IP Library › Granted Patent US 8,660,637
Granted Patent B2
US 8,660,637 · App. 13/357,112 · Granted Feb 25, 2014

Miniature spectrometer

Inventor: Robert J Crowley (Sudbury, MA)
Assignee: Boston Scientific Scimed, Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,660,637
App. No.
13/357,112
Granted
Feb 25, 2014
Kind
B2
Abstract

A miniaturized spectrometer is adapted for placement within a body near tissue to be characterized. The spectrometer includes a light source and a plurality of light detectors. The light source generates light to illuminate the tissue. The detectors detect optical signals from the illuminated tissue and convert these optical signals to electrical signals. The miniaturized spectrometer can be disposed at the distal end of an interventional device. Optical conduits, such as fiber optic cables or strands, extending the length of the interventional device are not required when the miniature spectrometer is employed.

Claims (40)

1. A tissue spectroscopy device for use with an interventional device, comprising:

a spectrometer module including:

a light source having a distal facing, light-emitting output end;

a plurality of light detectors arranged distally of the light source, wherein an output end face of each of the plurality of light detectors is arranged along an axis transverse to a longitudinal axis of the spectrometer module; and

an optically non-linear member positioned distally of the light source and configured to amplify a frequency of light emitted from the output end;

wherein the spectrometer module is selectively detachable from the interventional device during operation.

2. The tissue spectroscopy device of claim 1 , wherein each of the plurality of light detectors includes a filter thereon so as to produce a plurality of frequency-selective light detectors.

3. The tissue spectroscopy device of claim 2 , wherein each of the frequency-selective light detectors is configured to detect different ranges of light wavelengths.

4. The tissue spectroscopy device of claim 1 , further including:

a ring holder configured to maintain the position of the optically non-linear member relative to the light source.

5. The tissue spectroscopy device of claim 1 , wherein the optically non-linear member is bonded to the output end of the light source.

6. The tissue spectroscopy device of claim 1 , wherein the optically non-linear member comprises a potassium dihydrogen phosphate (KDP) crystal.

7. The tissue spectroscopy device of claim 6 , wherein the KDP crystal is coated with a fluoride layer.

8. The tissue spectroscopy device of claim 1 , further including:

a lens configured to focus light emitted from the output end of the light source.

9. A tissue spectroscopy device, comprising:

an interventional device;

a spectrometer module including:

a light source having a distal facing light emitting output end;

a plurality of light detectors arranged distally of the light source; and

an optically non-linear member positioned distally of the light source and configured to amplify a frequency of light emitted from the output end; and

an optically transparent distal tip, wherein the spectrometer module is configured to be disposed within the optically transparent distal tip;

wherein the optically transparent distal tip includes a fluid channel configured to fluidly communicate a substance from the interventional device through a distal end of the optically transparent distal tip.

10. The tissue spectroscopy device of claim 9 , wherein the spectrometer module is rotatable relative to the optically transparent distal tip so as to produce variations in an optical pathway.

11. The tissue spectroscopy device of claim 9 , wherein the optically transparent distal tip includes a dissolvable material.

12. The tissue spectroscopy device of claim 9 , wherein each of the plurality of light detectors includes a filter thereon so as to produce a plurality of frequency-selective light detectors.

13. The tissue spectroscopy device of claim 12 , wherein each of the frequency-selective light detectors is configured to detect different ranges of light wavelengths.

14. The tissue spectroscopy device of claim 9 , wherein each of the plurality of light detectors is arranged along an axis transverse to a longitudinal axis of the spectroscopy module.

15. The tissue spectroscopy device of claim 9 , wherein the optically transparent distal tip is configured to pierce tissue of a patient.

16. A tissue spectroscopy device configured for insertion within tissue of a patient, comprising:

a spectrometer module including:

a light source having a distal facing light emitting output end;

a plurality of light detectors arranged distally of the light source, wherein an output end face of each of the plurality of light detectors is arranged along an axis transverse to a longitudinal axis of the spectrometer module; and

an optically non-linear member positioned distally of the light source and configured to amplify a frequency of light emitted from the output end; and

an optically transparent distal tip configured to penetrate tissue of a patient.

17. The tissue spectroscopy device of claim 16 , wherein the spectrometer module is configured to be disposed within the optically transparent distal tip.

18. The tissue spectroscopy device of claim 17 , wherein the spectrometer module is rotatable relative to the optically transparent distal tip so as to produce variations in an optical pathway.

19. The tissue spectroscopy device of claim 16 , further comprising:

an interventional device, wherein the optically transparent distal tip includes a fluid channel configured to fluidly communicate a substance from the interventional device through a distal end of the optically transparent distal tip.

20. The tissue spectroscopy device of claim 16 , wherein the optically non-linear member comprises a potassium dihydrogen phosphate (KDP) crystal coated with a fluoride layer.

Continuity (5)
Continuation 10022965 · Dec 13, 2001
Continuation 09478774 · Jan 6, 2000
Continuation 08898604 · Jul 22, 1997
Provisional Application 60033334 · Nov 21, 1996
Related Publication 20130023774A1 · Jan 24, 2013