GRAPHENE BASED CORROSION-RESISTANT COATING | Matter42 Literature
Patent
Atlas literature
Patent
US 10,781,318
GRAPHENE BASED CORROSION-RESISTANT COATING
Michael E. Folsom
US
Drawings
Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1
process chamber schematic
FIG. 1 is a schematic view of a corrosion-resistant coating on an article. [0008]
FIG. 2
FIG. 2 is a method of applying a corrosion-resistant coating to an article. [0009] While the above-identified figures set forth embodiments of the present …
Claims
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A coating for protecting a component exposed to a corrosive environment, the coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
The coating of claim 1, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
7
Independentepoxy phenolic resingraphene nanoplateletsmetallic substratecoated article with metallic substrate
An article for use in a corrosive environment, the article comprising: a metallic substrate; and a corrosion-resistant coating disposed on a surface of the metallic substrate, the corrosion-resistant coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
8
Dependent← claim 7graphene nanoplatelets
The article of claim 7, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
1 6. A method of protecting an article exposed to a corrosive environment, the method comprising: applying a corrosion-resistant epoxy phenolic coating to a surface of the article exposed to a corrosive environment, wherein the epoxy phenolic coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets containing 5 to 15 atomic percent oxygen; and First Named Inventor: Michael E. Folsom Application No.: 16/185,417 curing the corrosion-resistant epoxy phenolic coating. Previously presented
17
Dependent← claim 16aluminum alloymagnesium alloy
The method of claim 16, wherein the surface of the article is an aluminum alloy or magnesium alloy free of a chromate containing wash primer or chromate containing conversion coat. Original
18
Dependent← claim 16graphene nanoplatelets
The method of claim 16, wherein the graphene nanoplatelets have a diameter within the range of 1 to 20 micrometers. Original
Device structures
Layer stacks claimed or described, ordered top of device to substrate.
Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1
process chamber schematic
FIG. 1 is a schematic view of a corrosion-resistant coating on an article. [0008]
FIG. 2
FIG. 2 is a method of applying a corrosion-resistant coating to an article. [0009] While the above-identified figures set forth embodiments of the present …
Claims
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A coating for protecting a component exposed to a corrosive environment, the coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
The coating of claim 1, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
7
Independentepoxy phenolic resingraphene nanoplateletsmetallic substratecoated article with metallic substrate
An article for use in a corrosive environment, the article comprising: a metallic substrate; and a corrosion-resistant coating disposed on a surface of the metallic substrate, the corrosion-resistant coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
8
Dependent← claim 7graphene nanoplatelets
The article of claim 7, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
1 6. A method of protecting an article exposed to a corrosive environment, the method comprising: applying a corrosion-resistant epoxy phenolic coating to a surface of the article exposed to a corrosive environment, wherein the epoxy phenolic coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets containing 5 to 15 atomic percent oxygen; and First Named Inventor: Michael E. Folsom Application No.: 16/185,417 curing the corrosion-resistant epoxy phenolic coating. Previously presented
17
Dependent← claim 16aluminum alloymagnesium alloy
The method of claim 16, wherein the surface of the article is an aluminum alloy or magnesium alloy free of a chromate containing wash primer or chromate containing conversion coat. Original
18
Dependent← claim 16graphene nanoplatelets
The method of claim 16, wherein the graphene nanoplatelets have a diameter within the range of 1 to 20 micrometers. Original
Device structures
Layer stacks claimed or described, ordered top of device to substrate.
Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1
process chamber schematic
FIG. 1 is a schematic view of a corrosion-resistant coating on an article. [0008]
FIG. 2
FIG. 2 is a method of applying a corrosion-resistant coating to an article. [0009] While the above-identified figures set forth embodiments of the present …
Claims
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A coating for protecting a component exposed to a corrosive environment, the coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
The coating of claim 1, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
7
Independentepoxy phenolic resingraphene nanoplateletsmetallic substratecoated article with metallic substrate
An article for use in a corrosive environment, the article comprising: a metallic substrate; and a corrosion-resistant coating disposed on a surface of the metallic substrate, the corrosion-resistant coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
8
Dependent← claim 7graphene nanoplatelets
The article of claim 7, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
1 6. A method of protecting an article exposed to a corrosive environment, the method comprising: applying a corrosion-resistant epoxy phenolic coating to a surface of the article exposed to a corrosive environment, wherein the epoxy phenolic coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets containing 5 to 15 atomic percent oxygen; and First Named Inventor: Michael E. Folsom Application No.: 16/185,417 curing the corrosion-resistant epoxy phenolic coating. Previously presented
17
Dependent← claim 16aluminum alloymagnesium alloy
The method of claim 16, wherein the surface of the article is an aluminum alloy or magnesium alloy free of a chromate containing wash primer or chromate containing conversion coat. Original
18
Dependent← claim 16graphene nanoplatelets
The method of claim 16, wherein the graphene nanoplatelets have a diameter within the range of 1 to 20 micrometers. Original
Device structures
Layer stacks claimed or described, ordered top of device to substrate.
Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 1
process chamber schematic
FIG. 1 is a schematic view of a corrosion-resistant coating on an article. [0008]
FIG. 2
FIG. 2 is a method of applying a corrosion-resistant coating to an article. [0009] While the above-identified figures set forth embodiments of the present …
Claims
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A coating for protecting a component exposed to a corrosive environment, the coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
The coating of claim 1, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
7
Independentepoxy phenolic resingraphene nanoplateletsmetallic substratecoated article with metallic substrate
An article for use in a corrosive environment, the article comprising: a metallic substrate; and a corrosion-resistant coating disposed on a surface of the metallic substrate, the corrosion-resistant coating comprising: an epoxy phenolic resin; and graphene nanoplatelets, wherein the nanoplatelets are dispersed in the epoxy phenolic resin. Previously presented
8
Dependent← claim 7graphene nanoplatelets
The article of claim 7, wherein the coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets. Original
1 6. A method of protecting an article exposed to a corrosive environment, the method comprising: applying a corrosion-resistant epoxy phenolic coating to a surface of the article exposed to a corrosive environment, wherein the epoxy phenolic coating comprises 0.1 to 2.0 weight percent graphene nanoplatelets containing 5 to 15 atomic percent oxygen; and First Named Inventor: Michael E. Folsom Application No.: 16/185,417 curing the corrosion-resistant epoxy phenolic coating. Previously presented
17
Dependent← claim 16aluminum alloymagnesium alloy
The method of claim 16, wherein the surface of the article is an aluminum alloy or magnesium alloy free of a chromate containing wash primer or chromate containing conversion coat. Original
18
Dependent← claim 16graphene nanoplatelets
The method of claim 16, wherein the graphene nanoplatelets have a diameter within the range of 1 to 20 micrometers. Original
Device structures
Layer stacks claimed or described, ordered top of device to substrate.
target coating thickness um:7.6 to 12.7 (preferred), maximum 12.7 or 25.4 depending on embodiment
graphene oxygen content atomic pct:5 to 15
graphene nanoplatelet loading wt pct total solids:0.1 to 2.0
Materials:epoxy phenolic resingraphene nanoplateletsalkoxysilane ((3-glycidoxypropyl)trimethoxysilane)solvent (acetone, isopropanol, or other solvent suitable for mixing with epoxy phenolic resin)
target coating thickness um:7.6 to 12.7 (preferred), maximum 12.7 or 25.4 depending on embodiment
graphene oxygen content atomic pct:5 to 15
graphene nanoplatelet loading wt pct total solids:0.1 to 2.0
Materials:epoxy phenolic resingraphene nanoplateletsalkoxysilane ((3-glycidoxypropyl)trimethoxysilane)solvent (acetone, isopropanol, or other solvent suitable for mixing with epoxy phenolic resin)
target coating thickness um:7.6 to 12.7 (preferred), maximum 12.7 or 25.4 depending on embodiment
graphene oxygen content atomic pct:5 to 15
graphene nanoplatelet loading wt pct total solids:0.1 to 2.0
Materials:epoxy phenolic resingraphene nanoplateletsalkoxysilane ((3-glycidoxypropyl)trimethoxysilane)solvent (acetone, isopropanol, or other solvent suitable for mixing with epoxy phenolic resin)
target coating thickness um:7.6 to 12.7 (preferred), maximum 12.7 or 25.4 depending on embodiment
graphene oxygen content atomic pct:5 to 15
graphene nanoplatelet loading wt pct total solids:0.1 to 2.0
Materials:epoxy phenolic resingraphene nanoplateletsalkoxysilane ((3-glycidoxypropyl)trimethoxysilane)solvent (acetone, isopropanol, or other solvent suitable for mixing with epoxy phenolic resin)