IP Library › Granted Patent US 11,086,272
Granted Patent B2
US 11,086,272 · App. 16/195,459 · Granted Aug 10, 2021

Digital holographic imaging apparatus

Inventor: Satoshi Watanabe (Tokyo, JP)
Assignee: OLYMPUS CORPORATION
G03H1/0443G02B21/00G02B21/0008G03H1/041G03H1/0402G03H1/0486G03H1/0866G03H2001/0428G03H2001/0447G03H2001/0452G03H2223/53
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Quick Facts
Patent No.
US 11,086,272
App. No.
16/195,459
Granted
Aug 10, 2021
Kind
B2
Abstract

An illumination unit emits illumination light to a specimen. An image sensor includes multiple pixels arranged in a two-dimensional manner on a photoelectric surface. The image sensor captures an image of a magnitude distribution of an interference pattern formed due to the illumination light that has interacted with the specimen. A limiter limits at least one from among the spatial frequency of the interference pattern formed on the photoelectric surface and the incident angle of the light input to the photoelectric surface.

Claims (32)

1. A digital holographic imaging apparatus comprising:

a light source structured to emit a coherent illumination light to a specimen;

an image sensor comprising a plurality of pixels arranged on a photoelectric surface thereof in a two-dimensional manner, and structured to capture an image of a magnitude distribution of an interference pattern generated due to the coherent illumination light that has interacted with the specimen; and

a limiter structured to limit at least one from among a spatial frequency of the interference pattern formed by the coherent illumination light on the photoelectric surface and an incident angle at which the coherent illumination light is input to the photoelectric surface, wherein:

the limiter comprises an incident angle limiter structured to limit the incident angle at which the light is input to the photoelectric surface;

the coherent illumination light is a planar wave; and

with an output angle of the coherent illumination light as θ ill , with a wavelength thereof as λ, and with a pixel pitch of the image sensor as p, the incident angle limiter limits a light input with an incident angle θ that satisfies a relation represented by |sin θ−sin θ ill |>λ/2p.

2. The digital holographic imaging apparatus according to claim 1 , wherein the limiter is arranged between the specimen and the photoelectric surface.

3. The digital holographic imaging apparatus according to claim 1 , wherein, with a pixel pitch of the image sensor as p, the limiter is structured to allow a spatial frequency component that is equal to or lower than (½·p) to pass through.

4. The digital holographic imaging apparatus according to claim 1 , wherein the incident angle limiter is formed within the image sensor.

5. The digital holographic imaging apparatus according to claim 1 , wherein the limiter comprises an optical low-pass filter.

6. The digital holographic imaging apparatus according to claim 1 , wherein the limiter is arranged between the specimen and the photoelectric surface in the vicinity of the photoelectric surface.

7. The digital holographic imaging apparatus according to claim 1 , further comprising a computer that is configured to determine a region in which a high-frequency component has occurred on the photoelectric surface due to a light path from the limiter up to the photoelectric surface, and

wherein each pixel value in the region in which the high-frequency components have occurred is interpolated using a pixel in the vicinity of the high-frequency component occurrence region.

8. The digital holographic imaging apparatus according to claim 1 , wherein the limiter and the image sensor are integrally formed.

9. The digital holographic imaging apparatus according to claim 1 , further comprising a sealing structure that seals a space between the limiter and the photoelectric surface.

10. A digital holographic imaging apparatus comprising:

a light source structured to emit a coherent illumination light to a specimen;

an image sensor comprising a plurality of pixels arranged on a photoelectric surface thereof in a two-dimensional manner, and structured to capture an image of a magnitude distribution of an interference pattern generated due to the coherent illumination light that has interacted with the specimen; and

a limiter structured to limit at least one from among a spatial frequency of the interference pattern formed by the coherent illumination light on the photoelectric surface and an incident angle at which the coherent illumination light is input to the photoelectric surface, wherein:

the limiter comprises an incident angle limiter structured to limit the incident angle at which the light is input to the photoelectric surface;

the coherent illumination light is a spherical wave; and

with a wavelength of the coherent illumination light as X, with a pixel pitch of the image sensor as p, with a distance between the photoelectric surface and an output surface of the light source as z ill , and with a distance between the photoelectric surface and a sample surface on which the specimen is positioned as Z obj , the incident angle limiter is structured to limit the light input with an incident angle θ that satisfies a relation represented by |sin θ|>βλ/2p, with β=x ill /(z ill −Z obj ).

11. The digital holographic imaging apparatus according to claim 10 , wherein the limiter is arranged between the specimen and the photoelectric surface.

12. The digital holographic imaging apparatus according to claim 10 , wherein, with a pixel pitch of the image sensor as p, the limiter is structured to allow a spatial frequency component that is equal to or lower than (½·p) to pass through.

13. The digital holographic imaging apparatus according to claim 10 , wherein the incident angle limiter is formed within the image sensor.

14. The digital holographic imaging apparatus according to claim 10 , wherein the limiter comprises an optical low-pass filter.

15. The digital holographic imaging apparatus according to claim 10 , wherein the limiter is arranged between the specimen and the photoelectric surface in the vicinity of the photoelectric surface.

16. The digital holographic imaging apparatus according to claim 10 , further comprising a computer that is configured to determine a region in which a high-frequency component has occurred on the photoelectric surface due to a light path from the limiter up to the photoelectric surface, and

wherein each pixel value in the region in which the high-frequency components have occurred is interpolated using a pixel in the vicinity of the high-frequency component occurrence region.

17. The digital holographic imaging apparatus according to claim 10 , wherein the limiter and the image sensor are integrally formed.

18. The digital holographic imaging apparatus according to claim 10 , further comprising a sealing structure that seals a space between the limiter and the photoelectric surface.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2022
From: OLYMPUS CORPORATION
To: EVIDENT CORPORATION
Reel/Frame 060297/0217 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2018
From: WATANABE, SATOSHI
To: OLYMPUS CORPORATION
Reel/Frame 047547/0470 →
Continuity (2)
Continuation PCTJP2016065614 · May 26, 2016
Related Publication 20190086864A1 · Mar 21, 2019