IP Library Granted Patent US 8,722,428
Granted Patent B2
US 8,722,428 · App. 13/511,718 · Granted May 13, 2014

Metal enhanced fluorescence from metallic nanoburger structures

Inventor: Chris D. Geddes (Bel-Air, MD)
Assignee: University of Maryland, Baltimore County
G01N33/54353G01N33/54346G01N33/553G01N21/554
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Quick Facts
Patent No.
US 8,722,428
App. No.
13/511,718
Granted
May 13, 2014
Kind
B2
Abstract

The present invention provides for metallic nanostructures or nanoburgers comprising a dielectric layer positioned between metallic layers and their use in metal enhanced emissions systems to enhance emissions from fluorophores, including intrinsic and extrinsic; luminophores; bioluminescent species and/or chemiluminescent species. The multilayer nanoburgers exhibit several distinctive properties including significantly enhanced intensity of emissions, decreased lifetime and increased photostability by simply varying the thickness of the dielectric layer while maintaining a constant thickness of the two metallic layers on opposite sides of the dielectric layer.

Claims (21)

1. A detection system, the system comprising:

a substrate, wherein the substrate is fabricated of at least one material selected from the group consisting of glass, a cellulosic material and polymeric material;

a first and second metalized layer of a multiplicity of metallic structures wherein the first metalized layer is positioned on the substrate, wherein the the first and second metalized layers are separated with a metal oxide layer positioned therebetween, wherein the metal oxide layer has a thickness from about 5 nm to 10 nm and wherein the metallic structures have a geometric shape selected from a triangle, square, sphere, oblong, elliptical, or rectangle,;

at least one excitable molecule that is positioned near at least one of the metalized layers of the metallic structures in a range from about 5 nm to 30 nm;

a source of electromagnetic energy for providing excitation energy to excite the molecule; and

a detector for detecting emissions from the excited molecule and/or the metallic structures.

2. The detection system of claim 1 , wherein the first and second metalized layers are fabricated from silver, gold, platinum, aluminum, copper, zinc, chromium, nickel, tin, iron, palladium or composites thereof.

3. The detection system of claim 2 wherein the first and second metalized layers are fabricated from two distinctly different metals.

4. The detection system of claim 1 , wherein the metal oxide layer is selected from the group consisting of SiO 2 , TiO 2 , Fe 2 O 3 , CuO, ZnO, Y 2 O 3 , ZrO 2 , Nb 2 O 5 , MoO 3 , In 2 O 3 , SnO 2 , Sb 2 O 5 , Ta 2 O 5 , WO 3 , PbO, Al 2 O 3 , and now abandoned Bi 2 O 3 .

5. The detection system of claim 1 , wherein the excitable molecule is selected from the group of an intrinsic fluorophore, extrinsic fluorophore, fluorescent dye, and luminophore.

6. A method of metal-enhanced fluorescence sensing, comprising:

providing a substrate, wherein the substrate is fabricated of at least one material selected from the group consisting of glass, a cellulosic material and polymeric material;

providing a first and second metalized layer of metallic structures; wherein the first metalized layer is positioned on the substrate;

providing a metal oxide layer positioned between the first and second metalized layer of metallic structures, wherein the metal oxide layer has a thickness from about 5 nm to 10 nm;

positioning at least one excitable molecule near at least one of the metalized layers of the metallic structures in a range from about 5 nm to 30 nm;

providing a source of electromagnetic energy for providing excitation energy to excite the molecule; and

detecting emissions from the excited molecule and/or the metallic structures.

7. The method of claim 6 , wherein the first and second metalized layers are fabricated from silver, gold, platinum, aluminum, copper, zinc, chromium, nickel, tin, iron, palladium or composites thereof.

8. The method of claim 7 , wherein the wherein the first and second metalized layers are fabricated from two distinctly different metals.

9. The method of claim 6 , wherein the metal oxide layer is selected from the group consisting of SiO 2 , TiO 2 , Fe 2 O 3 , CuO, ZnO, Y 2 O 3 , ZrO 2 , Nb 2 O 5 , MoO 3 , In 2 O 3 , SnO 2 , Sb 2 O 5 , Ta 2 O 5 , WO 3 , PbO, Al 2 O 3 , and Bi 2 O 3 .

10. The method of claim 6 , wherein the excitable molecule is selected from the group of an intrinsic fluorophore, extrinsic fluorophore, fluorescent dye, and luminophore.

Continuity (2)
Provisional Application 61264645 · Nov 25, 2009
Related Publication 20130020503A1 · Jan 24, 2013