Optical coherence tomography apparatus and operating method thereof
09557155 ยท 2017-01-31
Assignee
Inventors
Cpc classification
G01B9/02091
PHYSICS
A61B5/0073
HUMAN NECESSITIES
International classification
Abstract
An optical coherence tomography apparatus includes a light source, a light coupling module, and an optical path difference generating module. The light source emits a coherent light. The light coupling module divides the coherent light into a first incident light and a second incident light. The first incident light is emitted to an item to be inspected and a first reflected light is generated. The second incident light is emitted to the optical path difference generating module, a second reflected light is generated according to the second incident light by the optical path difference generating module through changing the transparent/reflection properties of at least one optical devices of the optical path difference generating module, so that there is a optical path difference between the first reflected light and the second reflected light.
Claims
1. A method of operating an optical coherence tomography apparatus, the optical coherence tomography apparatus comprising a light source, a light coupling module, and an optical path difference generating module, the optical path difference generating module comprising at least one optical device, the method comprising the steps of: (a) the light source emitting a coherent light; (b) the light coupling module dividing the coherent light into a first incident light and a second incident light; (c) emitting the first incident light to an item to be inspected and the first incident light is reflected by the item to be inspected to generate a first reflected light; and (d) when the second incident light is emitted to the optical path difference generating module, the optical path difference generating module changing the transparent/reflection properties of the at least one optical device to generate a second reflected light according to the second incident light to generate an optical path difference between the first reflected light and the second reflected light; wherein no matter how the optical path difference generating module changes the transparent/reflection properties of the at least one optical device, the optical path difference generated by the optical path difference generating module is known, and corresponding relationships between the transparent/reflection property of each optical device and different optical path differences are recorded in a look-up table for following comparison, and the at least one optical device is a plurality of liquid crystal units arranged in a multi-layer form, the optical path difference generating module further comprises a first liquid crystal unit layer and a second liquid crystal unit layer, the first liquid crystal unit layer and the second liquid crystal unit layer are adjacent to each other, a first number of the plurality of liquid crystal units arranged in the first liquid crystal unit layer is different from a second number of the plurality of liquid crystal units arranged in the second liquid crystal unit layer, the plurality of liquid crystal units arranged in the first liquid crystal unit layer and the plurality of liquid crystal units arranged in the second liquid crystal unit layer all have the same size, the plurality of liquid crystal units is arranged parallel to the second incident light and parallel arranged in two rows, the plurality of liquid crystal units at least comprises a first liquid crystal unit, a second liquid crystal unit, a third liquid crystal unit, a fourth liquid crystal unit, and a fifth liquid crystal unit, the first liquid crystal unit, the second liquid crystal unit, and the third liquid crystal unit are arranged in a first row and the fourth liquid crystal unit and the fifth liquid crystal unit are arranged in a second row, the optical path difference generating module adjusts rotation angles of the plurality of liquid crystal units to change the transparent/reflection properties of the plurality of liquid crystal units to generate the optical path difference between the second reflected light reflected by the optical path difference generating module and the first reflected light.
2. The method of claim 1, wherein the light coupling module is a light splitter.
3. The method of claim 1, further comprising the steps of: (e) receiving the first reflected light and the second reflected light and sensing the optical path difference between the first reflected light and the second reflected light; and (f) obtaining a vertical cross-sectional optical data related to the item to be inspected according to the optical path difference.
Description
BRIEF DESCRIPTION OF THE APPENDED DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(15) A first embodiment of the invention is an optical coherence tomography (OCT) apparatus. In this embodiment, the OCT apparatus is used to perform an inspection on an item to be inspected to obtain the vertical cross-sectional optical data related to the item to be inspected. Please refer to
(16) As shown in
(17) In this embodiment, the light source 20 is used to emit a coherent light. The light coupling module 22 is used for dividing the coherent light emitted from the light source 20 into a first incident light and a second incident light, wherein the first incident light is emitted to the module of item to be inspected 26 and the second incident light is emitted to the optical path difference generating module 24. When the first incident light is emitted to the item to be inspected of the module of item to be inspected 26, the item to be inspected will reflect the first incident light to generate a first reflected light. When the second incident light is emitted to the optical path difference generating module 24, the optical path difference generating module 24 will change the transparent/reflection properties of the at least one optical device to generate a second reflected light according to the second incident light to generate an optical path difference between the first reflected light and the second reflected light.
