Claims
- 1. A method of detecting molecules of organic gases employing at least one fluorescent sensitive material, comprising the steps of:
excitation of said at least one fluorescent sensitive material with at least one light source generating at the wavelengths required for efficient stimulating the fluorescence of said sensitive material, collecting the fluorescent light signal from said fluorescent sensitive material with a light collecting system detecting and processing the fluorescent light signal from said sensitive material at the wavelength maximizing the said fluorescent signal, wherein said at least one fluorescent sensitive material comprises a thin film of molecular aggregates and said aggregates are chosen such to maximize the influence of the molecules of the organic gases under detection on said fluorescence light signal from said sensitive material.
- 2. A method of detecting molecules of organic gases of claim 1, wherein said molecular aggregates are chosen such that the interaction between them results in depression of the fluorescence yield of said sensitive material prior its interaction with the molecules of organic gases and interaction between the molecule of organic gases and said molecular aggregate destroys the aggregated structure “releasing” said aggregate and returning it back to the monomer-like state resulting in strong enhancement of the florescence quantum yield, shift of the fluorescent spectrum in the direction of shorter wavelengths and appearance of new bands corresponding to monomer-like aggregate molecules.
- 4. A method of detecting molecules of organic gases of claim 1, wherein said sensitive fluorescent material is a thin film of TPP or Zn-TPP aggregates used for sorption of organic gases such as benzene, alcohol, chloroform, basic vapors including dimethyl methylphosphonate (DMMP) that is a simulant of Sarin, Soman and other chemical warfare agents having basic properties.
- 5. A method of detecting molecules of organic gases of claim 1, wherein said at least one fluorescent sensitive material is incorporated into a waveguiding system delivering light from said at least one light source and effectively collecting the signal light from said fluorescent sensitive material.
- 6. A method of detecting molecules of organic gases of claim 5, wherein at least one section of said waveguiding system is made from said fluorescent sensitive material operating as a wavegude at wavelengths of said excitation light and said fluorescent signal light.
- 7. A method of detecting molecules of organic gases of claim 5, wherein said waveguiding system incorporates at least one optical fiber having at least one sharp U-bend and said fluorescent sensitive material having refractive index not less than the refractive index of the medium in which molecules of the basis gas under detection are present is deposited on outer surface of the fiber in the region of its said U-bend.
- 8. A method of detecting molecules of organic gases of claim 7, wherein cladding of said fiber in said outer region of U-bend is removed before depositing said fluorescent sensitive material improving excitation of the fluorescent sensitive materials and collecting the fluorescent signal light.
- 9. A method of detecting molecules of organic gases of claim 5, wherein said waveguiding system incorporates at least one optical fiber having at least one section with double tapered geometry characterized by decreasing and then increasing fiber diameter, said fluorescent sensitive material having refractive index not less than the refractive index of the medium in which molecules of the organic gas under detection are present is deposited on the surface of said fiber in its said double tapered region.
- 10. A method of detecting molecules of organic gases of claim 9, wherein cladding of said fiber in said double tapered region is removed before depositing said fluorescent sensitive material improving excitation of the fluorescent sensitive materials and collecting the fluorescent signal light.
Government Interests
[0001] This invention was made with Government support under Grant N00014-00-M-0140 awarded by the BMDO. The Government has certain rights in this invention.