IP Library Granted Patent US 11,981,567
Granted Patent B2
US 11,981,567 · App. 17/752,416 · Granted May 14, 2024

Functionalization and dispersion of carbon nanotubes

Inventors: Santosh K. Yadav (Geneva, OH); Paul A. Rettinger (Ashtabula, OH)
C01B32/174H01B1/24C01B2202/22C01P2004/13C01P2006/40
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Quick Facts
Patent No.
US 11,981,567
App. No.
17/752,416
Granted
May 14, 2024
Kind
B2
Abstract

The present disclosure describes several embodiments for methods of deagglomerating, debundling, and dispersing carbon nanotubes and functionalizing such carbon nanotubes without damage to the properties of the carbon nanotubes. The embodiments include methods for determining optimized conditions to effectively produce master batches of carbon nanotube polymers and solvent systems; determining what moieties or chemistries effectively disperse carbon nanotubes without deleterious effect upon electrical properties of a resulting composite; determining the most efficient processes for introducing dispersants to carbon nanotubes; determining surface characteristics of carbon nanotubes induced by deagglomerating, debundling, and dispersion processes; evaluating properties (such as conductivity) of carbon nanotube dispersions in cured coatings and composite applications; determining what structural elements comprise efficient/effective dispersants for carbon nanotubes; and evaluating the hyperdispersant properties in carbon nanotube composite and coatings systems.

Claims (28)

1. A method of making a coating from a stable masterbatch dispersion including the steps of:

providing a functionalized dispersants containing amine, fluorine, or silsesquioxane cages in a liquid mixture;

adding carbon nanotubes to the liquid mixture in an amount from 0.01 wt % to 15 wt %; and

deagglomerizing, debundling and dispersing the carbon nanotubes by subjecting the mixture to blending using a planar milling processes to form a masterbatch dispersion; and blending the masterbatch dispersion with a resin to form a coating.

2. The method of making a stable masterbatch dispersion of claim 1 , wherein the functionalized dispersant further comprises epoxide, hydroxyl, or unsaturated functional groups.

3. The method of making a stable masterbatch dispersion of claim 1 , wherein the carbon nanotube liquid mixture further comprises plasticizers, diluents, monomers, polymers, or resins.

4. A method of using a planar milling process to obtaining an electrically conductive resin mixture for use in using carbon nanotubes for thermoset composite and coatings applications, the method comprising:

preparing a masterbatch dispersion by a process comprising:

providing a functionalized dispersant containing amine, fluorine, or silsesquioxane cages in a liquid mixture;

adding carbon nanotubes to the liquid mixture in an amount from 0.01 wt % to 15 wt %; and

deagglomerizing, debundling and dispersing the carbon nanotubes by subjecting the mixture to blending using a planar milling processes to form a masterbatch dispersion,

blending the masterbatch dispersion with an epoxy resin to form a resin mixture,

curing to form a composite or coating,

wherein the carbon nanotube containing polymer composite is characterized by a relationship between resistivity and concentration of carbon nanotube in the composite and the composite demonstrates a resistivity of 1.00×10 3 and 1.00×10 5 Ω/cm at a concentration that is less than or equal to 0.200 wt % carbon nanotube.

5. The method of claim 4 , wherein a two-roll mill is used.

6. The method of claim 4 , wherein a three-roll mill is used.

7. The method of using a planar milling process of claim 4 , wherein the functionalized dispersant further comprises epoxide, hydroxyl, unsaturated functional groups.

8. The method of using a planar milling process of claim 4 , wherein the carbon nanotube liquid mixture further comprises plasticizers, diluents, monomers, polymers, or resins.

9. The method of using a planar milling process of claim 4 , wherein the carbon nanotubes are present in a final composite concentration up to 5000 ppm w/w.

10. The use of planar milling processes comprising three-roll or two-roll milling, for purposes of obtaining a carbon nanotube hyperdispersant polymer composite with electrical conductivity configured for energy-storage applications comprising a battery or supercapacitor, the processes comprising:

preparing a masterbatch dispersion by a process comprising:

providing a functionalized dispersant containing amine, fluorine, or silsesquioxane cages in a liquid mixture;

adding carbon nanotubes to the liquid mixture in an amount from 0.01 wt % to 15 wt %; and

deagglomerizing, debundling and dispersing the carbon nanotubes by subjecting the mixture to blending using a planar milling processes to form a masterbatch dispersion,

blending the masterbatch dispersion with a resin to form a composite.

11. The planar milling processes of claim 10 , wherein the functionalized dispersant further comprises epoxide, hydroxyl, or unsaturated functional groups.

12. The planar milling processes of claim 10 , wherein the carbon nanotube liquid mixture further comprises plasticizers, diluents, monomers, polymers, or resins.

13. The planar milling processes of claim 10 , wherein the carbon nanotubes present in a final composite concentration up to 5000 ppm w/w.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 8, 2025
From: YADAV, SANTOSH K.; RETTINGER, PAUL A.
To: CHROMAFLO TECHNOLOGIES CORP,
Reel/Frame 071063/0233 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 8, 2025
From: CHROMAFLO TECHNOLOGIES CORP
To: VIBRANTZ TECHNOLOGIES
Reel/Frame 071063/0925 →
Continuity (2)
Provisional Application 63192359 · May 24, 2021
Related Publication 20230103660A1 · Apr 6, 2023