OPTICAL SPECTROSCOPY SCANNER
20220334053 · 2022-10-20
Assignee
Inventors
- Francis Pellegrino (Webster, NY, US)
- Heriniaina Rajaoberison (Rochester, NY, US)
- Andrew Thankson (Rochester, NY, US)
Cpc classification
G01N21/31
PHYSICS
G01J3/0254
PHYSICS
International classification
Abstract
An optical scanning apparatus is provided. An objective lens receives a reflectance spectrum from a sample. A spectral detector detects a first path of the reflectance spectrum and outputs a spectral response. An imaging detector detects a second path of the reflectance spectrum and outputs an image response. A beam splitter is located between the objective lens and each of the spectral detector and imaging detector and splits the reflectance spectrum into the first path and the second path.
Claims
1. An optical scanning apparatus comprising: a) an objective lens configured to receive a reflectance spectrum from a sample; b) a spectral detector configured to detect a first path of the reflectance spectrum and output a spectral response; c) an imaging detector configured to detect a second path of the reflectance spectrum and output an image response; and d) a beam splitter located between the objective lens and each of the spectral detector and imaging detector, wherein the beam splitter splits the reflectance spectrum into the first path and the second path.
2. The optical scanning apparatus in accordance with claim 1 further comprising one or more field stops that limit a field of view for the spectral detector to approximately the same or less than a field of view of the imaging detector.
3. The optical scanning apparatus in accordance with claim 2 further comprising a field integration element located between the field stop and the spectral detector, wherein the field integration element integrates the first path of the spectral response over the field of view of the field stop to form a uniform plane of illumination which is an average of the first path of the spectral response, wherein the uniform plane of illumination is projected into the spectral detector.
4. The optical scanning apparatus in accordance with claim 2 wherein the field integration element is a Kohler illumination lens.
5. The optical scanning apparatus in accordance with claim 2 wherein one or more of the field stops are subdividable to enable either the spectral detector or spectral and imaging detectors to sample a subset of the full field of view from the objective lens. 6. The optical scanning apparatus in accordance with claim 1 wherein the spectral detector detects one or more of the ultraviolet (UV) spectrum, visible spectrum, near infrared spectrum (NIR) and infrared (IR).
7. The optical scanning apparatus in accordance with claim 1 wherein the imaging detector detects one or more of the ultraviolet (UV) spectrum, visible spectrum, near infrared spectrum (NIR) and infrared (IR).
8. The optical scanning apparatus in accordance with claim 1 further comprising an image display in communication with one or both of the imaging detector and the spectral detector, wherein the image display displays a visual rendering of the respective image response and/or spectral response.
9. The optical scanning apparatus in accordance with claim 1 further comprising a wireless communication module communicatively coupled to one or both of the imaging detector and the spectral detector, wherein the wireless communication module is configured to communicate the respective image response and/or spectral response to a computing device.
10. The optical scanning apparatus in accordance with claim 1 wherein the objective lens, beam splitter and spectral detector are arranged along a common optical axis, and wherein the visual detector is arranged along a visual axis which is different than the common optical axis.
11. The optical scanning apparatus in accordance with claim 1 wherein ambient light is sampled by the spectral detector along an axis of the beam splitter that differs from the objective lens.
12. A method of scanning a sample, the method comprising: a) providing an optical scanning apparatus comprising an objective lens; a spectral detector; an imaging detector; and a beam splitter located between the objective lens and each of the spectral detector and imaging detector; b) receiving, via the objective lens, a reflectance spectrum of the sample; c) detecting, via the spectral detector, a first path of the reflectance spectrum; d) outputting, via the spectral detector, a spectral response; e) detecting, via the imaging detector, a second path of the reflectance spectrum; and f) outputting, via the imaging detector, an image response.
13. The method in accordance with claim 10 further comprising: a) comparing the spectral response with standardized spectral responses stored within a database.
14. The method in accordance with claim 11 wherein the step of comparing the spectral response includes pattern matching with the standardized spectral responses.
15. An optical scanning device comprising: a) a housing; b) an optical scanning apparatus within the housing, the optical scanning apparatus comprising: i) a first objective lens configured to receive a reflectance spectrum from a sample; ii) a first spectral detector configured to detect a first path of the reflectance spectrum and output a first spectral response; iii) an imaging detector configured to detect a second path of the reflectance spectrum and output an image response; and iv) a beam splitter located between the first objective lens and each of the first spectral detector and imaging detector, wherein the beam splitter splits the reflectance spectrum into the first path and the second path; c) a shutter actuatable between an open position and a closed position, wherein the reflectance spectrum is split by the beam splitter only when the shutter is in the open position; and d) a trigger to selectively actuate the shutter to the open position.
16. The optical scanning device in accordance with claim 15 wherein ambient light spectrum is directed to the spectral detector only when the shutter is in the open position.
17. The optical scanning device in accordance with claim 15 wherein the housing is configured as a portable device.
18. The optical scanning device in accordance with claim 15 further comprising an additional objective lens which is selectively interchangeable with the first objective lens.