(18) It should be noticed that when the optical path difference generating module 24 changes the transparent/reflection properties of the at least one optical device to generate the optical path difference, since the transparent/reflection degree of each optical device to the second incident light can be measured in advance, that is to say, the transparent/reflection degree of each optical device to the second incident light is the information that is already known, and the position of each optical device of the optical path difference generating module 24 is also known.
(19) Therefore, no matter how the optical path difference generating module 24 changes the transparent/reflection properties of the at least one optical device, the optical path difference generated by the optical path difference generating module is also known, and the corresponding relationships between the transparent/reflection property of each optical device and different optical path differences can be recorded in a look-up table for the following comparison, but it is not limited by this case.
(20) Compared to the prior arts, since the position of each optical device in the optical path difference generating module 24 of the invention is fixed and already known, it is unnecessary to use complicated mechanical way to move the optical device to change the optical path difference, so that the structure of the OCT apparatus can be simplified and the volume of the OCT apparatus can be reduced.
(21) Because the main feature of the invention distinguishable from the prior art is the optical path difference generating module 24, therefore, the different structures of the optical path difference generating module 24 and the different reflection conditions of the optical path difference generating module 24 reflecting the second incident light will be discussed as follows. Please refer to
(22) Next, please further refer to
(23) On the contrary, please refer to
(24) It should be noticed that no matter in the above-mentioned embodiments of
(25) In addition, please refer to
(26) Please refer to
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(28) Comparing
(29) Please refer to
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(31) Comparing
(32) Please refer to
(33) Please refer to
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(35) A second embodiment of the invention is an OCT apparatus operating method. In this embodiment, the OCT apparatus includes a light source, a light coupling module, and an optical path difference generating module. The optical path difference generating module includes at least one optical device. In fact, the light source can be a coherent light source; the light coupling module can be a light splitter or any other devices having light splitting function, there is no limitation.
(36) Please refer to
(37) In an embodiment, the at least one optical device is a plurality of liquid crystal units arranged in a multi-layer form, the optical path difference generating module adjusts rotation angles of the plurality of liquid crystal units to change the transparent/reflection properties of the plurality of liquid crystal units to generate the optical path difference between the second reflected light reflected by the optical path difference generating module and the first reflected light.
(38) In another embodiment, the at least one optical device is a multi-layer electro-chromic material, when the second incident light is emitted to the multi-layer electro-chromic material, the optical path difference generating module will use the multi-layer electro-chromic material to show different transparent/reflection properties corresponding to different color lights of the second incident light to generate the optical path difference between the second reflected light generated by the optical path difference generating module and the first reflected light. It should be noticed that the optical path difference generating module can also provide optical inverting effect according to the relationships between color lights and wavelengths.
(39) In another embodiment, the at least one optical device is a multi-layer electro-wetting structure unit, the second incident light passes through the multi-layer electro-wetting structure unit having different transmission media to generate the optical path difference between the second reflected light generated by the optical path difference generating module and the first reflected light.
(40) In another embodiment, the at least one optical device is a plurality of light guide units, the optical path difference generating module switches the directions of the plurality of light guide units to generate the optical path difference between the second reflected light generated by the optical path difference generating module and the first reflected light.
(41) In another embodiment, the at least one optical device is a plurality of light switch units, for example, the plurality of light switch units can be bubble switches, but not limited by this case. In fact, the optical path difference generating module switches the plurality of light switch units to generate the optical path difference between the second reflected light generated by the optical path difference generating module and the first reflected light.
(42) After the optical path difference between the second reflected light and the first reflected light is generated, in the step S18, the method receives the first reflected light and the second reflected light and senses the optical path difference between the first reflected light and the second reflected light. At last, in the step S20, the method obtains a vertical cross-sectional optical data related to the item to be inspected according to the optical path difference.
(43) Compared to the prior arts, the OCT apparatus and its operating method of the invention is to change the transparent/reflection properties of its optical devices (for example, the liquid crystal unit, the electro-chromic material, the electro-wetting structure unit, the light guide unit, and the light switch unit) to generate an optical path difference, thus, the drawbacks of the conventional OCT apparatus that the complicated optical devices and the shifting/rotating mechanical structure are necessary to generate the optical path difference can be avoided. Therefore, the structure of the OCT apparatus can be largely simplified, and its manufacturing cost can be also reduced, even the effect of changing light frequencies can be provided according to the relationships between the color lights and the wavelengths, so that it has great market potential.
(44) With the example and explanations above, the features and spirits of the invention will be hopefully well described. Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teaching of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.