IP Library Granted Patent US 7,400,397
Granted Patent B2
US 7,400,397 · App. 11/488,001 · Granted Jul 15, 2008

Optical structures for metal-enhanced sensing

Assignee: University of Maryland, Baltimore
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Quick Facts
Patent No.
US 7,400,397
App. No.
11/488,001
Granted
Jul 15, 2008
Kind
B2
Abstract

The present invention is directed to optical structures and methods detecting the fluorescence of a molecule using metal-enhanced fluorescence. In particular, the invention describes the use of surface plasmon excitation for excitation of fluorophores near the metal surface and the efficient collection of the emission by coupling into the plasmon resonance and directing towards the detector. More particularly, the present invention makes use of the unique directionality of the plasmon induced fluorescence signal. The present invention is directed to optical structures using metal enhanced fluorescence including: an optical fiber having a conductive external coating; a light emitting diode (LED) having a conical shaped depression with curved sides on a front end surface, the curved sides having a conducting coating on the outer surface with respect to the LED.

Claims (32)

1. An optical structure for metal-enhanced fluorescence sensing, comprising:

an optical fiber having a conductive external coating;

fluorophores disposed adjacent to said conductive external coating, wherein said conductive external coating on said optical fiber comprises colloid spheres;

a detector disposed at one end of said optical fiber;

wherein fluorescence emissions of said fluorophores are coupled into said conductive external coating and into said optical fiber via application of surface excitation, and the fluorescence emissions are detected by the detector.

2. An optical structure for metal-enhanced fluorescence sensing according to claim 1 , wherein said fluorescence emissions coupled into said optical fiber are totally internally reflected within said optical fiber in a direction towards said detector, which detects said fluorescence emissions.

3. An optical structure for metal-enhanced fluorescence sensing according to claim 1 , further comprising:

a refractive index boundary being a surface of said optical fiber;

a first and second refractive index on either side of said refractive index boundary;

said optical fiber having said second refractive index, wherein said second refractive index is greater than said first refractive index; and

a stimulating light;

wherein, when an angle of incident of said fluorescence emission on said refractive index boundary is greater than a critical angle (θ c ), said fluorescence emission coupled into said optical fiber is totally internally reflected upon application of the stimulating light.

4. An optical structure for metal-enhanced fluorescence sensing according to claim 1 , wherein said conductive external coating on said optical fiber is a semi-transparent metal.

5. An optical structure for metal-enhanced fluorescence sensing according to claim 1 , wherein said conductive external coating on said optical fiber comprises a noble metal.

6. An optical structure for metal-enhanced fluorescence sensing, comprising:

an optical fiber having a conductive external coating;

fluorophores disposed adjacent to said conductive external coating, wherein said conductive external coating on said optical fiber comprises metallic islands;

a detector disposed at one end of said optical fiber;

wherein fluorescence emissions of said fluorophores are coupled into said conductive external coating and into said optical fiber via application of surface plasmon excitation, and the fluorescence emissions are detected by the detector.

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

applying a conductive coating to a surface of an optical fiber, wherein said conductive coating on said optical fiber comprises colloid spheres;

introducing a solution containing analytes to said conductive coating;

employing surface plasmon excitation to cause an excitation of fluorophores adjacent to said conductive coating;

coupling said fluorescence emissions of said fluorophores into said conductive coating and into said optical fiber, and wherein said fluorescence emissions are detected by a detector.

8. A method of metal-enhanced fluorescence sensing according to claim 7 , wherein said fluorescence emissions are totally internally reflected within said optical fiber in a direction towards the detector.

9. A method of metal-enhanced fluorescence sensing according to claim 7 , wherein said conductive coating on said optical fiber is a semi-transparent metal.

10. A method of metal-enhanced fluorescence sensing according to claim 7 , wherein said conductive coating on said optical fiber comprises a noble metal.

11. A method of metal-enhanced fluorescence sensing according to claim 8 comprising:

applying a conductive coating to a surface of an optical fiber, wherein said conductive coating on said optical fiber comprises metallic islands;

introducing a solution containing analytes to said conductive coating;

employing surface plasmon excitation to cause an excitation of fluorophores adjacent to said conductive coating;

coupling said fluorescence emissions of said fluorophores into said conductive coating and into said optical fiber, and the fluorescence emissions are detected by a detector.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2010
From: UNIVERSITY OF MARYLAND BIOTECHNOLOGY INSTITUTE
To: UNIVERSITY OF MARYLAND, BALTIMORE COUNTY
Reel/Frame 025010/0865 →
CONFIRMATORY LICENSE Recorded May 22, 2008
From: UNIVERSITY OF MARYLAND BALT. PROF. SCHOOL
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 020983/0872 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 3, 2006
From: GEDDES, CHRIS D.
To: UNIVERSITY OF MARYLAND BIOTECHNOLOGY INSTITUTE
Reel/Frame 018371/0454 →
Continuity (4)
Division 1063371500 · Aug 5, 2003
Provisional Application 6040145900 · Aug 6, 2002
Provisional Application 6040146000 · Aug 6, 2002
Related Publication 20060256331A1 · Nov 16, 2006