Claims
- 1. An article including a metal substrate having a coating thereon for improving the corrosion resistance of the substrate, the coating comprising:
at least one each of alternating layers of an organic species and an inorganic species forming a layer-by-layer assembled film, wherein each said layer has an affinity for its adjacent layer(s); and a corrosion inhibitor incorporated into said film.
- 2. The article according to claim 1, wherein said organic species is selected from the group consisting of polyelectrolytes, dyes, polymers, proteins, vesicles, viruses, DNAs, RNAs, oligonucleotides, and organic colloids having a molecular weight greater than 500 atomic units.
- 3. The article according to claim 2, wherein said organic species comprises a polyelectrolyte.
- 4. The article according to claim 3, wherein said polyelectrolyte is poly(dimethyldiallylammonium chloride).
- 5. The article according to claim 1, wherein said inorganic species is selected from the group consisting of smectite clays, inorganic nanoparticles and other inorganic macromolecular colloids having a molecular weight greater than 500 atomic units.
- 6. The article according to claim 5, wherein said inorganic species comprises an exfoliated aluminosilicate clay.
- 7. The article according to claim 6, wherein said exfoliated aluminosilicate clay comprises platelets of montmorillonite.
- 8. The article according to claim 7, wherein said platelets have a thickness of about 1.0 nanometer, while extending 150-300 nanometers in the other dimensions.
- 9. The article according to claim 8, wherein said platelets form a layer of overlapping alumosilicate sheets with an average thickness of 3.8±0.3 nanometers.
- 10. The article according to claim 1, wherein said organic species comprises a polyelectolyte and said inorganic species comprises an exfoliated aluminosilicate clay.
- 11. The article according to claim 10, wherein the film is of a thickness between 20-2000 nanometers.
- 12. The article according to claim 11, wherein the film is of a thickness of about 100 nanometers.
- 13. The article according to claim 1, wherein said corrosion inhibitor is selected from the group consisting of molybdates, vanadates, trivalent chromium species, cerium, oxalates, transition metal ions, lanthanide ions, nitrites, cobalt, manganese-based conversion coatings, molybdenum-based conversion coatings, and zirconium based conversion coatings.
- 14. The article according to claim 1, wherein said coating further comprises a topcoat layer of a sol-gel material.
- 15. The article according to claim 14, wherein said topcoat layer of said coating is of a thickness of 1-100 microns.
- 16. The article according to claim 15, wherein said topcoat layer of said coating is of a thickness of 1-25 microns.
- 17. The article according to claim 14, wherein said topcoat layer of said coating includes a corrosion inhibitor.
- 18. The article according to claim 1, wherein the substrate is an aluminum alloy.
- 19. A process for improving the corrosion resistance of a metal prone to corrosion, comprising:
applying to said metal at least one each of alternating layers of an organic species and an inorganic species forming a layer-by-layer assembled film upon said metal, wherein each said layer has an affinity for its adjacent layer(s); and immersing said assembled film in a solution or dispersion of a corrosion inhibitor, whereby said corrosion inhibitor is incorporated into said film.
- 20. The process according to claim 19, wherein said organic species is selected from the group consisting of polyelectrolytes, dyes, polymers, proteins, vesicles, viruses, DNAs, RNAs, oligonucleotides, and organic colloids having a molecular weight greater than 500 atomic units.
- 21. The process according to claim 20, wherein said organic species comprises a polyelectrolyte.
- 22. The process according to claim 21, wherein said polyelectrolyte is poly(dimethyldiallylammonium chloride).
- 23. The process according to claim 19, wherein said inorganic species is selected from the group consisting of smectite clays, inorganic nanoparticles and other inorganic macromolecular colloids having a molecular weight greater than 500 atomic units.
- 24. The process according to claim 23, wherein said inorganic species comprises an exfoliated aluminosilicate clay.
- 25. The process according to claim 24, wherein said exfoliated aluminosilicate clay comprises platelets of montmorillonite.
- 26. The process according to claim 25, wherein said platelets have a thickness of about 1.0 nanometer, while extending 150-300 nanometers in the other dimensions.
- 27. The process according to claim 26, wherein said platelets form a layer of overlapping alumosilicate sheets with an average thickness of 3.8±0.3 nanometers.
- 28. The process according to claim 19, wherein said organic species comprises a polyelectolyte and said inorganic species comprises an exfoliated aluminosilicate clay.
- 29. The process according to claim 28, wherein the film is of a thickness between 20-2000 nanometers.
- 30. The process according to claim 29, wherein the film is of a thickness of about 100 nanometers.
- 31. The process according to claim 19, wherein said corrosion inhibitor is selected from the group consisting of molybdates, vanadates, trivalent chromium species, cerium, oxalates, transition metal ions, lanthanide ions, nitrites, cobalt, manganese-based conversion coatings, molybdenum-based conversion coatings, and zirconium based conversion coatings.
- 32. The process according to claim 19, further comprising applying a topcoat layer of a sol-gel material.
- 33. The process according to claim 32, wherein said topcoat layer of said coating is of a thickness of 1-100 microns.
- 34. The process according to claim 33, wherein said topcoat layer of said coating is of a thickness of 1-25 microns.
- 35. The process according to claim 32, wherein said topcoat layer of said coating includes a corrosion inhibitor.
- 36. The process according to claim 19, wherein said metal is an aluminum alloy.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of copending U.S. provisional application Serial No. 60/264,807, filed Jan. 29, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60264807 |
Jan 2001 |
US |