IP Library Granted Patent US 8,822,618
Granted Patent B2
US 8,822,618 · App. 13/393,183 · Granted Sep 2, 2014

Microcapsule and methods of making and using microcapsules

Inventors: David C. Okawa (San Bruno, CA); Stefan J. Pastine (San Francisco, CA); Alexander K. Zettl (Kensington, CA); Jean M. J. Frechet (Oakland, CA)
Assignee: The Regents of the University of California
B01J13/16C09B67/0097Y10S977/762Y10S977/773Y10S977/774Y10S977/742
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Quick Facts
Patent No.
US 8,822,618
App. No.
13/393,183
Granted
Sep 2, 2014
Kind
B2
Abstract

An embodiment of a microcapsule includes a shell surrounding a space, a liquid within the shell, and a light absorbing material within the liquid. An embodiment of a method of making microcapsules includes forming a mixture of a light absorbing material and an organic solution. An emulsion of the mixture and an aqueous solution is then formed. A polymerization agent is added to the emulsion, which causes microcapsules to be formed. Each microcapsule includes a shell surrounding a space, a liquid within the shell, and light absorbing material within the liquid. An embodiment of a method of using microcapsules includes providing phototriggerable microcapsules within a bulk material. Each of the phototriggerable microcapsules includes a shell surrounding a space, a chemically reactive material within the shell, and a light absorbing material within the shell. At least some of the phototriggerable microcapsules are exposed to light, which causes the chemically reactive material to release from the shell and to come into contact with bulk material.

Claims (31)

1. A microcapsule comprising:

a shell surrounding an open volume;

a liquid in the open volume; and

nanostructures in the liquid, the nanostructures comprising carbon nanotubes, the nanostructures configured to absorb light, a temperature of the nanostructures increasing when the nanostructures absorb the light, the temperature increase of the nanostructures operable to cause the shell to release the liquid from the open volume.

2. The microcapsule of claim 1 wherein the shell is impermeable to a solvent.

3. The microcapsule of claim 1 wherein the shell comprises a polyamide material.

4. The microcapsule of claim 1 wherein the liquid comprises a chemically reactive liquid.

5. The microcapsule of claim 1 wherein the liquid comprises a chemically reactive colloid.

6. The microcapsule of claim 1 further comprising:

a chemically reactive gas in the open volume.

7. The microcapsule of claim 1 wherein the carbon nanotubes are surrounded by a microencapsulation material.

8. The microcapsule of claim 7 wherein the microencapsulation material comprises a polyamide material.

9. The microcapsule of claim 1 wherein the shell has a maximum dimension on a micrometer scale.

10. The microcapsule of claim 1 wherein the shell has a maximum dimension on a nanometer scale.

11. The microcapsule of claim 1 wherein the light is light generated with a near-infrared laser.

12. The microcapsule of claim 1 wherein the temperature increase of the nanostructures is configured to cause the open volume to increase, and wherein the open volume increase is configured to cause the shell to rupture.

13. The microcapsule of claim 1 wherein the liquid comprises an epoxy curing agent and wherein the microcapsule is configured to be positioned in an epoxy resin.

14. A method of making microcapsules comprising:

forming a mixture of nanostructures and an organic solution, the nanostructures comprising carbon nanotubes;

forming an emulsion of the mixture and an aqueous solution; and

adding a polymerization agent to the emulsion to form the microcapsules, each microcapsule comprising:

a shell surrounding an open volume; and

a liquid in the open volume, the liquid including the nanostructures, the nanostructures configured to absorb light, a temperature of the nanostructures increasing when the nanostructures absorb the light, the temperature increase of the nanostructures operable to cause the shell to release the emulsion from the open volume.

15. A method of using microcapsules comprising:

providing the microcapsules within a bulk material, each of the microcapsules comprising:

a shell surrounding an open volume;

a liquid in the open volume; and

nanostructures in the liquid, the nanostructures comprising carbon nanotubes, the nanostructures configured to absorb light, a temperature of the nanostructures increasing when the nanostructures absorb the light, the temperature increase of the nanostructures operable to cause the shell to release the liquid from the open volume; and

exposing at least some of the microcapsules to the light, causing the liquid to be released from the shell and to come into contact with the bulk material.

16. The method of claim 15 wherein the liquid is selected from a group consisting of a chemically reactive liquid and a chemically reactive colloid.

17. The method of claim 15 wherein the bulk material is selected from a group consisting of a liquid and a solid.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2012
From: OKAWA, DAVID C.; PASTINE, STEFAN J.; ZETTL, ALEXANDER K.; FRECHET, JEAN M.J.
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 028299/0259 →
CONFIRMATORY LICENSE Recorded May 21, 2012
From: REGENTS OF THE UNIVERSITY OF CALIFORNIA, THE
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 028254/0013 →
Continuity (2)
Provisional Application 61239414 · Sep 2, 2009
Related Publication 20120253000A1 · Oct 4, 2012