19. The optical scanning device in accordance with claim 15 further comprising an additional spectral detector which is selectively interchangeable with the first spectral detector.
20. The optical scanning device in accordance with claim 15 further comprising an additional spatial detector which is selectively interchangeable with the first spatial detector.
21. The optical scanning device in accordance with claim 15 further comprising an image display in communication with one or both of the imaging detector and the first spectral detector, wherein the image display displays a visual rendering of the respective image response and/or first spectral response.
22. The optical scanning device in accordance with claim 15 further comprising a wireless communication module communicatively coupled to one or both of the imaging detector and the first spectral detector, wherein the wireless communication module is configured to communicate the respective image response and/or first spectral response to a computing device.
23. The optical scanning device in accordance with claim 22 wherein the computing device is remotely located from the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The accompanying drawings form a part of this specification and are to be read in conjunction therewith, wherein like reference numerals are employed to indicate like parts in the various views, and wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0023] Referring to the drawings in detail, and specifically to
[0024] In accordance with an aspect of the present invention, optical scanning apparatus 10 is configured as a dual detector system. As can be seen in
[0025] One or more field stops 22 (collectively “field stop 22”) may be positioned along optical path P after beam splitter 20 to obstruct the field of view of spectral detector 16. In one aspect of the present invention, the dimensions of field stop 22 are the same as, or approximately the same as, the dimensions of the field of view of imaging detector 18. The spectrum passing through field stop 22 may then enter a field integration element 24, such as but not limited to a Kohler illumination lens or lenslet array, diffuser or mixing rod. In a further aspect, field stop 22 may be subdividable to enable either spectral detector 16, or spectral and imaging detectors 16 and 18, to sample a subset of the full field of view from objective lens 12. Field integration element 24 may then integrate the spectrum to form a uniform plane of illumination that represents the average of the entire spectrum reflected and/or transmitted by the sample within the field of view defined by field stop 22. The uniform plane of illumination is then projected into spectral detector 16.
[0026] Turning now to
[0027] In the exemplary embodiment shown in
[0028] Portable optical scanning device 50 may also be equipped with additional, optional functionalities. By way of example and without limitation thereto, portable optical scanning device 50 may include a display 64 communicatively coupled to the spectral detector 16 and imaging detector 18 so as to visually display the respective spectral response and image response. Display 64 may be an integral component to housing 52 or may be removably mounted onto housing 52. Power may be provided via a battery 57 stored within housing 52, such as within handle portion 56. See
[0029] In accordance with an aspect of the present invention, display 64 may comprise a smartphone or other smart (wirelessly communicative) electronic device 66. See
[0030] By way of example and without limitation thereto, smart device 66 may wirelessly communicate with one or more databases 68 over the internet 70 wherein databases 68 may include spectral indexes for many possible target analytes. Smart device 66 may compare the spectral response measured by the spectral detector 16 with the reference spectra stored within databases 68. Spectral interrogation, such as through spectral matching, may assist the operator in interpreting the results of the spectral response. Similarly, smart device 66 may perform image analysis by, for example, comparing the image response gathered by the imaging detector 18 with reference images stored within databases 68.
[0031] In accordance with another aspect of the present invention, portable optical scanning device 50 may be configured as a modular device promoting interchangeability of various components comprising the device 50. In one aspect, objective lens 12 may be mounted within a lens housing 72 which is removably attachable to center housing 74. An alternative objective lens may also be mounted within a respective lens housing. In this manner, objective lens 12 may be swapped with the alternative lens without requiring disassembly of center housing 74 or any of the system components mounted therein (e.g., beam splitter 20, field stop 22, field integration element 24, shutter 60 and imaging detector 18). Similarly, spectral detector 16 may also be mounted within a spectral detector housing 76 which is configured to be swappable with an alternative spectral detector/spectral detector housing. Imaging detector 18 may also be mounted within an imaging detector housing 18 which is also configured to be swappable with an alternative imaging detector/imaging detector housing.
[0032] From the foregoing, it will be seen that this invention is one well adapted to attain all the ends and objects hereinabove set forth together with other advantages which are obvious and which are inherent to the device described herein. It will be understood that certain features and sub combinations are of utility and may be employed without reference to other features and sub combinations. This is contemplated by and is within the scope of the claims. Since many possible embodiments of the invention may be made without departing from the scope thereof, it is also to be understood that all matters herein set forth or shown in the accompanying drawings are to be interpreted as illustrative and not limiting.
[0033] The constructions described above and illustrated in the drawings are presented by way of example only and are not intended to limit the concepts and principles of the present invention. As used herein, the terms “having” and/or “including” and other terms of inclusion are terms indicative of inclusion rather than requirement. Further, it should be understood that the use of the terms “module” and “component” herein are interchangeable and shall have the same meaning.
[0034] While the invention has been described with reference to preferred embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof to adapt to particular situations without departing from the scope of the invention. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope and spirit of the appended claims.