IP Library Granted Patent US 9,750,640
Granted Patent B2
US 9,750,640 · App. 15/238,615 · Granted Sep 5, 2017

Apparatus for patterned plasma-mediated laser ophthalmic surgery

Inventors: Daniel V. Palanker (Sunnyvale, CA); Mark S. Blumenkranz (Portola Valley, CA); David H. Mordaunt (Los Gatos, CA); Dan E. Andersen (Menlo Park, CA)
Assignee: Optimedica Corporation
A61F9/008A61B18/20A61B90/361A61F2/1602A61F9/009A61F9/0084A61F9/00736A61F9/00754A61F9/00812A61F9/00814A61F9/00825A61F9/00831A61F9/00834A61F9/00836A61F9/00838A61B2018/00577A61F2009/0087A61F2009/00844A61F2009/00851A61F2009/00865A61F2009/00878A61F2009/00882A61F2009/00887A61F2009/00889A61F2009/00895A61F2009/00897
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Quick Facts
Patent No.
US 9,750,640
App. No.
15/238,615
Granted
Sep 5, 2017
Kind
B2
Abstract

A system for ophthalmic surgery on an eye includes: a pulsed laser which produces a treatment beam; an OCT imaging assembly capable of creating a continuous depth profile of the eye; an optical scanning system configured to position a focal zone of the treatment beam to a targeted location in three dimensions in one or more floaters in the posterior pole. The system also includes one or more controllers programmed to automatically scan tissues of the patient's eye with the imaging assembly; identify one or more boundaries of the one or more floaters based at least in part on the image data; iii. identify one or more treatment regions based upon the boundaries; and operate the optical scanning system with the pulsed laser to produce a treatment beam directed in a pattern based on the one or more treatment regions.

Claims (30)

1. A system for surgery on an eye, comprising:

a. a pulsed laser configured to produce a treatment beam which creates dielectric breakdown in a focal zone of the treatment beam within a sclera of the eye;

b. an imaging assembly capable of creating a continuous depth profile of the eye, the profile comprising information regarding the location of the sclera, by detecting remitted illumination light from locations distributed throughout a volume of the sclera, and generating signals based upon the remitted light;

c. an optical scanning system configured to position a focal zone of the treatment beam to a targeted location in three dimensions in the sclera; and

d. one or more controllers operatively coupled to the laser, optical system, and imaging assembly, and programmed to automatically:

i. scan tissues of the patient's eye with the imaging assembly so as to generate image data signals to create a continuous depth profile of the sclera;

ii. identify one or more boundaries of at least a portion of the sclera in the image data;

iii. identify one or more treatment regions based upon the boundaries; and

iv. operate the optical scanning system with the pulsed laser to produce a treatment beam directed in a pattern based on the one or more treatment regions so as to incise the sclera.

2. The system of claim 1 , wherein the pulsed laser is configured to produce a treatment beam having a wavelength between about 800 nm and about 1,100 nm.

3. The system of claim 1 , wherein the pulsed laser is configured to produce a treatment beam having a pulse repetition rate between about 1 kHz and about 200 kHz.

4. The system of claim 1 , wherein the pulsed laser is configured to produce treatment beam pulses having a pulse duration between about 100 femtoseconds and about 10 picoseconds.

5. The system of claim 1 , wherein the imaging assembly comprises a device selected from the group consisting of an interferometer, an optical coherence tomography system, a time domain optical coherence tomography system, a frequency domain optical coherence tomography system, a confocal microscope, and a scanning confocal microscope system.

6. The system of claim 1 , wherein the one or more controllers are further configured to create a pattern of tissue breakdown with the treatment beam to segment one or more of the treatment regions for subsequent removal during cataract surgery.

7. The system of claim 1 , wherein the one or more controllers are programmed to receive input from a user input system and identify the one or more treatment regions based at least in part on the received user input.

8. A system for surgery on an eye, comprising:

a. a pulsed laser configured to produce a treatment beam which creates dielectric breakdown in a focal zone of the treatment beam within one or more tissue structures of a sclera of the eye;

b. a 3-Dimensional optical coherence tomography imaging assembly for imaging the sclera of the eye;

c. an optical scanning system configured to position a focal zone of the treatment beam to a targeted location in three dimensions in the sclera; and

d. one or more controllers operatively coupled to the laser, optical system, and imaging assembly, and programmed to automatically:

i. scan tissues of the patient's eye with the imaging assembly so as to detect remitted illumination light from locations distributed throughout a volume of the sclera and generate image data signals based upon the remitted light to create a continuous depth profile of the sclera;

ii. construct an image of at least a portion of the sclera based at least in part upon the signals from the imaging assembly;

iii. identify one or more boundaries of the sclera;

iv. identify one or more treatment regions based upon the boundaries, the one or more treatment regions defining an incision in the sclera; and

v. operate the optical scanning system with the pulsed laser to produce a treatment beam directed in a pattern based on the treatment region so as to incise the sclera of the eye, the treatment beam having a pulse repetition rate between about 1 kHz and about 1,000 kHz, and a pulse energy between about 1 microjoule and about 30 microjoules.

9. The system of claim 8 , further comprising a user input system.

10. The system of claim 8 , wherein the pulsed laser is configured to produce a treatment beam having a wavelength between about 800 nm and about 1,100 nm.

11. The system of claim 8 , wherein the pulsed laser is configured to produce a treatment beam having a pulse repetition rate between about 1 kHz and about 200 kHz.

12. The system of claim 8 , wherein the pulsed laser is configured to produce treatment beam pulses having a pulse duration between about 100 femtoseconds and about 10 picoseconds.

13. The system of claim 1 , wherein the one or more controllers are programmed to receive input from a user input system and identify the one or more treatment regions based at least in part on the received user input.

Assignments (2)
MERGER Recorded Apr 8, 2020
From: OPTIMEDICA CORPORATION
To: AMO DEVELOPMENT, LLC
Reel/Frame 052348/0110 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 16, 2016
From: BLUMENKRANZ, MARK S.; PALANKER, DANIEL V.; MORDAUNT, DAVID H.; ANDERSEN, DAN E.
To: OPTIMEDICA CORPORATION
Reel/Frame 039459/0634 →
Continuity (7)
Continuation 14949645 · Nov 23, 2015
Continuation 14742663 · Jun 17, 2015
Continuation 14184047 · Feb 19, 2014
Continuation 13588966 · Aug 17, 2012
Continuation 11328970 · Jan 9, 2006
Provisional Application 60643056 · Jan 10, 2005
Related Publication 20160354242A1 · Dec 8, 2016