Detector Device for Detection of a Spectral Portion for a Microscope
20170350763 · 2017-12-07
Inventors
Cpc classification
G02B27/126
PHYSICS
G02B27/1013
PHYSICS
G01J3/0208
PHYSICS
G01J3/36
PHYSICS
G02B21/16
PHYSICS
G01J3/021
PHYSICS
G02B21/361
PHYSICS
G02B21/0064
PHYSICS
International classification
G01J3/44
PHYSICS
G02B21/16
PHYSICS
G02B21/36
PHYSICS
G02B27/00
PHYSICS
Abstract
A detection device (113) for a microscope comprises a dispersive element (211) in the beam path (290) of light and a selection element (212). The selection element (212) separates a beam path (291) of a spectral portion of the light from the beam path (290) of the light. The detector device (113) furthermore comprises a focusing optical unit (213) configured to focus the beam path (291) of the spectral portion of the light onto a sensor (214). By way of example, the microscope may be a confocal microscope.
Claims
1-14. (canceled)
15. A detector device for a microscope, said detector device being configured for selective detection of a spectral portion of light from a specimen region of the microscope, wherein the detector device comprises: a dispersive element in the beam path of the light; a selection element, wherein the selection element is arranged downstream of the dispersive element in a beam path of the light in such a way that it separates a beam path of the spectral portion of the light from the beam path of the light; a focusing optical unit arranged downstream of the selection element in the beam path of the spectral portion of the light, wherein the focusing optical unit is configured to focus the beam path of the spectral portion of the light onto a sensor; and the sensor arranged downstream of the focusing optical unit in the beam path of the spectral portion of the light.
16. The detector device as claimed in claim 15, wherein the focusing optical unit comprises a transverse chromatic aberration correction element arranged in the beam path of the spectral portion of the light, wherein the selection element comprises at least one wedge-shaped prism, wherein the transverse chromatic aberration correction element comprises at least one wedge-shaped prism, and wherein the selection element and the transverse chromatic aberration correction element are arranged relative to one another in such a way that a transverse chromatic aberration of the at least one wedge-shaped prism of the selection element counteracts a further transverse chromatic aberration of the at least one wedge-shaped prism of the transverse chromatic aberration correction element.
17. The detector device as claimed in claim 16, wherein the at least one wedge-shaped prism of the selection element and the at least one wedge-shaped prism of the transverse chromatic aberration correction element are arranged complementary to one another with respect to the beam path of the spectral portion of the light.
18. The detector device as claimed in claim 17, wherein a material of the at least one prism of the selection element corresponds to a material of the at least one prism of the transverse chromatic aberration correction element, and/or wherein a wedge angle of the at least one prism of the selection element corresponds to a wedge angle of the at least one prism of the transverse chromatic aberration correction element.
19. The detector device as claimed in claim 16, wherein the detector device furthermore comprises a drive unit configured to position the selection element in a displaceable manner in the beam path of the light and furthermore configured to position the transverse chromatic aberration correction element in a displaceable manner in the beam path of the spectral portion of the light, and wherein the drive unit is configured to position the selection element and the transverse chromatic aberration correction element in a coupled manner.
20. The detector device as claimed in claim 15, wherein the focusing optical unit comprises a collecting element arranged upstream of the sensor in the beam path of the spectral portion of the light, wherein the dispersive element is at least one of a prism and a grating, wherein the collecting element is at least one of a prism and a grating, wherein the dispersive element provides a spectral decomposition of the beam path of the light, and wherein the collecting element provides a spectral unification of the beam path of the spectral portion of the light.
21. The detector device as claimed in claim 20, wherein the detector device furthermore comprises an imaging optics arranged at least in part between the dispersive element and the collecting element in the beam path of the light and in the beam path of the spectral portion of the light, and wherein the imaging optics is configured to obtain optical imaging of the dispersive element onto the collecting element.
22. The detector device as claimed in claim 15, wherein the focusing optical unit comprises an astigmatism correction unit configured to reduce an astigmatic aberration of the beam path of the spectral portion of the light.
23. The detector device as claimed in claim 15, wherein the selection element is arranged in the beam path of the light in such a way that it separates a beam path of the further spectral portion of the light from the beam path of the light, wherein the detector device furthermore comprises a further focusing optical unit arranged downstream of the selection element in the beam path of the further spectral portion of the light, wherein the further focusing optical unit is configured to focus the beam path of the further spectral portion of the light onto a further sensor, and wherein the further sensor is arranged downstream of the further focusing optical unit in the beam path of the further spectral portion of the light.
24. The detector device as claimed in claim 15, wherein the sensor has a sensitive area of less than 0.1 mm2, preferably of less than 0.05 mm2, particularly preferably of less than 0.02 mm2, and wherein the focusing optical unit is configured to focus the beam path of the spectral portion of the light onto the sensitive area of the sensor.
25. The detector device as claimed in claim 15, wherein the sensor comprises a plurality of pixels.
26. The detector device as claimed in claim 15, wherein the selection element comprises at least one angled mirror.
27. A microscope comprising a detector device as claimed in claim 15.
28. The microscope as claimed in claim 27, wherein the microscope is a confocal microscope.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0037] The above-described properties, features and advantages of this invention and the way in which they are achieved will become clearer and more clearly understood in association with the following description of the exemplary embodiments which are explained in greater detail in association with the drawings.
