IP Library Patent Application 18800209
Patent Application
App. No. 18/800,209

CALIBRATING THE POSITION OF THE FOCAL POINT OF A LASER BEAM

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Quick Facts
Patent No.
US None
App. No.
18/800,209
Abstract

In certain embodiments, a system for calibrating the focal point of a laser beam comprises a laser, focusing optics, detector optics, a two-photon absorption (TPA) detector, and a computer. The laser generates the laser beam. The focusing optics direct the focal point of the laser beam along a z-axis towards a zero-surface corresponding to a zero-plane, and receives a portion of the laser beam reflected by the zero-surface. The detector optics receive the reflected portion from the focusing optics, and directs the reflected portion towards a TPA detector. The TPA detector senses the peak intensity of the reflected portion, which indicates a proximity of the focal point to the zero-surface, and generates a signal representing the peak intensity of the reflected portion. The computer determines whether the focal point of the laser beam is calibrated in response to the signal representing the peak intensity.

Claims (47)

1 .- 15 . (canceled)

16 . A method, comprising:

generating a laser beam;

directing, by one or more focusing optics, a focal point of the laser beam towards a zero-surface, the zero-surface corresponding to a zero-plane;

receiving at least a portion of the laser beam reflected by the zero-surface;

receiving, by one or more detector optics, the reflected portion;

directing the reflected portion towards a photon-detecting device;

sensing, by the photon-detecting device, a peak intensity of the reflected portion, the peak intensity indicating a proximity of a position of the focal point of the laser beam to the zero-surface; and

determining, by a computer, whether the position of the focal point of the laser beam is substantially at the zero-surface.

17 . The method of claim 16 , wherein determining, by the computer, whether the position of the focal point of the laser beam is substantially at the zero-surface includes determining whether the peak intensity is at a maximum, the peak intensity being at a maximum corresponding to the position of the focal point of the laser beam being substantially at the zero-surface.

18 . The method of claim 17 , further comprising measuring or calculating the peak intensity, and wherein the measuring or calculating is performed before the receiving at least the portion of the laser beam reflected by the zero-surface.

19 . The method of claim 16 , wherein the zero-surface corresponds to a target-side surface of a patient interface.

20 . The method of claim 19 , further comprising discarding the patient interface after a procedure for one patient is performed with the laser beam passing through the patient interface, the patient interface configured as a one-time-use product.

21 . The method of claim 20 , further comprising obtaining a second patient interface and determining, by the computer, whether the position of the focal point of the laser beam is substantially at the zero-surface when the second patient interface is in a beam path of the laser beam.

22 . The method of claim 21 , further comprising adjusting the focusing optics until a determination is made that the position of the focal point is substantially at the zero-surface, the focusing optics in a different configuration when the position of the focal point is substantially at the zero-surface when the second patient interface is in the beam path of the laser beam than when the patient interface is in the beam path of the laser beam.

23 . The method of claim 16 , wherein the determining, by a computer, whether the position of the focal point of the laser beam is substantially at the zero-surface is further based on a diameter of the reflected portion at the photon-detecting device.

24 . The method of claim 23 , wherein the diameter of the reflected portion being a minimum corresponds to the laser beam being substantially at the zero-surface.

25 . The method of claim 16 , wherein the photon-detecting device includes a two-photon absorption (TPA) detector.

26 . The method of claim 16 , further comprising repeating, by the computer, the following until the peak intensity is a maximum peak intensity:

determining whether the peak intensity is a maximum peak intensity; and

when the peak intensity is not the maximum peak intensity, adjusting the focusing optics to direct the focal point of the laser beam to a different point of a z-axis, the z-axis in line with a direction of the laser beam as it approaches the zero-surface.

27 . The method of claim 26 , further comprising:

adjusting, by the computer, the focusing optics to direct the focal point along a plurality of larger intervals to locate a general region of the zero-surface; and

adjusting the focusing optics to direct the focal point of the laser beam along a plurality of smaller intervals of the general region to determine the location of the zero-surface.

28 . The method of claim 16 , further comprising generating, by the computer, a graph representing the peak intensity of the reflected portion.

29 . A system, comprising:

a laser configured to generate a laser beam;

one or more focusing optics configured to:

direct a focal point of the laser beam towards a zero-surface, the zero-surface corresponding to a zero-plane; and

receive at least a portion of the laser beam reflected by the zero-surface;

one or more detector optics configured to:

receive the reflected portion from the focusing optics; and

direct the reflected portion towards a photon-detecting device;

the photon-detecting device configured to:

sense a peak intensity of the reflected portion, the peak intensity indicating a proximity of a position of the focal point of the laser beam to the zero-surface; and

generate a signal representing the peak intensity of the reflected portion; and

a computer configured to determine whether the position of the focal point of the laser beam is substantially at the zero-surface.

30 . The system of claim 29 , wherein determining whether the position of the focal point of the laser beam is substantially at the zero-surface includes determining whether the peak intensity is at a maximum, the peak intensity being at a maximum corresponding to the position of the focal point of the laser beam being substantially at the zero-surface.

31 . The system of claim 29 , further comprising a patient interface and wherein the zero-surface corresponds to a target-side surface of the patient interface.

32 . The system of claim 31 , wherein the patient interface is a one-time-use product.

33 . The system of claim 31 , wherein the photon-detecting device includes a two-photon absorption (TPA) detector.

34 . The system of claim 31 , the computer further configured to repeat the following until the peak intensity is a maximum peak intensity:

determining whether the peak intensity is a maximum peak intensity; and

when the peak intensity is not the maximum peak intensity, adjusting the focusing optics to direct the focal point of the laser beam to a different point along a z-axis, the z-axis in line with a direction of the laser beam as it approaches the zero-surface.

35 . The system of claim 31 , the computer further configured to:

instruct the focusing optics to direct the focal point along a plurality of larger intervals to locate a general region of the zero-surface; and

instruct the focusing optics to direct the focal point of the laser beam along a plurality of smaller intervals of the general region to determine the location of the zero-surface.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2024
From: GOOS, EVI; FOESEL, MATTHIAS; KITTELMANN, OLAF; GORSCHBOTH, CLAUDIA
To: WAVELIGHT GMBH
Reel/Frame 068353/0777 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2024
From: WAVELIGHT GMBH
To: ALCON INC.
Reel/Frame 068353/0948 →