IP Library Granted Patent US 8,496,323
Granted Patent B2
US 8,496,323 · App. 12/775,953 · Granted Jul 30, 2013

Metastable nanoparticle ink compositions and images made therefrom

Inventors: Bartosz A. Grzybowski (Evanston, IL); Rafal Klajn (Rehovot, IL); Paul J. Wesson (Chicago, IL); Kyle J. M. Bishop (State College, PA)
Assignee: Northwestern University
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Quick Facts
Patent No.
US 8,496,323
App. No.
12/775,953
Granted
Jul 30, 2013
Kind
B2
Abstract

Self-erasing inks in which both the printing and self-erasure of color images can be controlled by the dynamic/non-equilibrium aggregation of photoresponsive surface-coated nanoparticles contained in a carrier film are provided. The aggregation is a reversible aggregation that is triggered by a photo-induced transformation in ligands within the surface coating on the nanoparticles. Methods for forming images using the inks are also provided.

Claims (28)

1. An ink comprising:

a carrier film comprising an organogel; and

a plurality of metal nanoparticles dispersed in the carrier film, each metal nanoparticle having a surface coating comprising photo-responsive ligands covalently bound to the metal nanoparticle, the photo-responsive ligands characterized in that they undergo a reversible transformation when exposed to triggering radiation, whereby the reversible transformation results in the reversible aggregation of the metal nanoparticles into non-crystalline assemblies resulting in a change in the color of the ink.

2. The ink of claim 1 , wherein the organogel comprises poly(methyl methacrylate).

3. The ink of claim 1 , wherein the transformation is a trans-cis isomerization and the triggering radiation is UV radiation.

4. An ink comprising:

a carrier film comprising an organogel; and

a plurality of metal nanoparticles dispersed in the carrier film, each metal nanoparticle having a surface coating comprising photo-responsive ligands covalently bound to the metal nanoparticle, the photo-responsive ligands characterized in that they undergo a reversible trans-cis isomerization when exposed to UV radiation, whereby the reversible trans-cis isomerization results in the reversible aggregation of the metal nanoparticles into non-crystalline assemblies resulting in a change in the color of the ink;

wherein the ligands covalently bound to the metal nanoparticles are free of functional groups capable of covalently cross-linking the metal nanoparticles.

5. The ink of claim 4 , wherein the surface coating comprises a self-assembled monolayer and the ligands comprise azobenzene-terminated thiols.

6. The ink of claim 5 , wherein the self-assembled monolayer comprises a mixed monolayer of 4-(11-mercaptoundecanoxy)azobenzene and dodecylamine.

7. The ink of claim 6 , wherein fractional surface coverage of the azobenzene-terminated thiols in the monolayer is about 0.2 to about 0.35.

8. The ink of claim 1 , wherein the surface coating is free of surfactants.

9. The ink of claim 1 , wherein the nanoparticles comprise gold, silver or an alloy thereof.

10. An ink comprising:

a carrier film comprising an organogel; and

a plurality of metal nanoparticles dispersed in the carrier film, each metal nanoparticle having a surface coating comprising photo-responsive ligands covalently bound to the metal nanoparticle, the photo-responsive ligands characterized in that they undergo a reversible transformation when exposed to triggering radiation, whereby the reversible transformation results in the reversible aggregation of the metal nanoparticles into non-crystalline assemblies resulting in a change in the color of the ink;

wherein the concentration of metal nanoparticles in the carrier film is at least 30 mM.

11. A method of printing on a substrate coated with an ink, the ink comprising:

a carrier film comprising an organogel; and

a plurality of metal nanoparticles dispersed in the carrier film, each metal nanoparticle having a surface coating comprising photo-responsive ligands covalently bound to the metal nanoparticle, the photo-responsive ligands characterized in that they undergo a reversible transformation when exposed to triggering radiation, whereby the reversible transformation results in the reversible aggregation of the metal nanoparticles into non-crystalline assemblies resulting in a change in the color of the ink; the method comprising irradiating the ink with triggering radiation to form an image.

12. The method of claim 11 , wherein the triggering radiation intensity, duration or both are varied over different regions of the ink, such that a multi-colored image is formed on the substrate.

13. The method of claim 11 , further comprising discontinuing the irradiation and allowing the image to self-erase.

14. The method of claim 13 , further comprising exposing the image to visible light or heat, whereby the time required for self-erasure is decreased.

15. The method of claim 14 , wherein the image can be fully erased during a period of 60 seconds or less by exposing the image to visible radiation having an intensity of at least 0.3 mW/cm 2 .

16. The method of claim 11 , wherein the image includes colors across the spectrum from red to violet.

17. The method of claim 11 , wherein the image can be formed during a period of irradiation lasting 10 seconds or less, using UV triggering radiation having an intensity of at least 10 mW/cm 2 .

18. The method of claim 11 , wherein the image has a resolution of 20 μm or better.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 1, 2015
From: NORTHWESTERN UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 035561/0250 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2010
From: GRZYBOWSKI, BARTOSZ A.; KLAJN, RAFAL; WESSON, PAUL J.; BISHOP, KYLE J.M.
To: NORTHWESTERN UNIVERSITY
Reel/Frame 025341/0353 →
Continuity (2)
Provisional Application 61176746 · May 8, 2009
Related Publication 20100328410A1 · Dec 30, 2010