IP Library Patent Application 13685026
Patent Application
App. No. 13/685,026

Devices and Methods for Reconfigurable Multispot Scanning

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Quick Facts
Patent No.
US None
App. No.
13/685,026
Abstract

An ophthalmic laser probe system comprises an array of optical waveguides and an adapter operable to connect with a laser source. The laser probe system further includes a first reflective surface within the adapter. The first reflective surface is movable about a first axis. The laser probe system also includes a second reflective surface within the adapter. The second reflective surface is movable about a second axis orthogonal to the first axis. The first reflective surface is configured to receive a laser beam emitted from the laser source and redirect the laser beam toward the second reflective surface.

Claims (28)

1 . An ophthalmic laser probe system comprising:

an array of optical waveguides;

an adapter operable to connect with a laser source;

a first reflective surface within the adapter, the first reflective surface movable about a first axis; and

a second reflective surface within the adapter, the second reflective surface movable about a second axis substantially orthogonal to the first axis,

wherein the first reflective surface is configured to receive a laser beam emitted from the laser source and redirect the laser beam toward the second reflective surface.

2 . The laser probe system of claim 1 further including a micro-electromechanical mirror which includes the first reflective surface.

3 . The laser probe system of claim 1 further comprising a gradient index lens within the adapter, the gradient index lens configured to receive the laser beam emitted from the laser source and direct the laser beam toward the first reflective surface.

4 . The laser probe system of claim 1 further comprising a gradient index lens within the adapter, the gradient index lens configured to receive the laser beam reflected from the second reflective surface.

5 . The laser probe system of claim 1 wherein the first reflective surface has a first configuration for directing the laser beam to a first optical waveguide in the array of optical waveguides.

6 . The laser probe system of claim 5 wherein the first reflective surface has a second configuration for directing the laser beam to a second optical waveguide in the array of optical waveguides.

7 . The laser probe system of claim 6 wherein the first reflective surface has a third configuration for directing the laser beam to a third optical waveguide in the array of optical waveguides.

8 . A method of laser photocoagulation comprising:

providing an adapter for connecting a laser source to an array of optical waveguides;

arranging first and second reflective surfaces in the adapter in a first optics configuration;

directing a laser beam from the laser source toward the first reflective surface;

receiving the laser beam reflected from the first reflective surface at the second reflective surface; and

directing the laser beam from the second reflective surface to a first optical waveguide in the array of optical waveguides.

9 . The method of laser photocoagulation of claim 8 further comprising:

moving at least one of the first and second reflective surfaces to form a second optics configuration; and

directing the laser beam to a second optical waveguide in the array of optical waveguides.

10 . The method of laser photocoagulation of claim 9 wherein the step of moving includes actuating a micro-electromechanical mirror to move at least one of the first and second reflective surfaces.

11 . The method of laser photocoagulation of claim 9 wherein the first reflective surface is configured for angular movement about a first axis and the second reflective surface is configured for angular movement about a second axis, substantially orthogonal to the first axis and wherein the step of moving includes moving the first reflective surface about the first axis or moving the second reflective surface about the second axis.

12 . The method of claim 8 wherein at least one of the first and second reflective surfaces is movable between at least two angular stop positions.

13 . The method of claim 8 wherein directing the laser beam from the laser source toward the first reflective surface includes directing the laser beam through a gradient index lens.

14 . The method of claim 8 wherein directing the laser beam from the second reflective surface to the first optical waveguide includes directing the laser beam through a gradient index lens.

15 . The method of claim 8 wherein at least one of the first and second reflective surfaces is movable between at least three angular stop positions.

16 . The method of claim 9 further comprising transmitting the laser beam for a first duration when the first and second reflective surfaces are arranged in the first optics configuration and for a second duration when the first and second reflective surfaces are arranged in the second optics configuration, wherein the first and second durations are different durations.

Assignments (4)
CONFIRMATORY DEED OF ASSIGNMENT EFFECTIVE APRIL 8, 2019 Recorded Jul 23, 2020
From: ALCON RESEARCH, LLC
To: ALCON INC.
Reel/Frame 053293/0484 →
MERGER Recorded Jul 21, 2020
From: ALCON RESEARCH, LTD.
To: ALCON RESEARCH, LLC
Reel/Frame 053273/0022 →
CONFIRMATORY DEED OF ASSIGNMENT EFFECTIVE APRIL 8, 2019 Recorded Dec 10, 2019
From: NOVARTIS AG
To: ALCON INC.
Reel/Frame 051454/0788 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 26, 2012
From: SMITH, RONALD T.; DACQUAY, BRUNO
To: ALCON RESEARCH, LTD.
Reel/Frame 029348/0631 →