IP Library Granted Patent US 9,845,441
Granted Patent B2
US 9,845,441 · App. 15/012,667 · Granted Dec 19, 2017

Method to produce catalytically active nanocomposite coatings

Inventors: Ali Erdemir (Naperville, IL); Osman Levent Eryilmaz (Plainfield, IL); Mustafa Urgen (Istanbul, TR); Kursat Kazmanli (Istanbul, TR)
Assignee: UChicago Argonne, LLC
C10M169/04B01J27/22B01J27/24B01J35/002B01J37/347B01J37/349C10M103/04C10M125/02B01J37/0225C10M2201/05C10M2201/061C10M2201/087C10N2210/01C10N2210/02C10N2210/03
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Quick Facts
Patent No.
US 9,845,441
App. No.
15/012,667
Granted
Dec 19, 2017
Kind
B2
Abstract

A nanocomposite coating and method of making and using the coating. The nanocomposite coating is disposed on a base material, such as a metal or ceramic; and the nanocomposite consists essentially of a matrix of an alloy selected from the group of Cu, Ni, Pd, Pt and Re which are catalytically active for cracking of carbon bonds in oils and greases and a grain structure selected from the group of borides, carbides and nitrides.

Claims (35)

1. A method for lubricating materials in wear contact, comprising the steps of:

providing a base material;

disposing a nanocomposite coating on the base material, the nanocomposite consisting essentially of a microstructural matrix of a catalytically active alloy with grains embedded in the microstructural, the microstructural matrix selected from the group of Cu, Ni, Pd, Pt and Re and mixtures thereof and the grains selected from the group of transition metal carbides, transition metal nitrides, transition metal carbo-nitrides, transition metal borides, refractory metal carbides, refractory metal nitrides, refractory metal carbo-nitrides, refractory metal borides

disposing an oil on the nanocomposite coating;

engaging the nanocomposite coating with a surface, the oil disposed therebetween;

cracking carbon bonds of the oil;

forming a carbon film disposed between the coating and the surface, thereby lubricating the nanocomposite coating.

2. The method as defined in claim 1 wherein the alloy is about 1% to 10% by weight and the grains from about 90% to 99% by weight.

3. The method as defined in claim 1 wherein the base material is selected from the group of a metal and a ceramic.

4. The method as defined in claim 1 wherein the base material comprises a steel based material.

5. The method as defined in claim 1 wherein the oil is essentially free of additives.

6. The method as defined in claim 1 where the carbon film consists essentially of diamond like carbon.

7. The method as defined in claim 1 where the grains are selected from the group of refractory metal carbides, carbo-nitrides, nitrides and borides.

8. A method for lubricating materials in wear contact, comprising the steps of:

providing a base material;

disposing a nanocomposite coating on the base material, the nanocomposite consisting essentially of about 1% to 10% by weight a microstructural matrix of a catalytically active alloy with about 90% to 99% by weight grains embedded in therein, the microstructural matrix selected from the group of Cu, Ni, Pd, Pt and Re and mixtures thereof and the grains selected from the group of transition metal carbides, transition metal nitrides, transition metal carbo-nitrides, transition metal borides, refractory metal carbides, refractory metal nitrides, refractory metal carbo-nitrides, refractory metal borides;

disposing a hydrocarbon on the nanocomposite coating;

engaging the nanocomposite coating with a surface, the hydrocarbon disposed therebetween;

forming a carbon film disposed between the coating and the surface, thereby lubricating the nanocomposite coating.

9. The method as defined in claim 8 wherein the base material is selected from the group of a metal and a ceramic.

10. The method as defined in claim 8 wherein the base material comprises a steel based material.

11. The method as defined in claim 8 wherein the hydrocarbon is an oil.

12. The method as defined in claim 8 where the carbon film consists essentially of diamond like carbon.

13. The method as defined in claim 8 where the grains are selected from the group of refractory metal carbides, carbo-nitrides, nitrides and borides.

14. A method for lubricating materials in wear contact, comprising the steps of:

providing a base material;

disposing a nanocomposite coating on the base material, the nanocomposite consisting essentially of a microstructural matrix of a catalytically active alloy with grains embedded in the microstructural, the microstructural matrix selected from the group of Cu, Ni, Pd, Pt and Re and mixtures thereof and the grains selected from the group of transition metal carbides, transition metal nitrides, transition metal carbo-nitrides, transition metal borides, refractory metal carbides, refractory metal nitrides, refractory metal carbo-nitrides, refractory metal borides

disposing a hydrocarbon on the nanocomposite coating;

engaging the nanocomposite coating with a surface, the hydrocarbon disposed therebetween;

forming a carbon film disposed between the coating and the surface, thereby lubricating the nanocomposite coating.

15. The method as defined in claim 14 wherein the alloy is about 1% to 10% by weight and the grains from about 90% to 99% by weight.

16. The method as defined in claim 14 wherein the base material is selected from the group of a metal and a ceramic.

17. The method as defined in claim 14 wherein the base material comprises a steel based material.

18. The method as defined in claim 14 where the carbon film consists essentially of diamond like carbon.

19. The method as defined in claim 14 where the grains are selected from the group of refractory metal carbides, carbo-nitrides, nitrides and borides.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 1, 2016
From: UCHICAGO ARGONNE, LLC
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 038923/0625 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2016
From: ERDEMIR, ALI; ERYILMAZ, OSMAN LEVENT
To: UCHICAGO ARGONNE, LLC
Reel/Frame 037918/0116 →
Continuity (2)
Division 13250760 · Sep 30, 2011
Related Publication 20160145531A1 · May 26, 2016