This non-provisional application claims priority under 35 U.S.C. ยง 119(a) on Patent Application No(s). 111127751 filed in Taiwan, R.O.C. on Jul. 25, 2022, the entire contents of which are hereby incorporated by reference.
The present disclosure provides an optical coherence tomography, and in particular to a hand-held scanning probe and an optical scanning system.
Optical coherence tomography (OCT) can be applied to scan a surface of an object. OCT technology is similar to ultrasonic technology, the main difference is that OCT is the use of near-infrared beam, after light passes through a test object, a backscattered signal will be produced through the structure of the test object, and then the depth structure information of the test object can be obtained by receiving the backscattered signals generated by different depth structures.
The inventor found that the hand-held scanning probe used in the traditional optical coherence tomography system is bulky and heavy, because the optical path of the optical structure in the hand-held scanning probe is designed to be vertical, that is, the direction of the OCT sample end beam incident to the test structure is perpendicular to the direction of light emitted by the hand-held scanning probe. In addition, the hand-held scanning probe has a significant crooked appearance in response to the above design and is not easy to hold.
In view of the shortcomings of the prior art, the inventor exhausted his mind to propose a hand-held scanning probe and an optical scanning system to make the hand-held scanning probe have the advantages of light weight, small size and easy to hold.
To achieve the above objective and other objectives, an aspect of the present disclosure provides a hand-held scanning probe, which is included in an optical scanning system. The hand-held scanning probe includes a housing and an optical component disposed in the housing. The optical component includes a first lens, a reflector, a two-dimensional beam scanning mechanism, a splitter and a second lens. The first lens is used to receive a laser beam that is split by a fiber-coupled splitter and convert the laser beam into a form of collimated light. The reflector is set relative to the first lens and has a first mirror surface. The first mirror surface is used to refract the laser beam to change the direction of the laser beam. The two-dimensional beam scanning mechanism has a second mirror surface. The second mirror surface is set relative to the first mirror surface to change the direction of the laser beam again and provide a swing beam to a test surface of a test specimen for two-dimensional mobile scanning. The splitter is set relative to the two-dimensional beam scanning mechanism, and is used to pass the swing beam, and can separate a scanning end beam returned from the test specimen from an illumination beam into different light paths. The second lens is set relative to the splitter, and is used to focus the swing beam at the test surface or under the test surface to carry out scanning after forming the scanning end beam.
To achieve the above objective and other objectives, another aspect of the present disclosure provides an optical scanning system, which is applied to scan a test specimen. The optical scanning system includes a system host, the hand-held scanning probe, and a connection cable connecting between the system host and the hand-held scanning probe. The system host therein is provided with a spectrum analyzer and a light source module for providing an optical scanning system light source.
To achieve the above objective and other objectives, still another aspect of the present disclosure provides a hand-held scanning probe, which is included in an optical scanning system to scan a test surface. The hand-held scanning probe includes a housing and an optical component, a fiber-coupled splitter and an interferometer reference end disposed in the housing. The fiber-coupled splitter is used to spilt an optical scanning system light source into a reference end beam and a scanning end beam, and receive the optical scanning system light source. The reference end beam enters the interferometer reference end and is reflected back to the fiber-coupled splitter from the interferometer reference end. The scanning end beam is scattered or reflected through the test specimen corresponding to the test surface, and then also returns to the fiber-coupled splitter.
In an embodiment, the hand-held scanning probe further includes a two-dimensional camera, a third lens and an illumination module disposed in the housing. The two-dimensional camera is set relative to the splitter, not parallel to the direction of the swing beam. The third lens is located between the two-dimensional camera and the splitter. The second lens is located between the splitter and the illuminati on module. The illumination module is for illuminating the test surface.
In an embodiment, the hand-held scanning probe further includes a focus depth adjustment part exposed to the housing. The focus depth adjustment part is for adjusting a distance between the second lens and the test surface of the test specimen.
In an embodiment, the connection cable includes an optical fiber. The fiber-coupled splitter receives the optical scanning system light source through the optical fiber, in order to split the optical scanning system light source into the reference end beam and the scanning end beam. After the reference end beam reflected by the interferometer reference end and the scanning end beam scattered by the test specimen return to the fiber-coupled splitter, they can return to the spectrum analyzer of the system host through the optical fiber to be analyzed to obtain a scanned image.
Accordingly, regarding the hand-held scanning probe and the optical scanning system of the embodiment of the present disclosure, because the first lens and the two-dimensional beam scanning mechanism is provided with a reflector therebetween, an angle of incidence of the laser beam from the first lens may not be perpendicular to an angle of emergence thereof from the second lens, the housing may therefore not have a significantly crooked appearance, thereby reducing the volume, reducing the weight and facilitating the grip by the hand of a person.
To facilitate understanding of the above purpose, characteristics and effects of this present disclosure, embodiments together with the attached drawings for the detailed description of the present disclosure are provided as below.
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As described above, regarding the hand-held scanning probe 101 and the optical scanning system 100 of the embodiment of the present disclosure, because the first lens 104 and the two-dimensional beam scanning mechanism 106 is provided with a reflector 105 therebetween, an angle of incidence of the laser beam S1 from the first lens 104 may not be perpendicular to an angle of emergence thereof from the second lens 108, the housing 102 may therefore not have a significantly crooked appearance, thereby reducing the volume, reducing the weight and facilitating the grip by the hand of a person. As shown in
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L reflected by the test surface P may be focused on the two-dimensional camera 115 after passing through the second lens 108, the splitter 107 and the third lens 116, so that the two-dimensional camera 115 can obtain a magnified image of the test surface P, the magnification is a focal length ratio of the third lens 116 and the second lens 108. When applied to skin complexion detection of dermatology, the image obtained by the two-dimensional camera 115 may be converted into a signal, and transmitted back to the system host 109, and then reproduced after the signal is restored, so that the inspector can see the magnified image of the skin, in order to replace the function of traditional magnifier, and can assist in the interpretation of OCT images.
While the present disclosure has been described by means of preferable embodiments, those skilled in the art should understand the above description is merely embodiments of the disclosure, and it should not be considered to limit the scope of the disclosure. It should be noted that all changes and substitutions which come within the meaning and range of equivalency of the embodiments are intended to be embraced in the scope of the disclosure. Therefore, the scope of the disclosure is defined by the claims.
Number | Date | Country | Kind |
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111127751 | Jul 2022 | TW | national |