IP Library › Granted Patent US 12,736,793
Granted Patent B2
US 12,736,793 · App. 18/464,660 · Granted Sep 15, 2026

Microscope system

Inventor: Yoshimasa Suzuki (Kawasaki, JP)
Assignee: Evident Corporation
G02B21/084G02B21/365
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Quick Facts
Patent No.
US 12,736,793
App. No.
18/464,660
Granted
Sep 15, 2026
Kind
B2
Abstract

A microscope system includes an incoherent light source, a detection optical system, and an imager. The incoherent light source is a light source that emits light that is temporally not coherent. In a sample, a plurality of coherent illuminations are performed simultaneously by light emitted from the incoherent light source. The coherent illuminations are illumination by light that is spatially coherent. The direction in which the sample is irradiated with a light beam is different for each coherent illumination. In a pupil plane of the detection optical system, the respective light beams of the coherent illuminations pass through first regions different from each other. Each of the first regions satisfies the following Condition (1). At least one distance among distances between the two adjacent first regions satisfies the following Condition (2). LS<PS ×10 −3   (1) 0.05× T<d   (2)

Claims (149)

1 . A microscope system comprising:

an incoherent light source;

a detection optical system;

an imager; and

a processor,

wherein

the incoherent light source is a light source configured to emit light that is temporally not coherent,

the detection optical system is an optical system configured to form an optical image of a sample,

the imager receives the optical image of the sample formed by the detection optical system,

in the sample, a plurality of coherent illuminations are simultaneously performed by light emitted from the incoherent light source,

the coherent illuminations are illumination by light that is spatially coherent,

a direction in which the sample is irradiated with a light beam is different for each of the coherent illuminations,

in a pupil plane of the detection optical system, the respective light beams of the coherent illuminations pass through first regions different from each other,

the processor:

obtains a wavefront passing through an estimation sample modeling the sample, by feedforward operation for each of the light beams,

calculates an intensity distribution at an imaging position of the detection optical system corresponding to the wavefront, for each of the light beams,

generates a computational image by summing the intensity distributions of the light beams, and

reconstructs the estimation sample by performing an optimization process to reduce a difference between the computational image and a measurement image output from the imager,

each of the first regions satisfies the following Condition (1), and

at least one distance among distances between the two adjacent first regions satisfies the following Condition (2):

LS<PS× 10 −3   (1)

0.05× T<d   (2)

where

LS is an area of the first region (in mm 2 ),

PS is an area of a pupil of the detection optical system (in mm 2 ),

d is a distance between the two adjacent first regions (in mm), and

T is a diameter of the pupil of the detection optical system (in mm).

2 . The microscope system according to claim 1 , wherein half of the first regions satisfy Condition (2).

3 . The microscope system according to claim 1 , wherein the following Condition (3) is satisfied:

∑

i

=

1

n

LSi

<

PS

×

10

-

2

(

3

)

where

LSi is an area of an i-th first region (in mm 2 ), and

n is the number of the first regions.

4 . The microscope system according to claim 1 , wherein

some of the first regions are located within a first annular region, and

the first annular region is a region with a radius of 50% or more in a pupil region of the detection optical system.

5 . The microscope system according to claim 4 , wherein some of the first regions are aligned to form a double circle within the first annular region.

6 . The microscope system according to claim 4 , wherein

some of the first regions are located within a second annular region, and

the second annular region is a region with a radius of 70% to 90% in a pupil region of the detection optical system.

7 . The microscope system according to claim 6 , wherein

some of the first regions are located within a third annular region, and

the third annular region is a region with a radius of 50% to 70% in a pupil region of the detection optical system.

8 . The microscope system according to claim 4 , wherein

some of the first regions are located within a first circular region, and

the first circular region is a region closer to a center than the first annular region in a pupil region of the detection optical system.

9 . The microscope system according to claim 8 , wherein some of the first regions are aligned to form a circle within the first circular region.

10 . The microscope system according to claim 1 , wherein

some of the first regions are located within a second circular region, and

the second circular region is a region with a radius of 50% or less in a pupil region of the detection optical system.

11 . The microscope system according to claim 10 , wherein some of the first regions are aligned to form a circle within the second circular region.

12 . The microscope system according to claim 10 , wherein

some of the first regions are located within a fourth annular region, and

the fourth annular region is a region with a radius of 30% or more to 50% in a pupil region of the detection optical system.

13 . The microscope system according to claim 12 , wherein

some of the first regions are located within a third circular region, and

the third circular region is a region with a radius of 30% or less in a pupil region of the detection optical system.

14 . The microscope system according to claim 1 , wherein when the pupil of the detection optical system is divided into four sector shapes with an equal central angle, any of the first regions is located in each of the four sector shapes.

15 . The microscope system according to claim 1 , wherein some of the first regions are paired across a center of the pupil of the detection optical system.

