Claims
- 1. A sensor comprising:
an optical device; and a thin film supported by said device, said thin film comprising
a matrix; and a plurality of plasmon resonant particles embedded in said matrix.
- 2. The sensor according to claim 1 wherein said thin film is optically coupled to said optical device.
- 3. The sensor according to claim 1 wherein said optical device is selected from the group consisting of a reflective device and a waveguide device.
- 4. The sensor of claim 1 wherein said sensor is selected from the group consisting of a chemical sensor and a thermal sensor.
- 5. The sensor of claim 1 wherein said matrix is selected from the group consisting of a transparent matrix, a Raman-active matrix, a semipermeable matrix, a mesoporous matrix, an inorganic oxide, a polymer, a material selected so as to control the maximum wavlength of the resonance of said resonant particles, and combinations thereof.
- 6. The sensor of claim 1 wherein said nanoparticles are selected from the group consisting of solid metal nanoparticles, metal nanoshells, multilayer metal nanoshells, stamped islands, and combinations thereof.
- 7. The sensor of claim 1 further comprises a spacer layer disposed between said optical device and said thin film.
- 8. The sensor of claim 1 wherein said thin film further comprises a plurality of carbon nanotubes embedded in said matrix.
- 9. A sensor comprising:
an optical sampling member comprising a light directing surface; and an optical enhancing member comprising:
a matrix; and a plurality of resonant nanoparticles embedded in said matrix, wherein said optical enhancing member is disposed so as to modify the optical response of the optical sampling member.
- 10. The sensor of claim 9 wherein said optical enhancing member is adjacent said optical sampling member.
- 11. The sensor of claim 9 further comprising a spacer between said optical enhancing member and said optical sampling member.
- 12. The sensor of claim 9 wherein said light directing surface comprises a reflective surface.
- 13. The sensor of claim 12 wherein said reflective surface comprises the surface of a mirror.
- 14. The sensor of claim 12 wherein said reflective surface comprises the surface of a reflective dielectric thin film stack.
- 15. The sensor of claim 9 wherein said light directive surface comprises a surface of a wavegudie.
- 16. The sensor of claim 15 wherein said light directive surface comprises the surface of a metal layer.
- 17. The sensor of claim 9 wherein said optical enhancing member enhances Raman scattering.
- 18. The sensor of claim 9 wherein said optical enhancing member is permeable to a preselected analyte.
- 19. The sensor of claim 9 wherein said nanoparticles comprise Raman-active molecules adsorbed thereon.
- 20. An optical apparatus comprising:
an optically addressable device; and a nanostructure optically coupled to said optical device, said nanostructure providing enhancement of an optical signal addressing said device.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of priority of U.S. Provisional Application 60/335,670, filed Oct. 24, 2001, entitled “Nanoshell-Based All-Optical Sensors”, and U.S. Provisional Application 60/339,415, filed Oct. 26, 2001, entitled “Light Interaction Between Gold Nanoshells Plasmon Resonance and Planar Optical Waveguides.” Each of these applications is hereby incorporated herein by reference.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] This invention was made with government support under Grant No. ECS-9801707 awarded by the National Science Foundation and Grant No. DAAD19-99-1-0315 awarded by the Army. The United States government has certain rights in the invention.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60335670 |
Oct 2001 |
US |
|
60339415 |
Oct 2001 |
US |
|
60369079 |
Apr 2002 |
US |