The invention relates to the field of microscope, in particular to a microscope with a fluorescence observation function, and more particularly to a light shielding device used for such a microscope.
Fluorescence microscopes or microscopes with a fluorescence observation function are known in the art. In this type of microscope, a specimen located on a stage of the microscope is irradiated with excitation light from a specified light source when fluorescence observation is performed. The fluorescent substance contained in the specimen is excited by the excitation light to emit fluorescence having a longer wavelength than that of the excitation light, so a fluorescent image of the specimen can be observed through an objective and others of the microscope.
However, the fluorescence is weak light, so if ambient light other than the fluorescence emitted by the specimen also enters the objective of the microscope (in particular, it is easier to receive ambient light when the objective is arranged below the stage), it will mix with the fluorescence and interfere with the fluorescent image of the specimen, making it difficult to obtain a clear fluorescent image with sufficient contrast.
In this regard, it has been proposed in the prior art to equip the microscope with a light shielding device to minimize the ambient light that enters the objective during fluorescence observation of the microscope, so that the contrast of the fluorescent image of the specimen can be improved without needing to operate the microscope in a dark environment. However, the existing light shielding devices still have room for improvement in terms of convenience in use and installation.
The invention aims to overcome one or more defects and/or other problems existing in the prior art.
In a first aspect, the invention relates to a light shielding device for a microscope, the microscope comprising a condenser configured so that transmitting illumination light from a transmitting illumination light source is irradiated from above a stage to a specimen on the stage via the condenser; wherein fluorescent illumination light from a fluorescent illumination light source is irradiated from below the stage to the specimen on the stage; wherein the light shielding device is mounted to a lower end portion of the condenser to at least partially block ambient light entering an objective of the microscope, and wherein the light shielding device comprises a light shield and a mounting mechanism configured to mount the light shield below the lower end portion of the condenser in a manually removable manner.
According to an exemplary configuration of the first aspect, the mounting mechanism comprises a collar mounted around or integrally formed with the lower end portion of the condenser, one or more magnets are fixed on a lower end surface of the collar, and the light shield contains a ferromagnetic material and is attached to the collar by a magnetic attractive force between the magnet(s) and the ferromagnetic material.
According to an exemplary configuration of the first aspect, a depression is provided in an upper surface of the light shield, and when the light shield is attached to the collar, a lower end portion of the collar is received in the depression to define a position of the light shield relative to the collar.
According to an exemplary configuration of the first aspect, the mounting mechanism comprises a collar mounted around or integrally formed with the lower end portion of the condenser, one of a lower end portion of the collar and an upper surface of the light shield is provided with a slot, and the other of the lower end portion of the collar and the upper surface of the light shield is provided with a flange fitted in the slot.
According to an exemplary configuration of the first aspect, the mounting mechanism comprises a collar mounted around or integrally formed with the lower end portion of the condenser, a circular boss is provided on an upper surface of the light shield, one of a lower end portion of the collar and the circular boss is formed with a plurality of radially protruding protrusions arranged circumferentially at intervals, and the other of the lower end portion of the collar and the circular boss is formed with a plurality of L-shaped grooves corresponding to the plurality of protrusions, wherein the plurality of protrusions are respectively received in the plurality of L-shaped grooves to form a bayonet connection between the collar and the circular boss.
According to an exemplary configuration of the first aspect, the mounting mechanism comprises at least two clamping members resiliently biased toward each other to clamp the lower end portion of the condenser, and the light shield is fixed to a lower end surface of one of the at least two clamping members.
According to an exemplary configuration of the first aspect, the light shield is a solid plate, or a closed plate with a through hole.
According to an exemplary configuration of the first aspect, the light shield comprises a through hole and a light shielding portion surrounding the through hole, the through hole being configured to allow all or part of the transmitting illumination light from the condenser to pass through the light shield.
According to an exemplary configuration of the first aspect, a light shield filter is provided at the through hole.
According to an exemplary configuration of the first aspect, the light shield filter is any one of a neutral density filter, a color filter, a bandpass filter, a notch filter, a long pass filter, a spectral filter and a multivariate optical element that can tune transmission at different wavelengths.
According to an exemplary configuration of the first aspect, the light shield filter has different transmissions for light of different wavelengths to match with emission spectral intensity of the transmitting illumination light source; transmission of the light shield filter is inversely proportional to the emission spectral intensity of the transmitting illumination light source; transmission of the light shield filter is lower for a wavelength with a higher emission spectral intensity, and is higher for a wavelength with a lower emission spectral intensity.
According to an exemplary configuration of the first aspect, the light shield filter has an average reflection of not more than 4% for light with a wavelength of 420 nm to 680 nm, an average transmission of not more than 2% for light with a wavelength of 350 nm to 400 nm, and an average transmission between 1.3% and 2% for light with a wavelength of 400 nm to 700 nm.
