Claims
- 1. A light scattering spectroscopic system suitable for determining particle characteristics comprising:
an optical probe having at least one illumination optical fiber; and a plurality of collection optical fibers, at least two of the plurality of collection optical fibers being oriented in different planes; a light source; a charge coupled device that senses at least one spectrum of polarized light and unpolarized light, the charge coupled device having charge domain shifting of sensed spectra; and a data processor in communication with the detector system and storing instructions to process the spectrum and determining the particle characteristics.
- 2. The system of claim 1 wherein the light source comprises a mercury lamp.
- 3. The system of claim 2 wherein the light source comprises a xenon lamp.
- 4. The system of claim 1 wherein the data processor further comprises instructions to the subtract a spectrum acquired from a collection optical fiber oriented to collect light polarized parallel to the plane of polarization of the illumination light from a spectrum acquired from a collection optical fiber oriented to collect light polarized perpendicular to the plane of polarization of the illumination light.
- 5. The system of claim 1 wherein optimized broadband illumination and UV excitation light are combined in a single optical path.
- 6. The system of claim 5 wherein optimized broadband illumination and UV excitation light are transmitted through a single illumination optical fiber.
- 7. The system of claim 1 further comprising a CCD controller that shifts a sensed spectra across regions of pixels of the CCD.
- 8. An optical probe comprising
a probe housing having a proximal end and a distal end; a plurality of optical fibers positioned about at least one inner optical fiber that is positioned within said housing, the optical fibers being bound together at the distal end of said optical fibers to form a retainer module with a polished distal surface, said retainer module having an inner fiber support and an outer fiber support; at least one polarizer; an optical shield enclosing the distal end of said probe housing, the optical shield being positioned distal to the optical fiber retainer module to provide a light transmitting enclosure for the optical probe; and the proximal end of the probe housing being connectable to a light source.
- 9. The optical probe of claim 8 wherein the distal end of said optical fibers are bonded in an array and optically polished as a unit and the inner fiber support having a tapered outer surface that is parallel to a tapered inner surface of the outer fiber support.
- 10. The optical probe of claim 8 wherein the retainer module comprises an adhesive that bonds the optical fibers into an array.
- 11. The optical probe of claim 8 wherein the plurality of optical fibers are bound together in a circular array around a longitudinal axis of an inner optic fiber.
- 12. The optical probe of claim 8 wherein the longitudinal axes of the plurality of optical fibers are fixed at an angle of about 2 degrees to about 6 degrees with respect to the longitudinal axis of the central optical fiber.
- 13. The optical probe of claim 12 wherein the angled fibers are directed towards a longitudinal axis of the inner optical fiber.
- 14. A method for light scattering spectroscopy for determining particle characteristics comprising:
providing an optical probe having at least one illumination optical fiber; and a plurality of collection optical fibers, at least two of the plurality of collection optical fibers being oriented in different planes; providing a light source; providing a charge coupled device that senses at least one spectrum of polarized light and unpolarized light, the charge coupled device having charge domain shifting of sensed spectra; processing spectral data with data processor in communication with the detector system and storing instructions to process the spectrum and determining the particle characteristics.
- 15. The method of claim 14 wherein the light source comprises a mercury lamp.
- 16. The method of claim 15 wherein the light source comprises a xenon lamp.
- 17. The method of claim 14 wherein the data processor further comprises instructions to the subtract a spectrum acquired from a collection optical fiber oriented to collect light polarized parallel to the plane of polarization of the illumination light from a spectrum acquired from a collection optical fiber oriented to collect light polarized perpendicular to the plane of polarization of the illumination light.
- 18. The method of claim 14 wherein optimized broadband illumination and UV excitation light are combined in a single optical path.
- 19. The method of claim 18 wherein optimized broadband illumination and UV excitation light are transmitted through a single illumination optical fiber.
- 20. A method of forming optical probe comprising:
providing a probe housing having a proximal end and a distal end; positioning a plurality of optical fibers about at least one inner optical fiber that is positioned within said housing, the optical fibers being bound together at the distal end of said optical fibers to form a retainer module with a polished distal surface, said retainer module having an inner fiber support and an outer fiber support; coupling at least one polarizer to the distal surface; enclosing the distal end of said probe housing with an optical shield, the optical shield being positioned distal to the optical fiber retainer module that provides a light transmitting enclosure for the optical probe the proximal end of the probe husing being connectable to a light source.
- 21. The method probe of claim 20 wherein the distal end of said optical fibers are bonded in an array and optically polished as a unit and the inner fiber support having a tapered outer surface that is parallel to a tapered inner surface of the outer fiber support.
- 22. The method probe of claim 20 wherein the retainer module comprises an adhesive that bonds the optical fibers into an array.
- 23. The method probe of claim 20 wherein the plurality of optical fibers are bound together in a circular array around a longitudinal axis of an inner optic fiber.
- 24. The optical probe of claim 20 wherein the longitudinal axes of the plurality of optical fibers are fixed at an angle of about 2 degrees to about 6 degrees with respect to the longitudinal axis of the central optical fiber.
CROSS REFERENCES TO RELATED APPLICATIONS
[0001] The present application claims the benefit of and priority to U.S. Provisional Application No. 60/349,951, filed Jan. 18, 2002. The entire contents of the above application is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60349951 |
Jan 2002 |
US |