation. The N-Methyl-2-Pyrrolidinone (NMP) medium ensures a stable, homogenous distribution, allowing users to utilize the full potential of CNTs without the need for intensive energy-dispersive processes.

Technical Properties

Purity >95%  
MWCNT Content 10 wt%  
Outer Diameter 30-80 nm  
Inner Diameter 5-15 nm  
Length <10 µm  
Spesific Surface Area >60 m2/g  
Tap Density 0.18 g/cm3  
CAS No MWCNT NMP
  308068-56-6 872-50-4

SEM Image

ekran-g-r-nt-s-2026-01-30-143942.png

Applications

  • Lithium-Ion Battery Manufacturing: Primarily used as a high-performance conductive additive in cathode slurries (such as LFP or NCM) to enhance electron transport, reduce internal resistance, and improve charge-discharge cycle stability.
  • Conductive Polymer Composites: Ideal for the production of NMP-soluble high-performance polymers, where it provides structural reinforcement and electrical conductivity for anti-static (ESD) and EMI shielding materials.
  • Advanced Functional Coatings: Integration into industrial coating formulations to create thin, conductive, and corrosion-resistant films for the electronics, automotive, and aerospace sectors.
  • Printed Electronics: Serving as a key ingredient in the formulation of functional inks for flexible circuits, high-sensitivity sensors, and transparent conductive films.
  • Supercapacitor Electrodes: Utilized in the development of next-generation energy storage devices that require high power density and rapid kinetic response through efficient 3D conductive networks.
  • Thermal Interface Materials: Enhancement of thermal management solutions, where the high aspect ratio of the nanotubes facilitates superior heat dissipation in compact electronic assemblies.

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