IP Library › Granted Patent US 10,996,172
Granted Patent B2
US 10,996,172 · App. 16/607,518 · Granted May 4, 2021

Surface-functionalized nanostructures for molecular sensing applications

Inventors: Robert P. H. Chang (Glenview, IL); Shiqiang Li (Clayton, AU); Peijun Guo (Woodridge, IL); Kai Chen (Tsukuba, JP); Keiko Okano (Tsukuba, JP); Tadaaki Nagao (Tsukuba, JP)
Assignees: NATIONAL INSTITUTE OF MATERIAL SCIENCE; Northwestern University
G01N21/658G01N33/587G01N2021/653
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Quick Facts
Patent No.
US 10,996,172
App. No.
16/607,518
Granted
May 4, 2021
Kind
B2
Abstract

Surface-functionalized nano structures, arrays of the nanostructures, and method for using the arrays in surfaced-enhanced spectroscopy and dielectric sensing applications, such as surface-enhanced infrared absorption spectroscopy, are provided. The nanostructures are functionalized with specific binding moieties that are bound to the nanostructures via phosphonic acid linkers.

Claims (42)

1. A substrate for surface-enhanced spectroscopy comprising

(a) a substrate; and

(b) an array of nanostructures on the substrate, wherein the nanostructures are functionalized with specific binding moieties that are bound to the nanostructures via phosphonic acid linkers,

wherein the nanostructures comprise an electrically conductive oxide that is not titanium oxide, aluminum oxide, or zinc oxide, an electrically conductive nitride, an electrically conductive boride, an electrically conductive carbide, or a non-noble metal that is not titanium, aluminum, or zinc.

2. The substrate of claim 1 , wherein phosphonic acid linkers comprise the structure -R—P(OH) 3 , wherein R represents a single bond or a spacer comprising at least a carbon and hydrogen.

3. The substrate of claim 2 , wherein R is an alkyl group, an alkoxyl group or a thioalkyl group.

4. The substrate of claim 2 , wherein specific binding moieties are bound to the R groups of the phosphonic acid linkers.

5. The substrate of claim 1 , wherein the nanostructures comprise electrically conductive metal oxide nanoparticles.

6. The substrate of claim 5 , wherein the nanostructures comprise indium-tin-oxide.

7. The substrate of claim 1 , wherein the nanostructures have a native surface oxide layer and the phosphonic acid linkers are bound to the native surface oxide.

8. The substrate of claim 1 , wherein the nanostructures comprise TiN, ZrN, TaN, HfN, or doped GaN.

9. The substrate of claim 1 , wherein the nanostructures comprise TiC, TaC, NbC, HfC, or doped SiC.

10. The substrate of claim 1 , wherein the nanostructures comprise LaB 6 , PrB 6 , CeB 6 , AlB 2 , or ZrB 2 .

11. The substrate of claim 1 , wherein the nanostructures comprise Fe, Ta, Pt, Ir, Cu, W, or Mo.

12. The substrate of claim 1 , wherein the nanostructures are plasmonic nanostructures.

13. The substrate of claim 12 , wherein the nanostructures comprise indium-tin-oxide, Al, Ga-doped ZnO, or Ga-doped InO.

14. The substrate of claim 1 , wherein the nanostructures are polaritonic nanostructures.

15. The substrate of claim 14 , wherein the nanostructures comprise SrTiO 3 , Ta 2 O 3 , BaTiO 3 , Si or Ge.

16. The substrate of claim 1 , wherein the specific binding moieties are biomolecules.

17. The substrate of claim 16 , wherein the specific binding moieties comprise proteins, single-stranded DNA, polypeptides, or a combination thereof.

18. The substrate of claim 1 , wherein the specific binding moieties comprise crown ether molecules.

19. A substrate for surface-enhanced spectroscopy comprising

(a) a substrate; and

(b) an array of nanostructures on the substrate, wherein the nanostructures are functionalized with specific binding moieties that are bound to the nanostructures via phosphonic acid linkers,

wherein the nanostructures comprise an electrically conductive oxide, an electrically conductive nitride, an electrically conductive boride, an electrically conductive carbide, or a non-noble metal, wherein specific binding moieties are bound directly to the P atoms of the phosphonic acid linkers.

20. The substrate of claim 19 , wherein the specific binding moieties are biomolecules.

21. The substrate of claim 20 , wherein the specific binding moieties comprise proteins, single-stranded DNA, polypeptides, or a combination thereof.

22. The substrate of claim 19 , wherein the specific binding moieties comprise crown ether molecules.

23. The substrate of claim 19 , wherein the specific binding moieties comprise dioxin molecules.

24. A substrate for surface-enhanced spectroscopy comprising

(a) a substrate; and

(b) an array of nanostructures on the substrate, wherein the nanostructures are functionalized with specific binding moieties that are bound to the nanostructures via phosphonic acid linkers,

wherein the nanostructures comprise an electrically conductive oxide, an electrically conductive nitride, an electrically conductive boride, an electrically conductive carbide, or a non-noble metal, wherein the specific binding moieties comprise dioxin molecules.

25. A method of conducting surface-enhanced spectroscopy using:

(a) a substrate; and

(b) an array of nanostructures on the substrate, wherein the nanostructures are functionalized with specific binding moieties that are bound to the nanostructures via phosphonic acid linkers,

wherein the nanostructures comprise an electrically conductive oxide that is not titanium oxide, aluminum oxide, or zinc oxide, an electrically conductive nitride, an electrically conductive boride, an electrically conductive carbide, or a non-noble metal that is not titanium, aluminum, or zinc, the method comprising:

exposing the array of nanostructures to a sample containing, or suspected of containing, analyte molecules that undergo specific binding reactions with the specific binding moieties;

irradiating the array of nanostructures with incident radiation; and

measuring a signal produced by the bound analyte molecules.

26. The method of claim 25 , further comprising comparing the measured signal with a database of signals and identifying the analytes in the sample based on the comparison.

27. The method of claim 25 , wherein the surface-enhanced spectroscopy is surface-enhanced infrared absorption spectroscopy, the incident radiation is infrared radiation, and the measured signal is an absorption signal.

Assignments (4)
CONFIRMATORY LICENSE Recorded Feb 6, 2025
From: NORTHWESTERN UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070127/0427 →
CORRECTIVE ASSIGNMENT TO CORRECT THE 1ST ASSIGNOR'S NAME PREVIOUSLY RECORDED AT REEL: 51403 FRAME: 151. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Nov 6, 2024
From: CHANG, ROBERT P. H.; LI, SHIQIANG; GUO, PEIJUN
To: NORTHWESTERN UNIVERSITY
Reel/Frame 070023/0208 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2019
From: NAGAO, TADAAKI; OKANO, KEIKO; CHEN, KAI
To: NATIONAL INSTITUTE OF MATERIAL SCIENCE
Reel/Frame 051354/0589 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2019
From: CHANG, R. P.; LI, SHIQIANG; GUO, PEIJUN
To: NORTHWESTERN UNIVERSITY
Reel/Frame 051403/0151 →
Continuity (2)
Provisional Application 62491445 · Apr 28, 2017
Related Publication 20200141871A1 · May 7, 2020