16 . The microscope system according to claim 1 , wherein each of the first regions satisfies the following Condition (4):

PS× 10 −6 <LS   (4)

17 . The microscope system according to claim 1 , wherein at least one distance among distances between the two adjacent first regions satisfies the Condition (2) and the following Condition (5):

d< 0.5 × T   (5)

18 . The microscope system according to claim 1 , further comprising an illumination optical system,

wherein

in a pupil plane of the illumination optical system, the respective light beams of the coherent illuminations are located in second regions different from each other,

each of the second regions satisfies the following Condition (6), and

at least one distance among distances between the two adjacent second regions satisfies the Condition (2) and the following Condition (7):

LS′<PS′× 10 −3   (6)

0.05× T′<d′   (7)

where

LS′ is an area of the second region (in mm 2 ),

PS′ is an area of a pupil of the illumination optical system (in mm 2 ),

d′ is a distance between the two adjacent second regions (in mm), and

T′ is a diameter of the pupil of the illumination optical system (in mm).

19 . The microscope system according to claim 1 , further comprising an aperture member,

wherein

the respective light beams of the coherent illuminations are emitted from a plurality of independent regions on a predetermined plane,

the predetermined plane is a plane orthogonal to an optical axis of the detection optical system and at a position opposite the detection optical system with respect to the sample,

the aperture member is disposed on the predetermined plane and includes a plurality of independent transmission regions, the transmission regions each being a region that allows light to pass through, and

each of the transmission regions corresponds to one of the first regions.

20 . The microscope system according to claim 1 , wherein

the respective light beams of the coherent illuminations are emitted from a plurality of independent regions on a predetermined plane,

the predetermined plane is a plane orthogonal to an optical axis of the detection optical system and at a position opposite the detection optical system with respect to the sample,

a plurality of the incoherent light sources are disposed on the predetermined plane, and

each of the incoherent light sources corresponds to one of the first regions.

21 . A microscope system comprising:

an incoherent light source;

an illumination optical system;

a detection optical system;

a processor; and

an imager,

wherein:

the incoherent light source is a light source configured to emit light that is temporally not coherent,

the detection optical system is an optical system configured to form an optical image of a sample,

the imager receives the optical image of the sample formed by the detection optical system,

in the sample, a plurality of coherent illuminations are simultaneously performed by light emitted from the incoherent light source,

the coherent illuminations are illumination by light that is spatially coherent,

a direction in which the sample is irradiated with a light beam is different for each of the coherent illuminations,

in a pupil plane of the illumination optical system, the respective light beams of the coherent illuminations are located in second regions different from each other,

the processor:

obtains a wavefront passing through an estimation sample modeling the sample, by feedforward operation for each of the light beams,

calculates an intensity distribution at an imaging position of the detection optical system corresponding to the wavefront, for each of the light beams,

generates a computational image by summing the intensity distributions of the light beams, and

reconstructs the estimation sample by performing an optimization process to reduce a difference between the computational image and a measurement image output from the imager,

each of the second regions satisfies the following Condition (6), and

at least one distance among distances between the two adjacent second regions satisfies the following Condition (7):

LS′<PS′× 10 −3   (6)

0.05× T′<d′   (7)

where

LS′ is an area of the second region (in mm 2 ),

PS′ is an area of a pupil of the illumination optical system (in mm 2 ),

d′ is a distance between the two adjacent second regions (in mm), and

T′ is a diameter of the pupil of the illumination optical system (in mm).

22 . The microscope system according to claim 21 , wherein

the detection optical system includes an objective lens and an imaging lens,

the illumination optical system includes a condenser lens,

the area of the second region is represented by the following Expression (8), and

the diameter of the pupil of the illumination optical system is represented by the following Expression (9):

PS ′=( FLcd×NA ) 2 ×π  (8)

T′=FLcd×NA   (9)

where

FLcd is a focal length of the condenser lens (in mm), and

NA is a numerical aperture of the objective lens.

23 . The microscope system according to claim 21 , further comprising an aperture member,

wherein

the respective light beams are emitted from a plurality of independent regions on a predetermined plane,

the predetermined plane is a plane orthogonal to an optical axis of the detection optical system and at a position opposite the detection optical system with respect to the sample,

the aperture member is disposed on the predetermined plane and includes a plurality of independent transmission regions, the transmission regions each being a region that allows light to pass through, and

each of the transmission regions corresponds to one of the second regions.

24 . The microscope system according to claim 21 , wherein

the respective light beams are emitted from a plurality of independent regions on a predetermined plane,

the predetermined plane is a plane orthogonal to an optical axis of the detection optical system and at a position opposite the detection optical system with respect to the sample,

a plurality of the incoherent light sources are disposed on the predetermined plane, and

each of the incoherent light sources corresponds to one of the second regions.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 11, 2023
From: SUZUKI, YOSHIMASA
To: EVIDENT CORPORATION
Reel/Frame 064861/0213 →
Continuity (2)
Continuation PCTJP2021011097 · Mar 18, 2021
Related Publication 20230418038A1 · Dec 28, 2023
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