IP Library Granted Patent US 9,512,324
Granted Patent B2
US 9,512,324 · App. 13/645,318 · Granted Dec 6, 2016

Antibacterial metallic nanofoam and related methods

Inventors: Emily M. Hunt (Canyon, TX); Michelle L. Pantoya (Lubbock, TX)
Assignees: The Texas A&M University System; Texas Tech University
C09D7/1291B22F1/0018B22F3/1143B82Y30/00C09D5/14C09D7/1225C22C1/051C22C1/08C22C1/10C22C21/00C22C29/12C22C32/0015C22C32/0036B22F1/0048B22F1/02Y10T428/24997
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Quick Facts
Patent No.
US 9,512,324
App. No.
13/645,318
Granted
Dec 6, 2016
Kind
B2
Abstract

Antibacterial metallic nanofoams, substrates having the nanofoam coated thereon, methods for preventing, inhibiting, and/or killing bacterial growth using the metallic nanofoams, and compositions and methods for making the metallic nanofoams.

Claims (31)

1. A powder comprising:

(a) metal alloy nanoparticles, wherein the metal alloy nanoparticles comprise a metal selected from the group consisting of aluminum, titanium, manganese, molybdenum, and gold; and

(b) metal oxide particles, wherein the metal of the metal oxide is selected from the group consisting of silver, copper, iron, tin, lead, zinc, nickel, cadmium, chromium, cobalt, bismuth, mercury, titanium, and gold, and combinations thereof, wherein the metal of the metal oxide is antibacterial, and wherein the average maximum dimension of the metal oxide particles is less than one micrometer.

2. The powder of claim 1 , wherein the stoichiometric equivalence ratio of metal alloy to metal oxide is from 0.8 to 1.2.

3. A substrate having a surface, wherein at least a portion of the surface has a coating comprising the powder of claim 1 .

4. The substrate of claim 3 , wherein the substrate is a medical device.

5. The substrate of claim 3 , wherein the surface is a surface of food processing and packaging equipment, a food preparation surface, a countertop, a cutting board, or a food serving surface.

6. The powder of claim 1 , wherein the metal alloy nanoparticles comprise aluminum.

7. The powder of claim 1 , wherein the metal of the metal oxide is selected from the group consisting of silver, titanium, and nickel, and combinations thereof.

8. The powder of claim 1 , wherein the metal oxide is silver oxide.

9. The powder of claim 1 , wherein the metal oxide is titanium oxide.

10. The powder of claim 1 , wherein the metal alloy comprises aluminum and the metal oxide is silver oxide.

11. The powder of claim 1 , wherein the metal alloy comprises aluminum and the metal oxide is titanium oxide.

12. A method for inhibiting bacterial growth on or in a substance, comprising contacting the substance with a powder of claim 1 .

13. The method of claim 12 , wherein the powder is a coating on all or part of a substrate surface.

14. The method of claim 12 , wherein the bacteria growth comprises bacteria that is a spore-forming bacteria.

15. A powder comprising:

(a) metal nanoparticles, wherein the metal of the metal nanoparticles is selected from the group consisting of aluminum, manganese, molybdenum, and gold; and

(b) metal oxide particles, wherein the metal of the metal oxide is selected from the group consisting of silver, copper, iron, tin, lead, zinc, nickel, cadmium, chromium, cobalt, bismuth, mercury, titanium, and gold, and combinations thereof, wherein the metal of the metal oxide is antibacterial, and wherein the average maximum dimension of the metal oxide particles is less than one micrometer.

16. The powder of claim 15 , wherein the stoichiometric equivalence ratio of metal to metal oxide is from 0.8 to 1.2.

17. The powder of claim 15 , wherein the metal of the nanoparticles is aluminum.

18. The powder of claim 15 , wherein the metal oxide is silver oxide.

19. The powder of claim 15 , wherein the metal oxide is titanium oxide.

20. The powder of claim 15 , wherein the metal of the nanoparticles is aluminum and the metal oxide is silver oxide.

21. The powder of claim 15 , wherein the metal of the nanoparticles is aluminum and the metal oxide is titanium oxide.

22. A substrate having a surface, wherein at least a portion of the surface has a coating comprising the powder of claim 15 .

23. The substrate of claim 22 , wherein the substrate is a medical device.

24. The substrate of claim 22 , wherein the surface is a surface of food processing and packaging equipment, a food preparation surface, a countertop, a cutting board, or a food serving surface.

25. A method for inhibiting bacterial growth on or in a substance, comprising contacting the substance with a powder of claim 15 .

26. The method of claim 25 , wherein the powder is a coating on all or part of a substrate surface.

27. The method of claim 25 , wherein the bacteria growth comprises bacteria that is a spore-forming bacteria.

Assignments (4)
CONFIRMATORY LICENSE Recorded May 26, 2015
From: TEXAS ENGINEERING EXPERIMENT STATION
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 035772/0161 →
CONFIRMATORY LICENSE Recorded Jan 15, 2015
From: TEXAS A&M UNIVERSITY SYSTEM
To: DEFENSE THREAT REDUCTION AGENCY; DEPT. OF DEFENSE; UNITED STATES GOVERNMENT
Reel/Frame 034768/0346 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2013
From: PANTOYA, MICHELLE L.
To: TEXAS TECH UNIVERSITY
Reel/Frame 029585/0087 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2013
From: HUNT, EMILY M.
To: THE TEXAS A&M UNIVERSITY SYSTEM
Reel/Frame 029585/0089 →
Continuity (2)
Provisional Application 61543679 · Oct 5, 2011
Related Publication 20130087069A1 · Apr 11, 2013