[0038]
[0039]
[0040]
[0041]
[0042]
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[0044]
[0045]
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[0047]
[0048] The present invention is explained in greater detail below on the basis of preferred embodiments with reference to the drawings. In the figures, identical reference signs denote identical or similar elements. The figures are schematic representations of different embodiments of the invention. Elements depicted in the figures are not necessarily depicted true to scale. Rather, the different elements illustrated in the figures are reproduced in such a way that their function and general purpose become comprehensible to the person skilled in the art. Connections and couplings between functional units and elements as depicted in the figures may also be implemented as indirect connection or coupling. A connection or coupling may be implemented in a wired or wireless manner. Functional units may be implemented as hardware, software or a combination of hardware and software.
[0049] Below, a detector device for selecting one or more spectral portions is illustrated. By way of example, the selection is carried out by means of a wedge-shaped prism and carried out for focusing the spectral portion deflected by means of the wedge-shaped prism onto a comparatively sensitive sensor having a comparatively small sensitive area. These techniques permit focusing onto a comparatively small area after a spatially spectral split and permit a suitable optical manipulation of the beam path.
[0050] The detection device comprises means for spectral decomposition or a dispersive element. By way of example, the dispersive element may comprise a prism and/or a grating. The detection device further comprises a selection element which, for example, comprises one or more wedge-shaped prism pairs. The selection element serves for the spectral selection of the spectral portion. Further, the detection device comprises a focusing optical unit for focusing the beam path of the spectral portion on the sensor. By way of example, the focusing optical unit comprises means for spectral unification as a collecting element. By way of example, the collecting element may comprise a prism and/or a grating. The detection device comprises one or more sensors, depending on how many spectral portions are selected.
[0051] Below, reference is made, in particular, to a confocal microscope 100; cf.
[0052] It is clear from
[0053] The illumination device 111 produces a beam path 290 of the light. The specimen 112 is arranged in the beam path 290 of the light. The specimen 112 reflects light and/or fluoresces. The corresponding beam path 290 of the light is fed in turn to the detector device 113 downstream of the specimen 112. The detector device 113 comprises a sensor (not shown in
[0054]
[0055] By way of example, the dispersive element 211 may be at least one of a prism and a grating. The dispersive element 211 provides a spectral decomposition of the beam path 290 of the light. As a result, there is a spatial spread of the various spectral components. The etendue increases. The selection element 212 is arranged downstream of the dispersive element 211 in the beam path 290 of the light in such a way that it separates the beam path 291 corresponding to the specific spectral portion of the light from the beam path 290 of the light. Separating the beam path 291 of the spectral portion may mean: splitting off the beam path 291 of the spectral portion such that the beam path 291 of the spectral portion has well-defined edges with a vanishing intensity. Then, the beam path 291 of the spectral portion may be optically modified and, in particular, focused separately.
[0056] The selection element 212 may be configured in very different ways. By way of example, the selection element 212 may comprise an angled mirror/roof mirror (not shown in
[0057] By way of example, the selection element 212 could also comprise at least one wedge-shaped prism; by way of example, the selection element 212 may comprise a pair of wedge-shaped prisms. By way of example, one of the two wedge-shaped prisms may protrude into the beam path 290 of the light—depending on the position of the pair of wedge-shaped prisms perpendicular to the beam path—and thus select the spectral portion of the light. Here, the spectral portion is selected in a manner analogous to the above-described implementation using a angled mirror.
[0058] The focusing optical unit 213 is configured to focus the beam path 291 of the specific spectral portion of the light onto the sensor 214. To this end, the focusing optical unit 213 focuses the beam path of 291 onto a comparatively small-area focus, wherein the focus is positioned on a sensitive area of the sensor 214. On account of the small-area focus, it is possible for the sensor 214 to have a comparatively small detection area. By way of example, the sensor 214 may have a detection area of less than 0.1 mm.sup.2. Preferably, the sensor 214 has a detection area of less than 0.05 mm.sup.2. Particularly preferably, the sensor 214 has a detection area of less than 0.02 mm.sup.2. However, the sensor may also have a larger detection area, e.g. larger than 0.1 mm.sup.2 or larger than 10 mm.sup.2 or larger than 100 mm.sup.2. The sensor may be a pixelated sensor. Thus, the focusing optical unit 213 is configured to focus the beam path 291 of the specific spectral portion of the light onto the detection area of the sensor 214.
[0059] This may be effected in very different ways. By way of example, the focusing optical unit 213 may comprise a number of mirrors. The mirrors may have a suitable focal length such that focusing is achieved. In particular, a particularly achromatic implementation may be achieved as a result thereof, as mirrors are used instead of lenses. On the other hand, a structure may be comparatively complex and a large number of elements, such as e.g. deflection mirrors, may be necessary.
