OPTICAL SYSTEM, OPTICAL DELAY LINE AND OCT APPARATUS
20200319440 ยท 2020-10-08
Assignee
Inventors
Cpc classification
G02B17/023
PHYSICS
G01B9/02091
PHYSICS
International classification
Abstract
An optical system, capable to admit a light beam, the optical system comprising: a plurality of reflectors configured to reflect the light beam, wherein each of the reflectors is configured to reflect an incident light beam such that the path of the incident light beam and the path of the reflected light beam are parallel to each other. Each of the reflectors has a reflection center axis positioned centrally between the path of the incident light beam and the path of the reflected light beam. At least two of the reflectors are arranged relative to each other such that their respective reflection center axes do not overlap, thereby enabling the path of the light beam to pass at least one of the at least two of the reflectors multiple times.
Claims
1. An optical system, capable to admit a light beam, the optical system comprising: a plurality of reflectors configured to reflect the light beam wherein each of the reflectors is configured to reflect an incident light beam such that a path of the incident light beam and a path of the reflected light beam are parallel to each other, each of the reflectors has a reflection center axis positioned centrally between the path of the incident light beam and the path of the reflected light beam, a first reflector of the reflectors and a second reflector of the reflectors are arranged relative to each other such that their respective reflection center axes do not overlap, thereby enabling the path of the light beam to pass at least one of the first reflector or the second reflector multiple times, and in operation of the optical system: the light beam reflected from the first reflector is incident on the second reflector and reflected by the second reflector back to the first reflector; the light beam is incident on the first reflector first, before being incident on any other of the reflectors; and a last reflector from which the path of the light beam is last reflected by the first reflector such that, after the last reflection from the first reflector, the light beam is not incident on any other of the reflectors.
2. (canceled)
3. (canceled)
4. The optical system of claim 1, wherein the optical system further comprises at least one of a light input device or a light output device, the light input device preferably being an input fibre collimator, the light output device preferably being an output fibre collimator, and wherein, in operation of the optical system, the path of the light beam first incident on the first reflector emerges from the light input device, and/or the path of the light beam last reflected by the first reflector is incident on the light output device.
5. The optical system of claim 1, further comprising a specular element configured to reflect the light beam such that at least one of a path of the light beam reflected by the specular element or a path of the light beam incident on the specular element is not parallel to a path of the light beam incident to any one of the reflectors.
6. The optical system of any one of the preceding claims claim 1, wherein at least one of the reflectors is provided with at least one reflecting surface and at least one light beam passage said light beam passage being located on the at least one reflecting surface and being configured to allow transmission of the light beam therethrough.
7. The optical system of claim 6, wherein, in operation of the optical system, at least one of the path of the light beam first incident on the first reflector or the path of the light beam last reflected by the first reflector, passes through the at least one light beam passage.
8. The optical system of claim 1, wherein at least one of the path of the first light beam incident on the first reflector, or the path of the last light beam reflected by the first reflector, travels alongside at least one of the reflectors
9. The optical system of claim 1, wherein each of the reflectors comprises a respective one of: a mirror arrangement comprising two orthogonal mirrors; a corner cube comprising three orthogonal mirrors; a corner cube prism; or a Luneburg lens.
10. The optical system of claim 1, wherein each of the reflectors has a projected area, said projected area being defined as a two-dimensional projection of the respective reflector in a direction of a respective reflection center axis, and wherein the projected area of each of the reflectors at least partially overlaps with the projected area of at least one other of the reflectors.
11. The optical system of claim 10, wherein the reflection center axis of at least one of the reflectors intersects the projected area of at least one other of the reflectors.
12. The optical system of claim 1, wherein at least one of the reflectors is configured so as to be movable in an adjustment direction, the adjustment direction being parallel to the reflection center axis of the at least one reflector.
13. The optical system of claim 1, further comprising a light source configured to provide the light beam.
14. An optical delay line for an optical coherence tomography apparatus, the optical delay line comprising an optical system of any one of the capable to admit a light beam, the optical system comprising: a plurality of reflectors configured to reflect the light beam, wherein each of the reflectors is configured to reflect an incident light beam such that a path of the incident light beam and a path of the reflected light beam are parallel to each other, each of the reflectors has a reflection center axis positioned centrally between the path of the incident light beam and the path of the reflected light beam, a first reflector of the reflectors and a second reflector of the reflectors are arranged relative to each other such that their respective reflection center axes do not overlap, thereby enabling the path of the light beam to pass at least one of the first reflector or the second reflector multiple times, and in operation of the optical system: the light beam reflected from the first reflector is incident on the second reflector and reflected by the second reflector back to the first reflector; the light beam is incident on the first reflector first, before being incident on any other of the reflectors; and a last reflector from which the path of the light beam is last reflected by the first reflector such that, after the last reflection from the first reflector, the light beam is not incident on any other of the reflectors.
