The present invention relates to a microscope adapted to capture an image of a specimen to be observed by a camera function provided in a portable information terminal and to display the captured image on the display of the portable information terminal, and a microscope optical system used in the microscope.
The applicant has proposed a microscope on which a portable information terminal is mounted. The microscope is adapted to capture an image of a specimen to be observed by a camera function provided in the portable information terminal, such as a smartphone or a tablet, and to display the captured image on the display of the portable information terminal as an observation image (refer to the specification of Japanese Patent Application No. 2016-163997).
Further, as an available optical system for such microscope, there has been known one in which a specimen, i.e., an object to be observed, is directly placed on a surface of the optical system, which surface is closest to the object (refer to, for example, Patent Literature 1).
Patent Literature 1: Specification of U.S. Pat. No. 7,995,272
However, the optical system described in Patent Literature 1 has been posing a problem in that, when observing a specimen of one micron order, such as bacteria, it is difficult to obtain sufficient contrast and resolution of the observation image of the specimen, so that a satisfactory observation image cannot be obtained. Therefore, when the optical system described in Patent Literature 1 is adopted for the foregoing microscope proposed by the present applicant, an image captured by a camera function provided in a portable information terminal (i.e., an observation image) will have insufficient contrast and resolution.
The present invention has been made in view of the circumstances described above, and an object of the invention is to provide an optical system for a microscope that is capable of providing sufficient contrast and resolution of an observation image even when a specimen of one micron order is placed in contact with or adjacent to a surface of the optical system, which surface is closest to the object, and a microscope using the optical system.
To this end an optical system for a microscope in accordance with the present invention is
an optical system for a microscope used in a microscope which captures an image of a specimen to be observed by a camera function provided in a portable information terminal, and displays a captured image on a display of the portable information terminal, including:
a lighting optical system for applying light from a light source to the specimen; and an objective optical system for forming the light that has passed through the specimen into an image,
wherein the objective optical system has an objective lens group, a first image forming lens group, and a second image forming lens group in this order from an object side,
focusing is performed by moving a part or all of the second image forming lens group along an optical axis,
the specimen is disposed in contact with or adjacent to a surface of the objective lens group, the surface being closest to an object, and
conditional expressions (1), (2) and (3) given below are satisfied:
NAL×2≤NAO≤NAL×15 (1)
0.01≤NAL≤0.1 (2)
25≤MO≤100 (3)
Thus, according to the optical system for a microscope in accordance with the present invention, by fixing a lens component of the objective lens group that is closest to an object, a specimen can be observed by placing the specimen in contact with or adjacent to the surface on the object side (i.e., the surface of the optical system that is closest to the object) (for example, placing the specimen directly on the surface that is closest to the object or with cover glass or the like held therebetween).
In addition, in the optical system for a microscope in accordance with the present invention, conditional expressions (1) and (2) given below are required to be satisfied in order to secure proper contrast and resolution.
In the conditional expression (1), if the lower limit value is not reached, then the resolution of an image formed by the objective optical system will be insufficient. On the other hand, if the upper limit value is exceeded, then the number of optical elements (lenses or the like) required for achieving a sufficient resolution will increase, thus inconveniently leading to an extremely complex design. Further, in the conditional expression (2), if the lower limit value is not reached, then the amount of light will be insufficient with resultant poor contrast. On the other hand, if the upper limit value is exceeded, then an excessive amount of light will result, making it difficult to obtain a sufficient resolution.
Further, according to the optical system for a microscope in accordance with the present invention, the conditional expression (3) is required to be satisfied so as to enable a specimen of one micron order to be observed in an appropriate size by using an image pickup device of a regular size.
In the conditional expression (3), if the lower limit value is not reached, then the size of a specimen in an observation image will be too small. On the other hand, if the upper limit value is exceeded, then the size of the specimen in the observation image will be too large.
Thus, the optical system for a microscope in accordance with the present invention enables a captured image (i.e., an observation image) to have a proper size and sufficient contrast and resolution even when a specimen of one micron order is disposed in contact with or adjacent to a surface of an objective optical system, which surface is closest to the object, thus making it possible to image a specimen to be observed while securing a sufficient image quality by a camera function provided in a portable information terminal.
