IP Library › Granted Patent US 11,454,794
Granted Patent B2
US 11,454,794 · App. 16/913,803 · Granted Sep 27, 2022

Systems and methods for conducting contact-free thickness and refractive-index measurements of intraocular lenses using a self-calibrating dual confocal microscopy

Inventors: Do-Hyun Kim (Clarksville, MD); Ilko Kolev Ilev (Rockville, MD); Robert Harold James (Gaithersburg, MD); Don Calogero (Montgomery Village, MD)
Assignee: The United States of America, as represented by the Secretary, Department of Health and Human Services
G02B21/06G01B11/06G01N21/41G02B21/0032G02B21/02G02B21/18A61F2/16A61F2240/008G01N2021/4126
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,454,794
App. No.
16/913,803
Granted
Sep 27, 2022
Kind
B2
Abstract

Systems and methods for conducting contact-free thickness and refractive-index measurements of transparent objects, such as intraocular lenses using a dual confocal microscopy system are disclosed.

Claims (32)

1. A method for noncontact measurement of an object comprising:

aligning a first confocal microscope with a second confocal microscope along a beam axis;

positioning an object having a first reflective side and an opposite second reflective side between the first confocal microscope and the second confocal microscope;

measuring the first reflective side of the object by the first confocal microscope at a first position and measuring the second reflective side of the object by the second confocal microscope at a second position; and

calibrating the first confocal microscope and the second confocal microscope based on the measurements of the first reflective side and the second reflective side at the first and second positions.

2. The method of claim 1 , further comprising:

establishing a first pathway in operative communication with the first confocal microscope and a second pathway in operative communication with the second confocal microscope;

splitting a light beam into a first divided light beam and a second divided light beam;

launching the first divided light beam through the first pathway and the second divided light beam through the second pathway;

collimating the first divided light beam and the first collimated light beams into a plurality of first collimated light beams and a plurality of second collimated light beams; and

focusing the plurality of second collimated light beams onto the first reflective surface for generating a plurality of first reflected light beams and focusing the plurality of second collimated light beams onto the second reflective surface for generating a plurality of second reflected light beams.

3. The method of claim 2 , further comprising:

detecting the signal generated by the plurality of first reflected light beams and the plurality of second reflected light beams; and

measuring the intensity of each signal for determining the position of the first reflective side and the position of the second reflective side.

4. The method of claim 3 , wherein calibrating the first confocal microscope and the second confocal microscope comprises calibrating a working distance between the first focusing lens and the second focusing lens.

5. The method of claim 4 , wherein the working distance between the first focusing lens and the second focusing lens is calculated using the following equation:

L=F 1 +1 x 20 −x 10 1+ t 0 +F 2   (1)

wherein L is the working distance between the first focusing lens and the second focusing lens; F 1 is the focal length of the first focusing lens; F 2 is the focal length of the second focusing lens; t 0 is known thickness of an object; x 20 is the position of the second focusing lens; and x 10 is the position of the first focusing lens.

6. The method of claim 2 , wherein aligning the first confocal microscope with the second confocal microscope along the beam axis comprises aligning the first pathway with the second pathway such that the plurality of the first and second reflected light beams are aligned relative to the beam axis.

7. The method of claim 5 , further comprising:

calculating working distance using the following equation:

L=F 1 +1 x 2 −x 1 1+ t s +F 2   (2)

wherein L is the working distance; F 1 is the focal length of the first focusing lens, F 2 is the focal length of the second focusing lens; t s is unknown thickness value for the second object having a first side and an opposite second side; x 1 is a position of the first side of the first object; and x 2 is a position of the second side of the second object.

8. : The method of claim 7 , further comprising: comparing the equation (1) and the equation (2) to obtain the following expression for calculating the thickness of the second object: n s =[NA 2 +( 1 −NA 2 )(t s /d) 2 ] ½ .

9. The method of claim 8 , further comprising:

determining a refractive index using the following equation:

n s =[ NA 2 +(1− NA 2 )( t s /C ) 2 ] 1/2   (4)

wherein d is the distance between locations x 0 and x 1 .

10. The method of claim 9 , further comprising:

translating the second object along the beam axis between a first position and a second position relative to the first focusing lens.

11. The method of claim 10 , further comprising:

translating the second object along the beam axis between a third position and a fourth position relative to the second focusing lens.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2020
From: KIM, DO-HYUN; ILEV, ILKO KOLEV; JAMES, ROBERT HAROLD; CALOGERO, DON
To: THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY, DEPARTMENT OF HEALTH AND HUMAN SERVICES
Reel/Frame 053059/0385 →
Continuity (3)
Division 15904916 · Feb 26, 2018
Provisional Application 62467849 · Mar 7, 2017
Related Publication 20200326520A1 · Oct 15, 2020