15. An optical coherence tomography apparatus comprising an optical system capable to admit a light beam, the optical system comprising: a plurality of reflectors configured to reflect the light beam, wherein each of the reflectors is configured to reflect an incident light beam such that a path of the incident light beam and a path of the reflected light beam are parallel to each other, each of the reflectors has a reflection center axis positioned centrally between the path of the incident light beam and the path of the reflected light beam, a first reflector of the reflectors and a second reflector of the reflectors are arranged relative to each other such that their respective reflection center axes do not overlap, thereby enabling the path of the light beam to pass at least one of the first reflector or the second reflector multiple times, and in operation of the optical system: the light beam reflected from the first reflector is incident on the second reflector and reflected by the second reflector back to the first reflector; the light beam is incident on the first reflector first, before being incident on any other of the reflectors; and a last reflector from which the path of the light beam is last reflected by the first reflector such that, after the last reflection from the first reflector, the light beam is not incident on any other of the reflectors.
16. An optical coherence tomography apparatus comprising an optical delay line, the optical delay line comprising an optical system capable to admit a light beam, the optical system comprising: a plurality of reflectors configured to reflect the light beam, wherein each of the reflectors is configured to reflect an incident light beam such that a path of the incident light beam and a path of the reflected light beam are parallel to each other, each of the reflectors has a reflection center axis positioned centrally between the path of the incident light beam and the path of the reflected light beam, a first reflector of the reflectors and a second reflector of the reflectors are arranged relative to each other such that their respective reflection center axes do not overlap, thereby enabling the path of the light beam to pass at least one of the first reflector or the second reflector multiple times, and in operation of the optical system: the light beam reflected from the first reflector is incident on the second reflector and reflected by the second reflector back to the first reflector; the light beam is incident on the first reflector first, before being incident on any other of the reflectors; and a last reflector from which the path of the light beam is last reflected by the first reflector such that, after the last reflection from the first reflector, the light beam is not incident on any other of the reflectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Embodiments of the invention will now be explained in detail, by way of non-limiting example only, with reference to the accompanying drawings, the contents of which are described below. Like reference numerals appearing in different figures of the figures denote identical, corresponding or functionally similar elements, unless indicated otherwise.
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DETAILED DESCRIPTION OF EMBODIMENTS
[0034] Exemplary embodiments herein will now be described in detail with reference to the accompanying drawings.
Embodiment 1
[0035]
[0036] In the optical system 100-1, a light beam 200 provided by a light source (not shown in
[0037] It is noted that, between the state of being incident on a reflector (210a or 210b) and the state of being reflected from a reflector, one or more additional reflections of the light beam 200 inside or on the reflector may occur. A light beam being incident on a reflector, then optionally being reflected one or more times inside of the reflector, followed by being reflected from the reflector such that the portion of the light beam incident on the reflector and the portion of the light beam reflected from the reflector are parallel to each other may be referred to as a light beam passing one reflector (or a light beam pass). Each reflector may be configured such that the optical path of the portion of the light beam 200 that is incident on the reflector and the optical path of the portion of the light beam 200 that is reflected by the reflector have a minimum separation that does not equal zero.
[0038] In the first example embodiment depicted in
[0039] In the first example embodiment shown in
[0040] In the optical system 100-1 according to the first example embodiment, the reflector 210a, on which the light beam 200 provided by the light source (not shown in
[0041] For example,
[0042] Optionally, the portion of the light beam 200 first incident on the first reflector, 210a or 210c, may emerge from a light input device 230, such as an input fibre collimator. Further, optionally, the portion of the light beam 200 last reflected from the last reflector, 210b or 210c, may be incident on a light output device 240, such as an output fibre collimator.
[0043] As depicted in
[0044] In the optical system 100-4 according to the first embodiment or in the variant thereof, 100-1*, which is illustrated in
[0045] Alternatively, or additionally, a retroreflective film may be utilized as reflector 210. A retroreflective film may, for example, comprise multiple miniature-sized Luneburg lenses, corner cubes or corner cube prims. Also, the optical system 100-1 according to the first embodiment herein, or the optical system 1004* according to a variant of the first embodiment, may comprise a combination of two or more of the reflector types mentioned above, e.g. Luneburg lenses, corner cube prisms, etc.
[0046] Mirror arrangements comprising only two orthogonal mirrors may be advantageous due to their simplicity and associated ease of manufacture. However, to achieve the effect wherein the incident portion of the light beam 200 and the reflected portion of the light beam 200 are parallel, the incident portion of the light beam 200 may overlap a hypothetical plane which is orthogonal to both of the two orthogonal mirrors.
