IP Library Granted Patent US 9,411,103
Granted Patent B2
US 9,411,103 · App. 14/106,221 · Granted Aug 9, 2016

Contact focusing hollow-core fiber microprobes

Inventor: Vasily N. Astratov (Charlotte, NC)
Assignee: The University of North Carolina at Charlotte
G02B6/262A61B18/22G02B1/00G02B6/32A61B2018/2227A61B2018/2266G02B1/005G02B6/02304G02B6/02328G02B6/032G02B6/42G02B6/4206
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Quick Facts
Patent No.
US 9,411,103
App. No.
14/106,221
Granted
Aug 9, 2016
Kind
B2
Abstract

A focusing microprobe system, comprising: one of a single-mode laser radiation source and a few-mode laser radiation source; a coupler coupled to the laser radiation source; one of a single-mode flexible laser radiation delivery system and a few-mode flexible laser radiation delivery system coupled to the coupler; and one or more focusing microlenses coupled to the flexible laser radiation delivery system and arranged in a focusing tip. The coupler comprises a focusing lens. The flexible laser radiation delivery system comprises one of a hollow-core fiber and a flexible waveguide. Optionally, the one or more focusing microlenses are bonded to seal a hollow internal cavity of the flexible laser radiation delivery system. The one or more focusing microlenses comprise one or more conventional lenses or one or more focusing spheres, hemispheres, or cylinders.

Claims (31)

1. A focusing microprobe system, comprising:

one of a single-mode laser radiation source and a few-mode laser radiation source;

a coupler engaging the laser radiation source;

one of a single-mode flexible laser radiation delivery system and a few-mode flexible laser radiation delivery system enaging the coupler; and

a plurality of adjacent focusing microlenses arranged in a linear chain coupled to the flexible laser radiation delivery system and arranged in a focusing tip, wherein one or more of the plurality of adjacent focusing microlenses has a high index of refraction of equal to or greater than 1.7.

2. The focusing microprobe system of claim 1 , wherein the coupler comprises a focusing lens.

3. The focusing microprobe system of claim 1 , wherein the flexible laser radiation delivery system comprises one of a hollow-core fiber and a flexible waveguide.

4. The focusing microprobe system of claim 3 , wherein the hollow-core fiber comprises a microstructured fiber comprising a negative curvature core wall.

5. The focusing microprobe system of claim 3 , wherein the hollow-core fiber comprises a photonic crystal fiber.

6. The focusing microprobe system of claim 1 , wherein one or more of the plurality of adjacent focusing microlenses are bonded to seal a hollow internal cavity of the flexible laser radiation delivery system.

7. The focusing microprobe system of claim 1 , wherein the plurality of adjacent focusing microlenses comprise a plurality of focusing spheres, hemispheres, or cylinders.

8. A method for providing a focusing microprobe system, comprising:

providing one of a single-mode laser radiation source and a few-mode laser radiation source;

providing a coupler engaging the laser radiation source;

providing one of a single-mode flexible laser radiation delivery system and a few-mode flexible laser radiation delivery system engaging the coupler; and

providing a plurality of adjacent focusing microlenses arranged in a linear chain coupled to the flexible laser radiation delivery system and arranged in a focusing tip, wherein one or more of the plurality of adjacent focusing microlenses has a high index of refraction of equal to or greater than 1.7.

9. The focusing microprobe method of claim 8 , wherein the coupler comprises a focusing lens.

10. The focusing microprobe method of claim 8 , wherein the flexible laser radiation delivery system comprises one of a hollow-core fiber and a flexible waveguide.

11. The focusing microprobe method of claim 10 , wherein the hollow-core fiber comprises a microstructured fiber comprising a negative curvature core wall.

12. The focusing microprobe method of claim 10 , wherein the hollow-core fiber comprises a photonic crystal fiber.

13. The focusing microprobe method of claim 8 , wherein one or more of the plurality of adjacent focusing microlenses are bonded to seal a hollow internal cavity of the flexible laser radiation delivery system.

14. The focusing microprobe method of claim 8 , wherein the plurality of adjacent focusing microlenses comprise a plurality of focusing spheres, hemispheres, or cylinders.

15. A focusing microprobe system, comprising:

one of a single-mode laser radiation source and a few-mode laser radiation source;

a coupler engaging the laser radiation source;

one of a single-mode flexible laser radiation delivery system and a few-mode flexible laser radiation delivery system enaging the coupler; and

one or more focusing microlenses coupled to the flexible laser radiation delivery system and arranged in a focusing tip, wherein each of the one or more focusing microlenses has a high index of refraction of equal to or greater than 1.7 such that the focusing microprobe system can be used with the one or more focusing microlenses in contact with an external object.

16. The focusing microprobe system of claim 15 , wherein the coupler comprises a focusing lens.

17. The focusing microprobe system of claim 15 , wherein the flexible laser radiation delivery system comprises one of a hollow-core fiber and a flexible waveguide.

18. The focusing microprobe system of claim 15 , wherein the one or more focusing microlenses are bonded to seal a hollow internal cavity of the flexible laser radiation delivery system.

19. The focusing microprobe system of claim 15 , wherein the one or more focusing microlenses comprise one or more focusing spheres, hemispheres, or cylinders.

Assignments (2)
CONFIRMATORY LICENSE Recorded Oct 1, 2019
From: UNIVERSITY OF NORTH CAROLINA, CHARLOTTE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 050584/0427 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 13, 2013
From: ASTRATOV, VASILY N.
To: UNIVERSITY OF NORTH CAROLINA AT CHARLOTTE
Reel/Frame 031782/0402 →
Continuity (3)
Continuation In Part 13321965 · Nov 22, 2011
Provisional Application 61878285 · Sep 16, 2013
Related Publication 20150316717A1 · Nov 5, 2015