It has been experimentally found that a configuration that satisfies a conditional expression (1-1) given below in place of the conditional expression (1) is further preferred. Further, only one of the upper limit value and the lower limit value of the conditional expression (1-1) may be replaced by the upper limit value or the lower limit value of the conditional expression (1).
NAL×2.8≤NAO≤NAL×13 (1-1)
Further, it has been experimentally found that a configuration that satisfies a conditional expression (2-1) given below in place of the conditional expression (2) is further preferred. In addition, only one of an upper limit value and a lower limit value of the conditional expression (2-1) may be replaced by the upper limit value or the lower limit value of the conditional expression (2).
0.07≤NAL≤0.09 (2-1)
It has been experimentally found that a configuration that satisfies a conditional expression (3-1) given below in place of the conditional expression (3) is further preferred.
30≤MO≤100 (3-1)
Further, according to the optical system for a microscope in accordance with the present invention,
a conditional expression (4) given below is preferably satisfied:
2 mm≤Ed≤3 mm (4)
where Ed denotes an effective diameter of the foregoing lighting optical system.
The conditional expression (4) is a conditional expression for obtaining a further proper contrast. In the conditional expression (4), if the lower limit value is not reached, then it becomes difficult to obtain a sufficient amount of light. On the other hand, if the upper limit value is exceeded, then the amount of light applied to an area outside an observation range will increase, and therefore a flare tends to occur, frequently causing the contrast to deteriorate.
It has been experimentally found that a configuration in which one of conditional expressions (4-1) and (4-2) given below in place of the conditional expression (4) is satisfied is further preferred. In addition, only one of the upper limit value and the lower limit value of the conditional expression (4-1) may be replaced by the upper limit value or the lower limit value of the conditional expression (4) or (4-1), and only one of the upper limit value and lower limit value of the conditional expression (4-2) may be replaced by the upper limit value or the lower limit value of the conditional expression (4) or (4-2).
4 mm≤Ed≤6 mm (4-1)
4.8 mm≤Ed≤5.2 mm (4-2)
Further, in the optical system for a microscope in accordance with the present invention,
a conditional expression (5) given below is preferably satisfied:
5 mm≤D≤50 mm (5)
The conditional expression (5) is a conditional expression for achieving a simpler and smaller structure of a microscope when designing the microscope by applying the foregoing optical system for a microscope. In the conditional expression (5), if the lower limit value is not reached, then the workspace for mounting a specimen cannot be secured. On the other hand, if the upper limit value is exceeded, then the size of the optical system for a microscope (eventually the microscope to be provided with the optical system) will increase and higher adjustment accuracy will be required for an illumination optical axis.
It has been experimentally found that a configuration in which a conditional expression (5-1) given below in place of the conditional expression (5) is satisfied is further preferred. In addition, only one of the upper limit value and the lower limit value of the conditional expression (5-1) may be replaced by the upper limit value or the lower limit value of the conditional expression (5).
28 mm≤D≤35 mm (5-1)
Further, to fulfill the foregoing object, a microscope in accordance with the present invention is
a microscope provided with one of the foregoing optical systems for a microscope, including:
a microscope main body; and a mounting base which is connected to the microscope main body and on which the portable information terminal is mounted,
wherein the microscope main body has a specimen mounting section for mounting the specimen thereon and a light source for applying light to the specimen mounting section,
the lighting optical system of the optical system for a microscope is disposed between the specimen mounting section and the light source,
the objective lens group of the optical system for a microscope is disposed inside the microscope main body such that a surface of the objective lens group, the surface being closest to an object, is exposed at the specimen mounting section,
the first image forming lens group of the optical system for a microscope is disposed at an image side of the objective lens group inside the microscope main body, and
the second image forming lens group of the optical system for a microscope is disposed inside the portable information terminal.