[0047] Mirror arrangements comprising three orthogonal mirrors, corner cube prisms, Luneburg lenses or retroreflective films may be utilized almost independently of the orientation of the incident light beam 200.
[0048] In the optical system 100-1 according to the first example embodiment of the first example aspect herein (or the described variant thereof), each of the reflectors 210 has a projected area (as shown at 290 in
[0049] In an optical system 100-1 according to a first example embodiment (or the variant thereof) described above, at least one of the reflectors 210 is configured so as to be movable in an adjustment direction 220. Preferably, the adjustment direction 220 is parallel to the reflection center axis (250a, 250b, 250c and 250d) of the at least one of the reflectors 210a, 210b, 210c and 210d. Alternatively, the adjustment direction 220 may be inclined (for example, orthogonal) with respect to the reflection center axis. If the adjustment direction 220 is chosen so as to be parallel to the reflection center axis 250, continuous adjustment of the length of the light beam 200 may be possible. If, however, the adjustment direction 220 is chosen so as to be orthogonal to the reflection center axis 250, the length of the light beam 200 may be varied in discrete steps. That is, in the latter case, the number of passes of the light beam 200 associated with at least one particular reflector 210 may be varied.
[0050] In an optical system 100-1 according to a first embodiment (or the variant thereof) described herein, the light source 20 may be configured to provide, as the light beam 200, a light beam having a coherence length and a wavelength that would render an OCT imaging apparatus comprising the optical system 100-1 (or 100-1*) suitable for acquiring OCT images of a retina of an eye of a subject. The light source 20 may, for example, be configured to provide a light beam 200 having a coherence length between 1 and 10 meters, for example, between 1 and 2 meters. The light source 20 may further be configured to provide a light beam 200 of the infrared spectrum, i.e. a light beam having wavelengths from 800 to 1400 nm.
[0051] The optical system 100-1 (or 100-1*) may preferably comprise two, but not more than two, reflectors 210.
[0052] In the optical system 100-1 according to a first embodiment (or the variant thereof) described herein, the number of reflectors required to obtain a particular light-travelling distance may be reduced relative to conventional optical systems. At least one of the effects described hereinafter may be associated with an optical system 100-1 (or 100-1*). The optical system 100-1 or 100-1* may be lighter than a conventional optical system, making it easier to easier to transport. Additionally or alternatively, since fewer reflectors are required, a small installation space may be obtained relative to an installation space of a conventional optical system. The optical system 100-1 (or 100-1*) may be less susceptible to errors, as a better reflection alignment could be achieved, as compared to conventional optical systems.
Embodiment 2
[0053] An optical system 100-2 according to a second embodiment of the first example aspect herein is illustrated in
[0054] The optical system 100-2 according to the second example embodiment is structurally similar to the optical system 100-1 according to the first embodiment described above, but additionally comprises at least one specular element 270 (in other words, a reflective element such as a mirror). The at least one specular element 270 is configured to reflect the light beam 200 such that the portion of the light beam 200 reflected by the specular element 270 and/or the portion of the light beam 200 incident on the specular element 270 are not parallel to the portions of the light beam 200 incident on any one of the reflectors 210a and 210b.
[0055] In the optical system 100-2, the light beam 200 may be reflected by a specular element 270 after being last reflected from the last reflector 210b (see
[0056] Likewise, the light beam 200 may first be incident on a particular portion of a first reflector 210a, on which the light beam 200 could hardly or not be incident in absence of the specular element 270. That is because, in some cases, another reflector may be in the way if a light beam 200 were to be directly aimed at such a particular portion. For example, the configuration of
[0057] In the example embodiment depicted in
[0058] The specular element 270 may further be configured such that it at least partially reflects a light beam 200 incident on one side thereof, and at least partially allows transmission of a light beam 200 incident on another side thereof.
[0059] The specular element 270 may further be configured such that only a small portion thereof, e.g. a portion having an area of 1 mm.sup.2, reflects an incident light beam 200, whereas the rest of the specular element 270 allows transmission of a light beam 200.
[0060] It is further noted that the definitions and variations described in the framework of the first example embodiment of the first example aspect herein may also be applied on the second example embodiment of the first example aspect herein as described above. Likewise, similar or equal technical effects may be obtained.