In a second aspect, the invention relates to a microscope, comprising: a condenser configured so that transmitting illumination light from a transmitting illumination light source is irradiated from above a stage to a specimen on the stage via the condenser, wherein fluorescent illumination light from a fluorescent illumination light source is irradiated from below the stage to the specimen on the stage; and a light shielding device according to the first aspect.
According to an exemplary configuration of the second aspect, a recess is provided on a bottom surface of a base of the microscope to receive the light shield removed from the condenser.
According to an exemplary configuration of the second aspect, the microscope further comprises an illumination light path filter disposed in a light path between the transmitting illumination light source and the specimen on the stage.
According to an exemplary configuration of the second aspect, the illumination light path filter is disposed at a light outlet of the transmitting illumination light source.
According to an exemplary configuration of the second aspect, the illumination light path filter is any one of a neutral density filter, a color filter, a bandpass filter, a notch filter, a long pass filter, a spectral filter and a multivariate optical element that can tune transmission at different wavelengths.
According to an exemplary configuration of the second aspect, the illumination light path filter has different transmissions for light of different wavelengths to match with emission spectral intensity of the transmitting illumination light source; transmission of the illumination light path filter is inversely proportional to the emission spectral intensity of the transmitting illumination light source; transmission of the illumination light path filter is lower for a wavelength with a higher emission spectral intensity, and is higher for a wavelength with a lower emission spectral intensity.
According to an exemplary configuration of the second aspect, the illumination light path filter has an average reflection of not more than 4% for light with a wavelength of 420 nm to 680 nm, an average transmission of not more than 2% for light with a wavelength of 350 nm to 400 nm, and an average transmission between 1.3% and 2% for light with a wavelength of 400 nm to 700 nm.
In a third aspect, the invention relates to a light shielding device for a microscope in which transmitting illumination light from a transmitting illumination light source is irradiated from above a stage to a specimen on the stage and fluorescent illumination light from a fluorescent illumination light source is irradiated from below the stage to the specimen on the stage; wherein the light shielding device comprises a light shield disposed above the specimen on the stage to at least partially block ambient light entering an objective of the microscope, and wherein the light shield comprises a through hole and a light shielding portion surrounding the through hole, the through hole being configured to allow all or part of the transmitting illumination light to pass through the light shield, and a light shield filter is provided at the through hole.
According to one or more exemplary configurations of the third aspect, the light shield filter may have the same features as the light shield filter according to the first aspect as describe above.
According to an exemplary configuration of the third aspect, the microscope comprises a condenser configured so that the transmitting illumination light from the transmitting illumination light source is irradiated from above the stage to the specimen on the stage via the condenser, the light shielding device is mounted to a lower end portion of the condenser and further comprises a mounting mechanism configured to mount the light shield below the lower end portion of the condenser in a manually removable manner.
According to one or more exemplary configurations of the third aspect, the mounting mechanism may have the same features as the mounting mechanism according to the first aspect as describe above.
In a fourth aspect, the invention relates to a microscope, in which transmitting illumination light from a transmitting illumination light source is irradiated from above a stage to a specimen on the stage and fluorescent illumination light from a fluorescent illumination light source is irradiated from below the stage to the specimen on the stage, and which comprises a light shielding device according to the third aspect.
According to an exemplary configuration of the fourth aspect, a recess is provided on a bottom surface of a base of the microscope to receive the light shield removed from above the specimen on the stage.
In a fifth aspect, the invention relates to a microscope, in which transmitting illumination light from a transmitting illumination light source is irradiated from above a stage to a specimen on the stage and fluorescent illumination light from a fluorescent illumination light source is irradiated from below the stage to the specimen on the stage, and which comprises: a light shielding device disposed above and the specimen on the stage to at least partially block ambient light entering an objective of the microscope; and an illumination light path filter disposed in a light path between the transmitting illumination light source and the specimen on the stage.
According to one or more exemplary configurations of the fifth aspect, the illumination light path filter may have the same features as the illumination light path filter according to the second aspect as describe above.
According to an exemplary configuration of the fifth aspect, the microscope further comprises a condenser configured so that the transmitting illumination light from the transmitting illumination light source is irradiated from above the stage to the specimen on the stage via the condenser, the light shielding device is mounted to a lower end portion of the condenser and comprises a light shield and a mounting mechanism configured to mount the light shield below the lower end portion of the condenser in a manually removable manner.
According to one or more exemplary configurations of the fifth aspect, the mounting mechanism may have the same features as the mounting mechanism according to the first aspect as describe above.
According to an exemplary configuration of the fifth aspect, the light shield comprises a through hole and a light shielding portion surrounding the through hole, the through hole being configured to allow all or part of the transmitting illumination light from the condenser to pass through the light shield.
