IP Library Granted Patent US 11,844,726
Granted Patent B2
US 11,844,726 · App. 17/661,336 · Granted Dec 19, 2023

Thermally robust laser probe assembly

Inventors: Christopher Cook (Laguna Niguel, CA); Chenguang Diao (Irvine, CA); Mark Harrison Farley (Laguna Hills, CA); Alireza Mirsepassi (Irvine, CA); Kambiz Parto (Laguna Niguel, CA); Ronald T. Smith (Irvine, CA)
Assignee: Alcon Inc.
A61F9/00821A61B18/22A61B18/24A61B90/30A61F9/008A61F9/00823G02B6/3843G02B6/3851G02B6/3885A61B2018/00779A61B2018/208A61B2018/2025A61B2018/2065A61B2018/2211A61B2018/2255A61B2018/2266A61B2018/2294A61B2090/306A61F2009/00863G02B6/02042G02B6/4206
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Quick Facts
Patent No.
US 11,844,726
App. No.
17/661,336
Granted
Dec 19, 2023
Kind
B2
Abstract

Certain aspects of the present disclosure provide a thermally robust laser probe assembly comprising a cannula, wherein one or more optical fibers extend at least partially through the cannula for transmitting laser light from a laser source to a target location. The probe assembly further comprises a lens housed in the cannula and a protective component press-fitted to the distal end of the cannula, wherein the lens is positioned between the one or more optical fibers and the protective component.

Claims (32)

1. A probe assembly, comprising:

a multi-core optical fiber;

a cannula, wherein the multi-core optical fiber extends at least partially through the cannula for transmitting laser light from a laser source to a target location;

a gradient index (GRIN) lens housed in the cannula, wherein the multi-core optical fiber touches a proximal end of the GRIN lens; and

a cylindrical window press-fitted to a distal end of the cannula, wherein a distal end of the GRIN lens touches a proximal end of the cylindrical window inside the cannula, wherein a distal end of the cylindrical window extends outside the cannula, and wherein the GRIN lens is positioned between the multi-core optical fiber and the cylindrical window.

2. The probe assembly of claim 1 , wherein the cylindrical window comprises a transparent material.

3. The probe assembly of claim 2 , wherein the cylindrical window has optical power.

4. The probe assembly of claim 1 , wherein the cannula is stainless steel.

5. The probe assembly of claim 1 , wherein the proximal end of the cylindrical window comprises a convex surface.

6. The probe assembly of claim 1 , wherein the proximal end of the cylindrical window comprises a spherical segment.

7. The probe assembly of claim 1 , wherein the proximal end of the cylindrical window comprises a molded aspherical segment.

8. The probe assembly of claim 1 , wherein the proximal end of the GRIN lens is curved.

9. The probe assembly of claim 8 , wherein the proximal end of the GRIN lens is spherical.

10. The probe assembly of claim 1 , wherein the distal end of the GRIN lens is curved.

11. The probe assembly of claim 10 , wherein the proximal end of the GRIN lens is spherical.

12. The probe assembly of claim 1 , wherein the cylindrical window is press-fitted such that the cylindrical window reduces leakage of material into the cannula.

13. A surgical system, comprising:

a laser source;

a multi-core optical fiber;

a probe assembly connected to the laser source through the multi-core optical fiber, the probe assembly comprising:

a hand-piece connected to a cannula, the cannula comprising a distal end, wherein

the multi-core optical fiber extends through the hand-piece and at least partially through the cannula for transmitting laser light from the laser source to a target location;

a GRIN lens housed in the cannula, wherein the multi-core optical fiber touches a proximal end of the GRIN lens; and

a cylindrical window press-fitted to the distal end of the cannula, wherein a distal end of the GRIN lens touches a proximal end of the cylindrical window inside the cannula, wherein a distal end of the cylindrical window extends outside the cannula,

and wherein the GRIN lens is positioned between the multi-core optical fiber and the cylindrical window.

14. The surgical system of claim 13 , wherein the cylindrical window comprises a transparent material.

15. The surgical system of claim 14 , wherein the cylindrical window has optical power.

16. The surgical system of claim 13 , wherein the cannula is stainless steel.

17. The surgical system of claim 13 , wherein the proximal end of the cylindrical window comprises a convex surface.

18. The surgical system of claim 13 , wherein the proximal end of the cylindrical window comprises a spherical segment.

19. The surgical system of claim 13 , wherein the proximal end of the cylindrical window comprises a molded aspherical segment.

20. The surgical system of claim 13 , wherein the cylindrical window is press-fitted such that the cylindrical window reduces leakage of material into the cannula.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 28, 2022
From: COOK, CHRISTOPHER; FARLEY, MARK HARRISON; SMITH, RONALD T.; MIRSEPASSI, ALIREZA; DIAO, CHENGUANG
To: ALCON RESEARCH, LTD.
Reel/Frame 060336/0108 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 28, 2022
From: PARTO, KAMBIZ
To: ALCON RESEARCH, LTD.
Reel/Frame 060336/0182 →
MERGER AND CHANGE OF NAME Recorded Jun 28, 2022
From: ALCON RESEARCH, LTD.; ALCON RESEARCH, LLC
To: ALCON RESEARCH, LLC
Reel/Frame 060336/0265 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 28, 2022
From: ALCON RESEARCH, LLC
To: ALCON INC.
Reel/Frame 060336/0299 →
Continuity (6)
Continuation 16218382 · Dec 12, 2018
Provisional Application 62630865 · Feb 15, 2018
Provisional Application 62622299 · Jan 26, 2018
Provisional Application 62598653 · Dec 14, 2017
Provisional Application 62597550 · Dec 12, 2017
Related Publication 20220249287A1 · Aug 11, 2022