IP Library Granted Patent US 11,020,272
Granted Patent B2
US 11,020,272 · App. 16/165,913 · Granted Jun 1, 2021

Laser scanner

Inventor: Ferenc Raksi (Irvine, CA)
Assignee: AMO Development, LLC
A61F9/008G02B26/0875G02B26/101A61F9/009A61F2009/00844A61F2009/00872A61F2009/00897
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Quick Facts
Patent No.
US 11,020,272
App. No.
16/165,913
Granted
Jun 1, 2021
Kind
B2
Abstract

A laser scanner is disclosed. The laser scanner comprises a laser source, a first optical element, and a focusing element. The first optical element is adapted to move along the optical axis of light from the laser source. The focusing element receives laser light from the first optical element and is adapted to move orthogonally to the optical axis. Optionally, the focusing element may include multiple focusing lenses. A first focusing lens may be adapted to move along a first axis which is orthogonal to the optical axis. A second focusing lens may be adapted to move along a second axis which is orthogonal to the optical axis and to the first axis. The laser scanner may also include a second optical element which receives light from the focusing element and is adapted to effectively increase the focal length of the focusing element without increasing its f number.

Claims (46)

1. A laser scanner comprising:

a laser source;

a first optical element adapted to move along an optical axis of light from the laser source;

a focusing element receiving laser light from the first optical element, wherein the focusing element is adapted to move orthogonally to the optical axis; and

a second optical element, which is a block of refractive material having a refractive index greater than one, the second optical element receiving laser light from the focusing element on a first flat surface at a first side of the second optical element and transmitting the laser light out of a second flat surface at a second side of the second optical element which is different from the first side, wherein the second optical element is adapted to effectively increase a focal length of the focusing element without increasing the f number of the focusing element.

2. The laser scanner of claim 1 further comprising a collimating lens optically disposed between the first optical element and the focusing element.

3. The laser scanner of claim 1 , wherein the focusing element comprises a first focusing lens adapted to move along a first axis, the first axis being orthogonal to the optical axis.

4. The laser scanner of claim 3 , wherein the focusing element further comprises a second focusing lens adapted to move along a second axis, the second axis being orthogonal to the first axis and to the optical axis.

5. The laser scanner of claim 1 further comprising a mirror optically disposed between the focusing element and the second optical element, the mirror being adapted to pass light from the laser source and to reflect visible light.

6. The laser scanner claim 1 ,

wherein the first optical element is a scanning lens; and

wherein the focusing element includes first and second focusing lenses, wherein the first focusing lens is adapted to move along a first axis, the first axis being orthogonal to the optical axis, and the second focusing lens is adapted to move along a second axis, the second axis being orthogonal to the first axis and to the optical axis.

7. The laser scanner of claim 6 , further comprising:

a collimating lens disposed between the scanning lens and the first and second focusing lenses; and

a mirror optically disposed between the focusing element and the block of refractive material, the mirror being adapted to pass light from the laser source and to reflect visible light.

8. A method of scanning light from a laser source, the method comprising

directing light from the laser source through an optical system to a focal point, the optical system comprising, in optical alignment, a scanning lens, a focusing element, and an optical element, wherein the optical element is a block of refractive material having a refractive index greater than one and receives the light on a first flat surface at a first side of the optical element and transmits the light out of a second flat surface at a second side of the optical element which is different from the first side and is adapted to effectively increase a focal length of the focusing element without increasing the f number of the focusing element;

moving the scanning lens along a z-axis to adjust a depth of the focal point along the z-axis; and

moving the focusing element in a plane orthogonal to the z-axis to adjust a position of the focal point relative to the z-axis.

9. The method of claim 8 , wherein the focusing element comprises first and second focusing lenses.

10. The method of claim 9 , wherein moving the focusing element includes moving the first focusing lens along a first axis, the first axis being orthogonal to the z-axis.

11. The method of claim 10 , wherein moving the focusing element includes moving the second focusing lens along a second axis, the second axis being orthogonal to the z-axis and to the first axis.

12. The method of claim 8 ,

wherein the optical system further comprises a collimating lens, wherein the focusing element includes first and second focusing lenses, and

wherein the step of moving the focusing element includes:

moving the first focusing lens along a first axis to adjust a position of the focal point relative to the z-axis, the first axis being orthogonal to the z-axis; and

moving the second focusing lens along a second axis to further adjust a position of the focal point relative to the z-axis, the second axis being orthogonal to the z-axis and to the first axis.

13. The laser scanner of claim 1 , further comprising:

a mirror optically disposed between the focusing element and the second optical element, the mirror being adapted to pass light from the laser source and to reflect visible light; and

a view port optically coupled to the mirror to receive the reflected visible light.

14. The system of claim 13 , wherein the first optical element, the focusing element and the second optical element are adapted to direct light from the laser source toward an eye, and wherein the mirror is adapted to reflect an image of the eye.

15. The system of claim 13 , wherein the view port comprises one or more magnifying lenses.

16. A laser scanner comprising:

a laser source adapted to emit laser light along an optical axis;

a first optical element disposed downstream of the laser source and receiving the laser light from the laser source, wherein the first optical element is adapted to move along the optical axis;

a focusing element disposed downstream of the first optical element and receiving laser light from the first optical element, wherein the focusing element has an associated focal point and is adapted to move orthogonally to the optical axis; and

a second optical element, which is a block of refractive material having a refractive index greater than one, the second optical element being disposed downstream of the focusing element and receiving laser light from the focusing element on a first flat surface at a first side of the second optical element and transmitting the laser light out of a second flat surface at a second side of the second optical element which is different from the first side, wherein the second optical element causes the laser light from the focusing element to focus to a point downstream of the focal point associated with the focusing element without increasing the f number of the focusing element.

17. The laser scanner of claim 16 , wherein the focusing element comprises a first focusing lens adapted to move along a first axis orthogonal to the optical axis.

18. The laser scanner of claim 17 , wherein the focusing element further comprises a second focusing lens adapted to move along a second axis orthogonal to the first axis and the optical axis.

19. A method of scanning light from a laser source, the method comprising:

directing laser light from the laser source along an optical axis of an optical system and through a scanning lens and a focusing element of the optical system, the focusing element having an associated focal point;

refracting the laser light from the focusing element with an optical element of the optical system, the optical element being a block of refractive material having a refractive index greater than one and receiving the laser light on a first flat surface at a first side of the optical element and transmitting the light out of a second flat surface at a second side of the optical element which is different from the first side, to focus the laser light from the focusing element onto a focusing point downstream of the focal point associated with the focusing element without increasing the f number of the focusing element;

moving the scanning lens along the optical axis to adjust a depth of the focal point along the optical axis; and

moving the focusing element in a plane orthogonal to the optical axis to adjust a position of the focusing point relative to the optical axis.

20. The method of claim 19 , wherein the focusing element comprises a first focusing lens and moving the focusing element in a plane orthogonal to the optical axis comprises moving the first focusing lens along a first axis orthogonal to the optical axis.

21. The method of claim 20 , wherein the focusing element further comprises a second focusing lens and moving the focusing element in a plane orthogonal to the optical axis comprises moving the second focusing lens along a second axis orthogonal to the optical axis.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 3, 2021
From: RAKSI, FERENC
To: INTRALASE CORP.
Reel/Frame 056118/0509 →
CHANGE OF NAME Recorded May 3, 2021
From: INTRALASE CORP.
To: AMO DEVELOPMENT, LLC
Reel/Frame 056122/0398 →
Continuity (2)
Division 11272571 · Nov 9, 2005
Related Publication 20190053946A1 · Feb 21, 2019
Cited By (1)
US 12,265,207