IP Library Granted Patent US 10,081,865
Granted Patent B2
US 10,081,865 · App. 15/301,102 · Granted Sep 25, 2018

Passive electronics components comprising coated nanoparticles and methods for producing and using the same

Inventors: David M. King (Broomfield, CO); Paul Lichty (Broomfield, CO)
Assignee: PneumatiCoat Technologies LLC
C23C16/4417B22F1/0003B22F1/0018B22F1/02C23C16/45525H01G4/0085H01G4/30
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Quick Facts
Patent No.
US 10,081,865
App. No.
15/301,102
Granted
Sep 25, 2018
Kind
B2
Abstract

The present invention provides various passive electronic components comprising a layer of coated nanoparticles, and methods for producing and using the same. Some of the passive electronic components of the invention include, but are not limited to conductors, resistors, capacitors, piezoelectronic devices, inductors and transformers.

Claims (27)

1. A passive electronics component comprising an electrode layer of electric conducting nanoparticles that are coated with a thin film of oxidation-resistant material, wherein said thin film of oxidation-resistant material prevents oxidation of said nanoparticles, wherein a function of said electrode layer is substantially the same to a similar electrode layer of electric conducting nanoparticles in the absence of said thin film of oxidation-resistant material, and wherein a thermal oxidation onset temperature of said nanoparticles is at least 25° C. higher than the same nanoparticles in the absence of said thin film of oxidation-resistant material.

2. The passive electronics component of claim 1 , wherein said thin film of oxidation-resistant material provides no significant additional resistivity to said nanoparticles.

3. The passive electronics component of claim 1 , wherein said thin film of oxidation-resistant material does not significantly affect the sintering of said nanoparticles.

4. The passive electronics component of claim 1 , wherein said thin film of oxidation-resistant material comprises a thin film of wide bandgap material.

5. The passive electronics component of claim 4 , wherein said thin film of wide bandgap material comprises a thin film of a material selected from the group consisting of aluminum oxide, hafnium oxide, zirconium oxide, silicon oxide, boron oxide, aluminum nitride, gallium nitride, boron nitride, silicon carbide, boron carbide, or a combination thereof.

6. The passive electronics component of claim 4 , wherein the thickness of said thin film of wide bandgap material is 5.5 nm or less.

7. The passive electronics component of claim 1 , wherein said thin film of oxidation-resistant material comprises a thin film of semiconducting or conducting material.

8. The passive electronics component of claim 2 , wherein the resistivity of said thin film of oxidation-resistant material is 10,000 mW-cm or less.

9. The passive electronics component of claim 1 , wherein the average particle size of said nanoparticles is 500 nm or less.

10. The passive electronics component of claim 1 , wherein said thin film of oxidation-resistant material is produced at least in part by an atomic layer deposition process.

11. The passive electronics component of claim 1 , wherein said passive electronics component comprises a plurality of said electrode layers.

12. The passive electronics component of claim 1 , wherein said passive electronics component is selected from the group consisting of a resistor, a capacitor, an inductor, a transformer, an actuator, a piezoelectric, a varistor, a transducer, a memristor, a sensor, a thyristor, a thermistor, and a transistor.

13. The passive electronics component of claim 1 , further comprising a dielectric or piezoelectric layer of corresponding nanoparticles that are coated with a thin film of a reliability-improving material.

14. An electronic device comprising the passive electronics component of claim 1 .

15. A passive electronics component comprising an electrode layer of electric conducting nanoparticles that are coated with a thin film of oxidation-resistant material, wherein said thin film of oxidation-resistant material prevents oxidation of said nanoparticles, wherein a function of said electrode layer is substantially the same to a similar electrode layer of electric conducting nanoparticles in the absence of said thin film of oxidation-resistant material, and wherein said thin film of oxidation-resistant material comprises a dopant material such that said dopant material increases the conductivity of said thin film of oxidation-resistant material by at least 100%.

16. The passive electronics component of claim 15 , further comprising a dielectric or piezoelectric layer of corresponding nanoparticles that are coated with a thin film of a reliability-improving material.

17. An electronic device comprising the passive electronics component of claim 15 .

18. The passive electronics component of claim 15 , wherein said thin film of oxidation-resistant material does not significantly affect the sintering of said nanoparticles.

19. The passive electronics component of claim 15 , wherein said thin film of oxidation-resistant material comprises a thin film of wide bandgap material.

20. The passive electronics component of claim 19 , wherein said thin film of wide bandgap material comprises a thin film of a material selected from the group consisting of aluminum oxide, hafnium oxide, zirconium oxide, silicon oxide, boron oxide, aluminum nitride, gallium nitride, boron nitride, silicon carbide, boron carbide, or a combination thereof.

21. The passive electronics component of claim 19 , wherein the thickness of said thin film of wide bandgap material is 5.5 nm or less.

22. The passive electronics component of claim 15 , wherein said thin film of oxidation-resistant material comprises a thin film of semiconducting or conducting material.

23. The passive electronics component of claim 15 , wherein the average particle size of said nanoparticles is 500 nm or less.

24. The passive electronics component of claim 15 , wherein said thin film of oxidation-resistant material is produced at least in part by an atomic layer deposition process.

25. The passive electronics component of claim 15 , wherein said passive electronics component comprises a plurality of said electrode layers.

26. The passive electronics component of claim 15 , wherein said passive electronics component is selected from the group consisting of a resistor, a capacitor, an inductor, a transformer, an actuator, a piezoelectric, a varistor, a transducer, a memristor, a sensor, a thyristor, a thermistor, and a transistor.

27. A passive electronics component comprising an electrode layer of electric conducting particles that are coated with a thin film of oxidation-resistant material, wherein said thin film of oxidation-resistant material prevents oxidation of said particles, and wherein a function of said electrode layer is substantially the same to a similar electrode layer of electric conducting particles in the absence of said thin film of oxidation-resistant material, and wherein a thermal oxidation onset temperature of said particles is at least 25° C. higher than the same particles in the absence of said thin film of oxidation-resistant material.

Assignments (1)
CHANGE OF NAME Recorded Jan 29, 2026
From: PNEUMATICOAT TECHNOLOGIES LLC
To: FORGE NANO, INC.
Reel/Frame 075284/0745 →
Continuity (2)
Provisional Application 61973352 · Apr 1, 2014
Related Publication 20170022608A1 · Jan 26, 2017