IP Library Granted Patent US 10,955,651
Granted Patent B2
US 10,955,651 · App. 16/561,541 · Granted Mar 23, 2021

Unique oblique lighting technique using a brightfield darkfield objective and imaging method relating thereto

Inventors: Matthew C. Putman (Brooklyn, NY); John B. Putman (Celebration, FL); Julie A. Orlando (Copley, OH); Jospeh G. Bulman (Kent, OH)
Assignee: Nanotronics Imaging, Inc.
G02B21/125G02B5/005G02B21/084G02B21/361G02B21/367
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Quick Facts
Patent No.
US 10,955,651
App. No.
16/561,541
Granted
Mar 23, 2021
Kind
B2
Abstract

A process is provided for imaging a surface of a specimen with an imaging system that employs a BD objective having a darkfield channel and a bright field channel, the BD objective having a circumference. The specimen is obliquely illuminated through the darkfield channel with a first arced illuminating light that obliquely illuminates the specimen through a first arc of the circumference. The first arced illuminating light reflecting off of the surface of the specimen is recorded as a first image of the specimen from the first arced illuminating light reflecting off the surface of the specimen, and a processor generates a 3D topography of the specimen by processing the first image through a topographical imaging technique. Imaging apparatus is also provided as are further process steps for other embodiments.

Claims (26)

1. A process for imaging a surface of a specimen with an imaging system that employs a microscope selected from a reflected light microscope and a transmitted light microscope including a BD objective having a darkfield channel and a brightfield channel, the BD objective having a circumference, the process including steps of:

obliquely illuminating the specimen through the darkfield channel with a first arced illuminating light that obliquely illuminates the specimen through a first arc of the circumference, said first arced illuminating light reflecting off of the surface of the specimen, wherein the obliquely illuminating step includes:

providing a light barrier in the darkfield channel, the light barrier having a body that does not permit passage of light therethrough, and

delivering illuminating light into the darkfield channel to the light barrier and through a darkfield opening to provide the arced illuminating light that obliquely illuminates the specimen; and

recording a first image of the specimen from the first arced illuminating light reflecting off the surface of the specimen, wherein the first arced illuminating light reflecting off the surface of the specimen is reflected back through the brightfield channel and recorded as the first image; and

generating a 3D topography of the specimen by processing the first image through a topographical imaging technique, wherein topographical data is generated from the first image recorded in the step of recording the first image.

2. The process of claim 1 , wherein the first arc is from 1 degree or more to 180 degrees or less.

3. The process of claim 2 , wherein the first arc is from 2 degrees or more to 5 degrees or less.

4. The process of claim 1 , further including the step of:

obliquely illuminating the specimen through the darkfield channel with a second arced illuminating light that obliquely illuminates the specimen through a second arc of the circumference different from said first arc, said second arced illuminating light reflecting off of the surface of the specimen; and

recording a second image of the specimen from the second arced illuminating light reflecting off the surface of the specimen, wherein the first arced illuminating light reflecting off the surface of the specimen is reflected back through the brightfield channel and recorded as the second image, and wherein said step of generating a second 3D topography includes processing the second image through the topographical imaging technique.

5. The process of claim 4 , including a processor that controls the oblique illumination of any said oblique illumination step and controls any said image recording step.

6. The process of claim 5 , wherein the processor controls said step of generating the 3D topography.

7. The process of claim 6 , further including the step of:

orthogonally illuminating the specimen through the brightfield channel with brightfield illuminating light, said brightfield illuminating light reflecting off of the surface of the specimen; and

recording a third image of the specimen from the brightfield illuminating light reflected off the surface of the specimen, wherein the brightfield illuminating light reflecting off the surface of the specimen is reflected back through the brightfield channel and recorded as the third image, and wherein said step of generating a third 3D topography includes processing the third image through the topographical imaging technique.

8. The process of claim 1 , wherein the topographical imaging technique is selected from shape from shading techniques, photometric stereo techniques, and Fourier ptychography modulation techniques.

9. An imaging apparatus for imaging a surface of a specimen, the imaging apparatus comprising:

a microscope selected from reflected light microscopes and transmitted light microscopes, the microscope including:

a BD objective having a darkfield channel and a brightfield channel, the BD objective having a circumference;

a light barrier in the darkfield channel, the light barrier having a body that does not permit the passage of light therethrough, and a darkfield opening in the body that does permit passage of light therethrough, such that the body blocks illuminating light traveling through the darkfield channel toward the specimen, and the darkfield opening defines a passage for the illuminating light traveling through the darkfield channel toward the specimen, said darkfield opening thus defining arced illuminating light that obliquely illuminates the specimen through the darkfield channel from a discrete direction through only an arc of the circumference;

means for recording a first image of the specimen from a first arced illuminating light reflecting off the surface of the specimen, wherein the first arced illuminating light reflecting off the surface of the specimen is reflected back through the brightfield channel and is captured by the means for recording the first image; and

a processor generating a 3D topography of the specimen by processing the first image through a topographical imaging technique, wherein topographical data are generated from the first image captured by the means for recording.

10. The imaging apparatus of claim 9 , wherein said arc is from 1 degree or more to 180 degrees or less.

11. The imaging apparatus of claim 10 , wherein said arc is from 2 degrees or more to 5 degrees or less.

12. The imaging apparatus of claim 9 , wherein the processor rotates the light barrier so as to permit placement of said darkfield opening at variable positions about said circumference.

Assignments (2)
SECURITY INTEREST Recorded Nov 30, 2023
From: NANOTRONICS IMAGING, INC.; NANOTRONICS HEALTH LLC; CUBEFABS INC.
To: ORBIMED ROYALTY & CREDIT OPPORTUNITIES IV, LP
Reel/Frame 065726/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2019
From: PUTMAN, MATTHEW C.; PUTMAN, JOHN B.; ORLANDO, JULIE A.; BULMAN, JOSEPH G.
To: NANOTRONICS IMAGING, INC.
Reel/Frame 050286/0546 →
Continuity (3)
Continuation 15518937
Provisional Application 62063564 · Oct 14, 2014
Related Publication 20200026053A1 · Jan 23, 2020