Thus, the microscope in accordance with the present invention can be configured at low cost by disposing the second image forming lens group, which moves at the time of focusing, inside a portable information terminal, thus combining the microscope main body and the objective lens group and the first image forming lens group, which are incorporated in the microscope main body, into a single unit.
Further, in the microscope in accordance with the present invention,
the light source is preferably an LED.
An LED is advantageous in that it can be driven for an extended time on a dry cell or the like with less heat generation. In addition, unlike an electric bulb or the like, the illumination light is white, so that better observation images can be easily obtained.
Referring to
Referring first to
As illustrated in
As illustrated in
As the light source 1c, an LED is used. The LED is adopted as the light source 1c in this case, because the LED is advantageous in that the LED can be driven for an extended time on a dry cell or the like with less heat generation. There is an additional advantage in that, unlike an electric bulb or the like, the illumination light of the LED is white, so that better observation images can be easily obtained. It should be noted that the light source in the present invention is not limited to an LED and alternatively an incandescent lamp, a xenon lamp or the like insofar as the light source can apply sufficient illumination light to a specimen.
The mounting base 2 is configured to be a member shaped like an inverted L-shape by a plate-like mounting plate 2a on which the portable information terminal P is to be placed, and a plate-like supporting leg 2b which supports the mounting plate 2a. In the mounting plate 2a, a circular see-through window 2c is formed, penetrating from the surface on the side where the portable information terminal P is mounted to the surface on the side of the microscope main body 1. The see-through window 2c is formed at a position corresponding to a camera lens P1 (a second image forming lens group (114) of the portable information terminal P placed on the mounting base 2.
The optical system 3 is composed of a lighting optical system 3a for applying the light from the light source 1c to a specimen, and an objective optical system 3b for forming the light that has passed through the specimen into an image.
The lighting optical system 3a is disposed at a position which is inside the housing 1a of the microscope main body 1, which is adjacent to the lower surface of the light source 1c, and which opposes the specimen mounting section 1b.
The objective optical system 3b is composed of an objective lens group 3b1 disposed below the specimen mounting section 1b, a first image forming lens group 3b2 disposed at the position corresponding to the see-through window 2c of the housing 1a, and the camera lens P1 (not illustrated in
The objective lens group 3b1 is disposed such that the surface thereof that is closest to an object is exposed to the specimen mounting section 1b, and a specimen, which is an object to be observed, is placed on the surface directly or adjacently thereto through the intermediary of a cover glass or the like.
The light which is emitted from the light source 1c and which has passed through the specimen passes through the objective lens group 3b1, and is reflected by mirrors m and exits to the outside (specifically, to a position corresponding to the see—through window 2c of the mounting base 2) of the housing 1a (i.e., the microscope main body 1) through the first image forming lens group 3b2.
The light exiting outside the housing 1a is formed into an image by the camera lens P1 (namely, the second image forming optical system that moves at the time of focusing) of the portable information terminal P placed on the mounting base 2. The image (i.e., the observation image of the specimen) is captured by an image pickup device incorporated in the portable information terminal P and displayed as a captured image (i.e., an observation image) on the display of the portable information terminal P.
Thus, in the microscope M, the objective lens group 3b1 and the first image forming lens group 3b2 (i.e., the lens group that does not move) incorporated in the microscope main body 1 are handled as a single unit by using the camera lens P1 mounted on the portable information terminal P as the second image forming lens group that moves at the time of focusing. This eliminates the need for providing the microscope main body 1 with a complex mechanism, thus making it possible to reduce the production cost of the microscope main body 1.
However, in order to make at least one of an objective lens group and a first image forming lens group replaceable, the lens group may be configured to be an independent unit that is detachably installed to a microscope main body.
Referring now to
In the sectional views along the optical axis of each lens group illustrated in
Further, in the aspherical coefficient of the numerical data, E denotes the power of 10. For example, “E-01” denotes the minus one power of 10. Further, each aspherical shape is represented by the expression given below, using each aspherical coefficient described in the numerical data. The coordinate in the direction along an optical axis is denoted by Z, and the coordinate in the direction perpendicular to the optical axis is denoted by Y.