[0060]
[0061] As explained above, the dispersive element 211 provides a spectral decomposition of the beam path 290 of the light. The collecting element 312 may accordingly bring about spectral unification of the beam path 291 of the spectral portion of the light. The collecting element 312 may be implemented e.g. as prism and/or grating—in accordance with the dispersive element 211.
[0062] The focusing optical unit 213 furthermore comprises the astigmatism correction unit 313. The astigmatism correction unit 313 is configured to reduce an astigmatic aberration of the beam path 291 of the spectral portion of the light. To this end, the astigmatism correction unit 313 may comprise e.g. a tilted plane parallel plate and/or decentered lenses. The fundamentals of corresponding astigmatism correction units are known to a person skilled in the art, and so no further details need to be provided here.
[0063]
[0064] This selection is illustrated in
[0065] By way of example, the selection element 212 could comprise further prisms (not shown in
[0066] In principle, it is possible to provide the sensor 214 for the beam path 291 of the portion 401 of the light or for the beam path 292 of the further spectral portion 402 of the light. It would also be possible to provide a plurality of sensors 214, namely respectively one for each beam path 291, 292 of the spectral portions 401, 402. Referring to
[0067] As explained above, the beam path 291 of the spectral portion 401 of the light passes through the wedge-shaped prism 212-1 of the selection element 212. This results in the transverse chromatic aberration for the beam path 291 of the spectral portion 401 of the light. The transverse chromatic aberration correction element 311 is provided for compensating the transverse chromatic aberration; see
[0068] It is clear from
[0069] Thus, by means of the above-described techniques, it is possible to flexibly select the spectral portion 401 selected by the selection element 212. In order to obtain the transverse chromatic aberration being reduced to the best possible extent for the various positions of the selection element 212 at the same time, the drive unit is configured to position the selection element 212 and the transverse chromatic aberration correction element 311 in a coupled manner. By way of example, if the upper prism 212-1 of the selection element 212 is repositioned by a certain distance, the upper prism 311-1 of the transverse chromatic aberration correction element 311 may be repositioned by the same certain distance.
[0070]
[0071] The light is obtained through a pinhole 701. A lens 702 is provided for parallelizing the beam path 290. Then, the beam path 290 of the light passes through the dispersive element 211 which, in the scenario of
[0072] It is clear from
[0073]
[0074] The spectral decomposition of the beam paths 291, 292 is compensated by the collecting element 312. In
[0075] The detector device 113 furthermore comprises an imaging optics in the form of two lenses 703, 704. The lenses 703, 704 are arranged in the beam path 290 of the light and in the beam path 291 of the spectral portion 401 of the light between the dispersive element 211 and the collecting element 312 and bring about optical imaging of the dispersive element 211 onto the collecting element 312. As a result, there can be particularly good spectral unification of the beam paths 291, 292.
[0076] In particular, the selection element 212 may be situated in a focal plane of the imaging optics 113. As a result, a particularly high spectral resolution may be achieved. The beam path 290 of the light is split in a line-shaped manner in the focal plane.
[0077] Furthermore, the astigmatism correction unit 313 is provided upstream of the sensor 214. The astigmatism correction unit 313 is depicted in a simplified manner in
[0078] Three collecting elements 312 and three astigmatism correction units 313 and three sensors 214 are respectively provided in the scenario of
[0079] The sensor 214 may be configured in very different ways. The sensor may have an unstructured sensitive area. Alternatively, the sensor may also comprise a ring structure. Then, the sensor 214 itself may serve as an electronic pinhole. The electronic pinhole may be matched to the respective spectral portion 401, 402 which is intended to be detected. As a result, each sensor 214 may form a dedicated pinhole. The stop effect of the pinhole 701 is obtained by the structuring of the sensor 214. Then, provision of the pinhole 701 may be dispensed with.
[0080]
[0081]
[0082]
[0083]
[0084] The selection element 212, which is configured as a angled mirror, is disposed downstream of the prismatic element 290 in the beam path 290 of the light. It is clear from
[0085] The angled mirror of the selection element 212 reflects the beam path 291 of the spectral portion 401 of the light (the beam path 291 of the spectral portion 401 of the light is not depicted in
[0086] The beam path 291 of the spectral portion 401 of the light is depicted in a top view in
[0087] By way of example, it would be possible furthermore to arrange the astigmatism correction unit 313 (not shown in
[0088] The detector device 113 comprises one selection element 212 in the scenario of
[0089] It goes without saying that the features of the above-described embodiments and aspects of the invention may be combined with one another. In particular, the features may be used not only in the combinations described, but also in other combinations or by themselves, without departing from the field of the invention.
[0090] By way of example, in respect of the figures, it was predominantly scenarios in which one or two spectral portion(s) are selectively detected that were discussed—it was predominantly scenarios in which a selection element is present for the spatial separation of the corresponding beam path that were discussed. However, in accordance with various embodiments, it would also be possible for the detection device to comprise more than one selection element. By way of example, the detection device may comprise two or more selection devices. Accordingly, it may be possible to selectively detect more than one spectral portion.
[0091] The techniques described above may also be used for e.g. parallelized confocal microscopes. By way of example, a corresponding confocal microscope may be parallelized perpendicular to the beam paths predominantly discussed herein.