Embodiment 3
[0061] An optical system 100-3 according to a third example embodiment of the first example aspect herein is illustrated in
[0062] In the optical system 100-3, at least one of the reflectors 210e and 210f is provided with at least one reflecting surface 280 and at least one light beam passage 260. The at least one light beam passage 260 is located on the at least one reflecting surface 280 of the at least one reflector. Further, the at least one light beam passage 260 is configured to allow transmission of the light beam 200 therethrough. As depicted in
[0063] In the embodiment depicted in
[0064] Likewise, in another example embodiment herein, the light beam 200 may first be incident on a reflector after having been transmitted through a light beam passage 260 formed in another reflector 210. In such an alternative embodiment, the light beam 200 may be incident on a portion of the first reflector 210, on which the light beam 200 could hardly be incident in absence of the light beam passage 260 (that may be because, in some example cases, another reflector may be in the way if the light beam 200 were to be directly aimed at such a particular portion). For example, the configuration of
[0065] Examples of light beam passages 260 that may be utilized in an optical system 100-3 according to the third embodiment of the first example aspect herein are depicted in
[0066] The examples depicted in
[0067] In the examples of
[0068] It is further noted that the definitions and variations described in the framework of the first embodiment of the first example aspect herein may also be applied on the third embodiment of the first example aspect herein as described above. Likewise, similar or equal technical effects may be obtained.
Further Embodiments
[0069] In the embodiments described above, substantially three ways are described of how a light beam 200 may be treated before it is first incident on a first reflector 210. Likewise, substantially three ways are described of how a light beam 200 may be treated after it is last reflected from a last reflector. However, it is noted that each combination of the ways may be regarded as another embodiment of the first example aspect herein.
[0070] Optionally, according to another embodiment of the first example aspect herein, multiple optical systems of the same or of different embodiments of the first example aspect herein as described above may be serially connected in order to further increase the travelling distance of the respective light beam 200.
[0071] An optical delay line for an optical coherence tomography apparatus according to an embodiment of the second example aspect herein may comprise an optical system according to any of the embodiments of the first example aspect described above.
[0072] An optical coherence tomography apparatus according to an embodiment of a third example aspect herein may comprise an optical system according to any of the embodiments of the first example aspect described above, or the optical delay line according to the embodiment of the second example aspect as described above.
[0073] An optical coherence tomography apparatus according to an embodiment of a third example aspect herein may comprise elements of exemplary OCT-apparatuses, for example, those described above and shown in
[0074] Reference is made to
[0075] It is noted that the light source 20 of the OCT apparatus may be the light source 20 of the optical system 100 according to any embodiment of the first example aspect of the present application as described above, or the optical delay line according to the embodiment of the second example aspect of the present application as described above.
[0076] Before being incident on, and reflected by a substrate 70, the light beam 200 may be reflected by a scanning mirror 50 configured to be movable in one or more directions.
[0077] Also, a second collimator device 60 may be provided, the second collimator device 60 being configured to collimate the light beam 200 incident on, and reflected by the substrate 70.
[0078] The OCT apparatus 10 may further comprise a detector unit 90 configured to detect light of the light beam 200 reflected by substrate 70 and light of the light beam 200 provided by the optical system 100. The detector unit 90 may be configured to detect an interference pattern between the light reflected by the substrate 70 and the light provided by the optical system 100. The detector unit 90 may further be configured to obtain depth information of the substrate 70 based on the interference pattern.
[0079] An optical delay line according to an embodiment of the second example aspect of the present application and/or the optical coherence tomography apparatus according to the embodiment of the third example aspect of the present application may be associated with equivalent or similar effects as it has been described with respect to the optical system 100 according to the first example aspect of the present application.
[0080] While various example embodiments of the present invention have been described above, it should be understood that they have been presented by way of example, and not limitation. It will be apparent to persons skilled in the relevant art(s) that various changes in form and detail can be made therein. Thus, the present invention should not be limited by any of the above described example embodiments, but should be defined only in accordance with the following claims and their equivalents.
[0081] Further, the purpose of the Abstract is to enable the Patent Office and the public generally, and especially the scientists, engineers and practitioners in the art who are not familiar with patent or legal terms or phraseology, to determine quickly from a cursory inspection the nature and essence of the technical disclosure of the application. The Abstract is not intended to be limiting as to the scope of the example embodiments presented herein in any way. It is also to be understood that any procedures recited in the claims need not be performed in the order presented.
[0082] While this specification contains many specific embodiment details, these should not be construed as limitations on the scope of any inventions or of what may be claimed, but rather as descriptions of features specific to particular embodiments described herein. Certain features that are described in this specification in the context of separate embodiments can also be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment can also be implemented in multiple embodiments separately or in any suitable sub-combination. Moreover, although features may be described above as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can in some cases be excised from the combination, and the claimed combination may be directed to a sub-combination or variation of a sub-combination.
[0083] Having now described some illustrative embodiments and embodiments, it is apparent that the foregoing is illustrative and not limiting, having been presented by way of example.
[0084] The devices and apparatus described herein may be embodied in other specific forms without departing from the characteristics thereof. The foregoing embodiments are illustrative rather than limiting of the described systems and methods. Scope of the optical systems and apparatuses described herein is thus indicated by the appended claims, rather than the foregoing description, and changes that come within the meaning and range of equivalence of the claims are embraced therein.