Z=(Y2/r)/[1+{(1+k)−(Y/r)2}1/2]+A2Y4
As described above, the optical system 3 is composed of the lighting optical system 3a disposed on an optical axis Lc and the objective optical system 3b.
Further, as illustrated in
The light emitted from the light source 1c (a light emitting surface L) led to a specimen to be observed (i.e., an object surface O) through the illumination lens group G11. The light that has passed through the specimen is formed the first time into an image on a first image plane IM1 through the objective lens group G12. The image that has been formed on the first image plane IM1 is formed the second time into an image on a second image plane IM2 through the first image forming lens group G13 and the second image forming lens group G14. The second image plane IM2 coincides with the imaging surface of the image pickup device of the portable information terminal P, and the image formed on the surface is displayed on the display of the portable information terminal P.
As illustrated in
The following presents the surface data related to the illumination lens group G11.
As illustrated in
In the objective lens group G12, the lens L24 and the lens L25 are joined. The surface on the object side (a tenth surface) and the surface on the image side (an eleventh surface) of the lens L26 are aspherical surfaces.
The following illustrates the surface data related to the objective lens group G12.
As illustrated in
Further, in the first image forming lens group G13, the lens L31 and the lens L32 are joined.
The following illustrates the surface data related to the first image forming lens group G13.
As indicated by the above numeral data 3, the lens L34, which is a flat lens, is disposed closest to the image side in the first image forming lens group G13 (i.e., between the first image forming lens group G13 and the second image forming lens group G14). Further, the lens L34 is fixed at the time of focusing. Thus, in the objective optical system 3b, the first image forming lens group G13 and the second image forming lens group G14 are configured to be separable as independent optical systems.
However, the lens L34 is not limited to a lens shaped like a flat plate, and may alternatively use a spherical or an aspherical lens according to the shape of the housing 1a (the placement space of the first image forming lens group G13), required optical performance, or the like.
As illustrated in
In the optical system 3, focusing is performed by moving the entire second image forming lens group G14 along the optical axis Lc. More specifically, the focusing is performed by changing the surface interval (6.6 mm) related to the surface number 6 in the numerical data 4, which will be discussed later. The focusing is not limited to the foregoing method, and may alternatively be performed by moving a part of the second image forming lens group G14 along the optical axis.
The following illustrates the surface data related to the second image forming lens group G14.
The following illustrates various data related to the entire optical system 3.
As indicated by the foregoing various data 1, in the optical system 3, the numerical aperture NAL of the lighting optical system 3a is 0.069, the numerical aperture NAO of the objective lens group 3b1 is 0.2, and the image-formation magnification MO of the objective lens group 3b1 is 30, thus satisfying conditional expressions (1), (2) and (3) given below.
NAL×2NAO≤NAL×15 (1)
0.01≤NAL≤0.1 (2)
25≤MO≤100 (3)
Conditional expressions (1) and (2) are conditional expressions for securing proper contrast and resolution. Further, conditional expression (3) is a conditional expression for enabling a specimen of one micron order to be observed in an appropriate size by using an image pickup device of a regular size.
As is obvious from the aberration diagrams of
Further, in the optical system 3, the effective diameter Ed (the value obtained by doubling the effective radius) of the lighting optical system 3a is 4.8 mm, thus satisfying a conditional expression (4) given below.
2 mm≤Ed≤8 mm (4)
The optical system 3 satisfies the conditional expression (4), so that a sufficient amount of light is obtained, and the occurrence of flare is prevented. However, the optical system or a microscope in accordance with the present invention does not necessarily have to satisfy the conditional expression (4) insofar as the conditional expressions (1), (2) and (3) are satisfied.
Further, in the optical system 3, the distance D (i.e., d3 in the foregoing numerical data 1) from the specimen-side end surface of the lighting optical system 3a to the specimen is 35 mm, thus satisfying a conditional expression (5) given below.
