IP Library Granted Patent US 9,263,166
Granted Patent B2
US 9,263,166 · App. 13/919,175 · Granted Feb 16, 2016

Shell activated sintering of core-shell particles

Inventors: Carol Anne Handwerker (West Lafayette, IN); Suk Jun Kim (West Lafayette, IN); Eric A. Stach (West Lafayette, IN)
Assignee: Purdue Research Foundation
H01B1/02B22F1/0018B22F1/025B22F3/12B82Y30/00C22C1/0425Y10T428/12014
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Quick Facts
Patent No.
US 9,263,166
App. No.
13/919,175
Granted
Feb 16, 2016
Kind
B2
Abstract

A sintered structure and method for forming it are disclosed. The method includes obtaining core-shell particles having a core material and a shell material, forming the particles into a powder compact, and annealing the powder compact at an annealing temperature. The shell material is a metal that diffuses faster than the core material at the annealing temperature and diffuses to the contacts between the core-shell particles during annealing to form sintered interfaces between the core-shell particles. The sintered structure can have discontinuous regions of shell material between the sintered interfaces. The core material can be a metal, semiconductor or ceramic. The core material can be copper and the shell material can be silver. The sintered interfaces can be almost purely shell material. The annealing temperature can be significantly lower than the temperature needed to form interfaces between particles of the core material without the shell material.

Claims (22)

1. A sintered structure comprising:

a sintered core-shell compact comprised of a plurality of core-shell particles sintered at an annealing temperature, each of the plurality of core-shell particles having a core material surrounded by a shell material prior to annealing, the shell material being a metal material that diffuses faster than the core material at the annealing temperature, the shell material being discontinuous in the sintered core-shell compact making the sintered core-shell compact behave electrically as a semiconductor and not a metal;

wherein the sintered core-shell compact includes a plurality of sintered interfaces between the core-shell particles that are in physical contact.

2. The sintered structure of claim 1 , wherein the core material is a non-conductive material.

3. The sintered structure of claim 1 , wherein the core material is a non-metal material.

4. The sintered structure of claim 3 , wherein the core material is a semiconductor material.

5. The sintered structure of claim 3 , wherein the core material is a ceramic material.

6. The sintered structure of claim 1 , wherein the core material and the shell material have limited mutual solubility at the annealing temperature.

7. The sintered structure of claim 1 , wherein the sintered core-shell compact does not include an intermediate phase material formed between the core and shell materials.

8. The sintered structure of claim 1 , wherein the sintered interfaces are substantially composed of the shell material.

9. The sintered structure of claim 1 , wherein the plurality of core-shell particles have an average diameter of approximately 470 nm with a shell thickness of approximately 7 nm.

10. The sintered structure of claim 1 , wherein the annealing temperature is lower than the temperature needed to form sintered interfaces between particles of the core material without the shell material.

11. The sintered structure of claim 1 , wherein the shell material is silver.

12. The sintered structure of claim 11 , wherein the core material is a non-conductive material.

13. The sintered structure of claim 11 , wherein the core material is a non-metal material.

14. The sintered structure of claim 13 , wherein the core material is a semiconductor material.

15. The sintered structure of claim 13 , wherein the core material is a ceramic material.

16. The sintered structure of claim 11 , wherein the core material and the shell material have limited mutual solubility at the annealing temperature.

17. The sintered structure of claim 11 , wherein the sintered core-shell compact does not include an intermediate phase material formed between the core and shell materials.

18. The sintered structure of claim 11 , wherein the sintered interfaces are substantially composed of the shell material.

19. The sintered structure of claim 11 , wherein the plurality of core-shell particles have an average diameter of approximately 470 nm with a shell thickness of approximately 7 nm.

20. The sintered structure of claim 11 , wherein the annealing temperature is lower than the temperature needed to form sintered interfaces between particles of the core material without the shell material.

Assignments (1)
CONFIRMATORY LICENSE Recorded Jul 29, 2013
From: PURDUE UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 030911/0215 →
Continuity (3)
Division 12877132 · Sep 8, 2010
Provisional Application 61240441 · Sep 8, 2009
Related Publication 20140370322A1 · Dec 18, 2014