According to an exemplary configuration of the fifth aspect, a recess is provided on a bottom surface of a base of the microscope to receive the light shield removed from the condenser.
The light shielding device for a microscope according to the invention may be mounted to e.g. a lower end portion of the condenser of the microscope to at least partially block ambient light entering the objective, and the light shielding device comprises a light shield and a mounting mechanism configured to mount the light shield below the lower end portion of the condenser in a manually removable manner. In this way, when the microscope is used for fluorescence observation, the light shield featuring a simple structure and easy installation can effectively block the ambient light that would otherwise enter the objective of the microscope, thereby ensuring the contrast and definition of the fluorescent image of the microscope. Moreover, when the microscope is not used for fluorescence observation, the light shield can be quickly and easily removed so as not to hinder other operations (e.g. bright-field observation performed using a transmitting illumination light source) of the microscope. This simplifies the structure of the light shielding device and improves its convenience of use. In addition, according to the invention, a filter, in particular a neutral density filter, may be provided between the transmitting illumination light source and the specimen on the stage of the microscope and/or provided at the light shield. This can not only effectively prevent various ambient light from interfering with the fluorescent image, but also achieve other observation operations and functions of the microscope even without removing the light shield, which greatly improves the practicality and functionality of the microscope.
The above and other advantages, features, and details of the invention can be derived from the exemplary embodiments described below with reference to the drawings, in which:
In the fluorescence observation mode of the microscope 100, in order to prevent ambient light from entering the objective 4 and mixing with the fluorescence emitted from the specimen to reduce the contrast of the fluorescent image, a light shielding device 20 is mounted between the transmitting illumination light source 1 and the specimen on the stage, e.g. to an lower end portion of the condenser 2 to at least partially block the ambient light that would otherwise enter the objective 4. Thus fluorescence observation can be performed with the microscope 100 even if it is not in a dark environment.
According to an embodiment of the invention, the light shielding device 20 comprises a light shield 21 and a mounting mechanism configured to mount the light shield below the lower end portion of the condenser 2 in a manually removable manner. Herein, “mount . . . in a manually removable manner” means that the light shield can be easily and quickly attached to and detached from the condenser 2 by hand without using a tool.
In the embodiment shown in
One or more magnets 27 are fixed to the lower end surface of the collar 22 by e.g. adhesive bonding, and the light shield 21 may be made at least partially by a ferromagnetic material. Thus, the light shield 21 can be conveniently attached to the collar 22 by the magnetic attractive force with the magnets 27, and can be removed easily and quickly from the collar 22 by only overcoming the magnetic attractive force by hand. In order to facilitate the disassembly and assembly of the light shield 21 by hand. A bending portion 28 for hand grasping may be provided at the peripheral edge of the light shield 21. In the illustrated embodiment, six magnets 27 are evenly distributed in the circumferential direction, but the invention is obviously not limited to this. The number of the magnets 27 may vary depending on the weight of the light shield 21 and the applied force desired to detach the light shield 21. In addition, in order to quickly and accurately mount the light shield 21 in place to achieve a good light shielding effect, a depression 24 may be provided in the upper surface of the light shield 21. When the light shield 21 is attached to the collar 22, the lower end portion of the collar 22 is received in the depression 24 in such a manner that the depression 24 can define the position of the light shield 21 relative to the collar 22 through the engagement between the inner side wall of the depression 24 and the outer circumferential wall of the lower end portion of the collar 22.
The height of the light shield 21 or the distance between it and the stage 3 may be set by adjusting the vertical position of the collar 22 on the condenser 2 and/or by adjusting the axial length (i.e. width in vertical direction shown in
In the case where the light shield 21 is provided with the through hole 23, during fluorescence observation, the excitation light that is irradiated upward to the specimen on the stage through the objective 4 will pass through the normally translucent specimen and continue to travel upward to the LED fluorescent powder in the transmitting illumination light source, which will be excited to generate auto-fluorescence. The auto-fluorescence can be irradiated downward and enter the objective 4, thereby disturbing the fluorescent image of the specimen. In order to reduce the adverse effect of the auto-fluorescence, the microscope 100 according to the invention may be provided with a filter (hereinafter referred to as “illumination light path filter”) in a light path between the transmitting illumination light source and the specimen on the stage. For example, an illumination light path filter 9 may be arranged in a light path between the transmitting illumination light source 1 and the condenser 2, as shown in
Such an illumination light path filter can selectively reduce transmission ratio of certain spectrum range, and may be any one of a neutral density filter, a color filter, a bandpass filter, a notch filter, a long pass filter, a spectral filter and a multivariate optical element that can tune transmission at different wavelengths.
