IP Library › Granted Patent US 11,591,223
Granted Patent B2
US 11,591,223 · App. 16/638,548 · Granted Feb 28, 2023

Nanocomposites, nanocomposite sensors and related methods

Inventors: Vikas Nandwana (Evanston, IL); Vinayak P. Dravid (Glenview, IL)
Assignee: Northwestern University
C01B32/19C01B19/007C01G39/06C01G49/08C12N9/0006G01N21/77B82Y15/00B82Y30/00B82Y40/00C01P2004/64C01P2004/80C12Y101/03004G01N2021/7756
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Quick Facts
Patent No.
US 11,591,223
App. No.
16/638,548
Granted
Feb 28, 2023
Kind
B2
Abstract

Methods for making nanocomposites are provided. In an embodiment, such a method comprises combining a first type of nanostructure with a bulk material in water or an aqueous solution, the first type of nanostructure functionalized with a functional group capable of undergoing van der Waals interactions with the bulk material, whereby the first type of nanostructure induces exfoliation of the bulk material to provide a second, different type of nanostructure while inducing association between the first and second types of nanostructures to form the nanocomposite.

Claims (15)

1. A method of making a nanocomposite, the method comprising combining a first type of nanostructure with a bulk material in water or an aqueous solution, the first type of nanostructure functionalized with a functional group capable of undergoing van der Waals interactions with the bulk material, whereby the first type of nanostructure induces exfoliation of the bulk material to provide a second, different type of nanostructure therefrom while inducing association between the first and second types of nanostructures to form the nanocomposite, wherein the first type of nanostructure is selected from 0D nanostructures, 1D nanostructures, 2D nanostructures and combinations thereof, and the second, different type of nanostructure is a 2D nanostructure, and further wherein the nanocomposite comprises the first type of nanostructure distributed on exposed surfaces of the second, different type of nanostructure.

2. The method of claim 1 , wherein the bulk material is unfunctionalized.

3. The method of claim 1 , further comprising depositing the nanocomposite on a substrate to form a sensor.

4. The method of claim 1 , wherein the first type of nanostructure is a 0D nanoparticle and the second type of nanostructure is a 2D nanosheet, and further wherein the nanocomposite comprises 0D nanoparticles distributed on the exposed surfaces of 2D nanosheets.

5. The method of claim 1 , wherein the compositions of the first and second types of nanostructures are independently selected from noble metals, quantum dots, graphene, transition metal chalcogenides, transition metal oxides, nitrides, and combinations thereof.

6. The method of claim 1 , wherein the functional group is selected from a thiol, a sulfate, a carboxylate, a cholate, a sulfonate, and trimethyl ammonium.

7. The method of claim 1 , wherein the composition of the first type of nanostructure is a transition metal oxide and the composition of the bulk material and the second type of nanostructure is a transition metal chalcogenide.

8. The method of claim 7 , further wherein the functional group is a thiol.

9. The method of claim 7 , wherein the transition metal oxide is Fe 3 O 4 and the transition metal chalcogenide is MoS 2 .

10. The method of claim 9 , further wherein the functional group is a thiol.

11. A method of making a nanocomposite, the method comprising combining a first type of nanostructure with a bulk material in water or an aqueous solution, the first type of nanostructure functionalized with a functional group capable of undergoing van der Waals interactions with the bulk material, whereby the first type of nanostructure induces exfoliation of the bulk material to provide a second, different type of nanostructure while inducing association between the first and second types of nanostructures to form the nanocomposite, further comprising depositing the nanocomposite on a substrate to form a sensor, and further comprising depositing a chromogenic material on the substrate, the chromogenic material capable of exhibiting a color change when oxidized.

12. A method of making a nanocomposite, the method comprising combining a first type of nanostructure with a bulk material in water or an aqueous solution, the first type of nanostructure functionalized with a functional group capable of undergoing van der Waals interactions with the bulk material, whereby the first type of nanostructure induces exfoliation of the bulk material to provide a second, different type of nanostructure while inducing association between the first and second types of nanostructures to form the nanocomposite, further comprising depositing the nanocomposite on a substrate to form a sensor, further comprising depositing a chromogenic material on the substrate, the chromogenic material capable of exhibiting a color change when oxidized, and further comprising depositing an oxidoreductase on the substrate.

13. The method of claim 12 , wherein the oxidoreductase is glucose oxidase.

14. The method of claim 13 , wherein the composition of the first type of nanostructure is a transition metal oxide and the composition of the bulk material and the second type of nanostructure is a transition metal chalcogenide.

15. The method of claim 14 , wherein the transition metal oxide is Fe 3 O 4 and the transition metal chalcogenide is MoS 2 .

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 6, 2025
From: NORTHWESTERN UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070126/0973 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2020
From: NANDWANA, VIKAS; DRAVID, VINAYAK P.
To: NORTHWESTERN UNIVERSITY
Reel/Frame 052472/0773 →
Continuity (2)
Provisional Application 62545686 · Aug 15, 2017
Related Publication 20210107792A1 · Apr 15, 2021