5 mm≤D≤50 mm (5)
The optical system 3 satisfies the conditional expression (5), so that the size of the optical system for a microscope (consequently, the microscope in which the optical system is installed) and the required level of adjustment accuracy for an illumination optical axis can be reduced while securing a sufficient workspace for mounting a specimen. However, the optical system for a microscope in accordance with the present invention does not necessarily have to satisfy the conditional expression (5) insofar as the conditional expressions (1), (2) and (3) are satisfied.
Referring to
In the sectional views along the optical axis of each lens group illustrated in
The optical system of the present embodiment is composed of a lighting optical system and an objective optical system that are disposed on an optical axis Lc.
Further, as illustrated in
The light emitted from a light source (a light emitting surface L) is led to a specimen to be observed (namely, an object surface O) through an illumination lens group G21. The light that has passed through the specimen is formed the first time into an image on a first image plane IM1 through the objective lens group G22. The image that has been formed on the first image plane IM1 is formed the second time into an image on a second image plane IM2 through the first image forming lens group G13 and the second image forming lens group G14. The second image plane IM2 coincides with the imaging surface of the image pickup device of a portable information terminal P. and the image formed on the surface is displayed on the display of the portable information terminal P.
As illustrated in
The following presents the surface data related to the illumination lens group G21.
As illustrated in
Further, in the objective lens group G22, the lens L64 and the lens L65 are joined, and the lens L66 and the lens L67 are joined. In addition, the objective lens group G22 is configured such that an oil immersion liquid exists between the lens L61 and the lens L62 at the time of observation.
The following illustrates the surface data related to the objective lens group G22.
The following illustrates various data related to the entire optical system of the present embodiment.
As indicated by the foregoing various data 2, in the optical system of the present embodiment, the numerical aperture NAL of the lighting optical system is 0.093, the numerical aperture NAO of the objective lens group is 1.2, and the image-formation magnification MO of the objective lens group is 100, thus satisfying conditional expressions (1), (2) and (3) given below.
NAL×2≤NAO≤NAL×15 (1)
0.01≤NAL≤0.1 (2)
25≤MO≤100 (3)
Conditional expressions (1) and (2) are conditional expressions for securing proper contrast and resolution. Further, conditional expression (3) is a conditional expression for enabling a specimen of one micron order to be observed in an appropriate size by using an image pickup device of a regular size.
As is obvious from the aberration diagrams of
Further, in the optical system, the effective diameter Ed (the value obtained by doubling the effective radius) of the lighting optical system is 5.2 mm, thus satisfying a conditional expression (4) given below.
2 mm≤Ed≤8 mm (4)
The optical system of the present embodiment satisfies the conditional expression (4), so that a sufficient amount of light is obtained, and the occurrence of flare is prevented.
Further, in the optical system of the present embodiment, the distance D (i.e., d3 in the foregoing numerical data 5) from the end surface of the lighting optical system on the specimen side to the specimen is 28 mm, thus satisfying a conditional expression (5) given below.
5 mm≤D≤50 mm (5)
The optical system of the present embodiment satisfies the conditional expression (5), so that the size of the optical system for a microscope (consequently, the microscope in which the optical system is installed) and the level of adjustment accuracy required for an illumination optical axis can be reduced while securing a sufficient workspace for mounting a specimen.
[Experiment Data]
1 . . . microscope main body; 1a . . . housing; 1b . . . specimen mounting section; 1c . . . light source; 2 . . . mounting base; 2a . . . mounting plate; 2b . . . supporting leg; . . . see-through window; 3 . . . optical system (optical system for a microscope); 3a . . . lighting optical system; 3b . . . objective optical system; 3b1 . . . objective lens group; 3b2 . . . first image forming lens group; IM1 . . . first image plane; IM2 . . . second image plane; L . . . light emitting surface; Lc . . . optical axis; M . . . microscope; m . . . mirror; O . . . object surface; P . . . portable information terminal; and P1 . . . camera lens (second image forming lens group).
Number | Date | Country | Kind |
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JP2017-089717 | Apr 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/022936 | 6/21/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/198387 | 11/1/2018 | WO | A |
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2015-230356 | Dec 2015 | JP |
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2017-037191 | Feb 2017 | JP |
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Number | Date | Country | |
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