Preferably, the illumination light path filter has different transmissions for light of different wavelengths to match with emission spectral intensity of the transmitting illumination light source. Transmission of the illumination light path filter may be inversely proportional to the emission spectral intensity of the transmitting illumination light source. Transmission of the illumination light path filter may be lower for a wavelength with a higher emission spectral intensity, and higher for a wavelength with a lower emission spectral intensity. The maximum transmission may be not higher than 2%, while the minimum transmission may be not lower than 1%.
In view of the fact that visual observation requires light of different wavelengths is tuned at the same ratio after passing through the filter in order to avoid color cast, the illumination light path filter 9 is preferably a neutral density filter. The neutral density filter 9 can attenuate light of different wavelengths passing therethrough in the same proportion/ratio, and thus the excitation light radiated upward through the specimen will be attenuated by the neutral density filter 9, so the auto-fluorescence excited by the attenuated excitation light in the LED of the transmitting illumination light source will be reduced. The auto-fluorescence will be attenuated again by the neutral density filter 9 when it is irradiated downward. Eventually, little or no auto-fluorescence enters the objective 4, thereby helping to improve the contrast of the fluorescent image. In addition to this advantage, the neutral density filter 9 also enables normal use of phase contrast, differential interference contrast (DIC), plastic differential interference contrast (Plas-DIC) and other observation methods of the microscope under transmitting light illumination without user operations (unnecessary to remove the light shield 21), and helps to realize the function of capturing fluorescent and bright field images with one button click as well as the function of switching between fluorescence and bright field observations with one button click.
As an example, the following optical parameters may be adopted for the illumination light path filter 9 that is preferably a neutral density filter: an average reflection of not more than 4% for light with a wavelength of 420 nm to 680 nm, an average transmission of not more than 2% (corresponding to an optical density of not less than 1.7) for light with a wavelength of 350 nm to 400 nm, and an average transmission between 1.3% and 2% (corresponding to an optical density between 1.7 and 1.9) for light with a wavelength of 400 nm to 700 nm.
It is also conceivable for those skilled in the art that an opaque shield may be used in place of the illumination light path filter 9 to completely block the light path (having the same effect as the case where the light shield 21 is a solid thin plate) in consideration of cost saving etc. However, the opaque shield will block not only the upward excitation light and the downward auto-fluorescence, but also the transmitting illumination light radiated downward. Therefore, it is not possible to realize the function of capturing fluorescent and bright field images with one button click and the function of switching between fluorescence and bright field observations with one button click. If a bright field image produced by using transmitting illumination light is desired, the user needs to push away the slider 10, and in this case the convenience of use will be impaired.
In the embodiments shown in
However, a protrusion 33 is provided on the lower end portion of the collar 22 shown in
The upper surface of the light shield 21 shown in
In the embodiment shown in
In the embodiments shown in
It has been described above that the illumination light path filter 9 arranged in the light path between the transmitting illumination light source 1 and the specimen on the stage is used to favorably attenuate the excitation light and auto-fluorescence passing through the through hole 23. As an alternative or additional component to the illumination light path filter 9, as shown in
During transmitting illumination, the transmitting illumination light radiated downward will also be attenuated by the illumination light path filter 9 and/or light shield filter 60 described above. For this, the driving current of e.g. the white light LED in the transmitting illumination light source may be set to maximum the light intensity so as not to impair the bright field effect of the transmitting illumination light source. Besides, optical parameters of the filter(s) may be set by comprehensively taking account of the energy of the existing light sources and acceptable bright field effect, such that the attenuation by the filter(s) would not adversely affect the bright field effect.
A person skilled in the art can appreciate that either or both of the illumination light path filter 9 and the light shield filter 60 may be provided in the microscope system depending on the specific product design and/or application. It would also be appreciated by those skilled in the art that the terms “illumination light path filter 9” and “light shield filter 60” as used herein are just for the purpose of differentiation between the two filters according to their respective positions in the microscope system, and both of them may be any conventional filter in the field of optical components, such as a neutral density filter, a color filter, a bandpass filter, a notch filter, a long pass filter, a spectral filter or a multivariate optical element that can tune transmission at different wavelengths.
According to the configurations of the light shielding devices 20 shown in
The embodiments disclosed above are merely examples of the invention, and all obvious modifications and variations made by those skilled in the art should be considered as falling within the scope of the invention.
Number | Date | Country | Kind |
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202010260711.8 | Apr 2020 | CN | national |
This patent application is a continuation of U.S. patent application Ser. No. 17/221,504 filed on Apr. 2, 2021, which claims the benefit and priority of Chinese Patent Application No. 202010260711.8 filed on Apr. 3, 2020, the disclosures of which are incorporated by reference herein in their entirety as part of the present application.
Number | Date | Country | |
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Parent | 17221504 | Apr 2021 | US |
Child | 17383692 | US |