Waveguide side irradiation system and method

Steep-angle side illumination techniques enhance light coupling in waveguides, addressing inefficiencies in current methods by increasing propagation length and sensitivity, and enabling more efficient couplers for improved waveguide systems.

JP7837565B2Active Publication Date: 2026-03-31エガロンクラウディオオリヴェイラ
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-12-07
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Current methods for lateral illumination of waveguides, such as optical fibers, result in low sensitivity, low resolution, and low-efficiency couplers due to limited light coupling, leading to short propagation lengths and inefficient signal transmission.

Method used

Implementing side illumination at steep angles, typically between 40 to 60 degrees with respect to the normal of the waveguide surface, using various configurations including parallel light sources, oblique and upright waveguides, and reflective coatings to enhance light coupling into the waveguide.

Benefits of technology

This approach significantly increases light coupling by up to 100 times, enhancing propagation length, sensitivity, and resolution, allowing for more efficient couplers and wider applications in waveguide systems.

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Abstract

To provide apparatus, systems and methods, which allow the amount of light coupled into a waveguide (e.g., an optical fiber) by side illumination to be increased by several fold.SOLUTION: Systems and methods for side coupling, side illumination or side injection (as opposed to axial coupling, illumination, or injection) of a waveguide are disclosed. More particularly, the present invention relates to increased coupling by orders of magnitude and consequently increased transmission of any wave along a waveguide by side coupling, side illumination, or side injection.SELECTED DRAWING: Figure 6
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Description

Technical Field

[0001] This application claims priority to U.S. Provisional Application No. 62 / 945,584, filed Dec. 9, 2019. All external materials identified herein are incorporated by reference in their entirety.

[0002] The field of the present invention generally relates to side coupling, side illumination, or side injection (in contrast to axial coupling, axial illumination or axial injection) of waveguides. More particularly, the field of the present invention relates to increasing the coupling of any wave along a waveguide by side coupling, side illumination, or side injection, resulting in increased transmission. Further, the present invention relates to an increase in signal transmission by side coupling along respective waveguides for the following waves: a. Electromagnetic waves such as radio waves, microwaves, infrared rays, visible light, ultraviolet rays, X-rays, and gamma rays, b. Acoustic waves such as sound, low frequency, and ultrasonic waves, c. Matter waves, as well as d. Any other type of wave.

Background Art

[0003] The background description includes information that may be useful in understanding the present invention. It is not admitted that any of the information provided herein is prior art or relevant to the presently claimed invention, or that any publication specifically or implicitly referenced is prior art.

[0004] Currently, lateral (side) illumination of waveguides such as optical fibers is generally performed at an angle of 0 degrees with respect to the normal of the waveguide side. However, with this type of illumination, only a small portion of the light incident and transmitted along the waveguide becomes (1) a short propagation length (e.g., up to 2 meters), (2) a low-signal optical fiber sensor, resulting in low sensitivity and low resolution, and (3) a low-efficiency coupler, etc., and may cause such problems.

[0005] Side-illuminated optical fibers and side-illuminated waveguides are generally little studied. Egalon (US Patents 8,463,083, 8,909,004, and 10,088,410) discloses side-illuminated optical fibers. Pulido and Esteban (C. Pulido, O. Esteban, "Multiple fluorescence sensing with lateral tapered polymer fiber", Sensors and Actuators B, 157 (2011), pp. 560-564) disclose side-illuminated fluorescent clad optical fibers. A goniometer is used to measure the illumination angle at which coupling fluorescence is higher. Finally, Grimes et al. (US Patent 4,898,444) disclose a first fiber used to illuminate a second fiber from the side using a connecting medium to minimize losses due to Fresnel reflection.

[0006] These and all other external sources discussed herein are incorporated in their entirety by reference. If a definition or use of a term in an incorporated reference contradicts or is contrary to the definition of that term set forth herein, the definition of that term set forth herein shall prevail, and the definition in the reference shall not prevail.

[0007] While these references contribute to the field of side-irradiated waveguides, there is still a need for improved systems and methods for coupling waveguides by side irradiation.

[0008] Various objects, features, aspects, and advantages of the subject matter of the present invention will become more apparent from the detailed description of the following embodiments, along with the accompanying drawings in which similar numbers represent similar components. [Overview of the Initiative]

[0009] The subject of this invention is to provide an apparatus, system, and method for increasing the amount of light coupled into a waveguide (e.g., an optical fiber) by several times through side illumination. Furthermore, experiments with side illumination have shown that this amount can be increased by up to 100 times when the side illumination angle with respect to the normal to the side of the waveguide is very steep. The following advantages have been recognized: a. When coupling efficiency increases, the propagation length along the fiber increases; b. Optical fiber sensors with higher sensitivity and superior resolution; c. A more efficient side-illuminated coupler; and d. A simpler configuration that does not require a lens to inject light.

[0010] Furthermore, improving coupling efficiency offers the following advantages: i. Low-intensity, inexpensive light sources are used in common waveguide devices such as fiber sensors and couplers. It can be used in combination with the S. ii. Side-illuminated type, such as in applications requiring long-distance propagation of light along a waveguide. A wider range of waveguide applications will become available. iii. Improved coupling efficiency allows for a larger signal, thus increasing sensitivity. A lower-cost detection system is needed.

[0011] Therefore, embodiments of the present invention are simpler and more numerous than those of the prior art. To provide a side-illuminated waveguide for carrying light. One or more embodiments thereof and other The advantages become clear from the explanation and consideration of the attached drawings to ensure certainty.

[0012] For the sake of brevity, the following terms are used in this specification in their respective broader senses: a. Light is defined as all types of waves, including electromagnetic waves, acoustic waves, and matter waves. b. Fiber optics can guide any type of waveguide structure and It is defined as follows. In the case of matter waves, the laser beam captures the matter wave along its length. Since it can guide signals, it can also be considered a waveguide. c. The side of a waveguide refers to the plane parallel to the entire wave propagation within the waveguide. d. The end of a waveguide refers to the waveguide plane that is perpendicular to the entire propagation of waves within the waveguide. e. The term “side irradiation” refers to the side irradiation of any type of wave into any type of waveguide. It is used as a synonym for irradiation, lateral coupling, and lateral injection. Also, lateral irradiation is This is called lateral illumination of the waveguide. Lateral illumination is in contrast to axial illumination, which illuminates the end of the waveguide. It is.

[0013] The following is an overview of the embodiments described and shown herein: a. The first embodiment shown in Figure 1 describes parallel light from a light source, such as a laser, propagating toward a focusing waveguide through a non-connected medium (air, vacuum, water, etc.). The light is incident on the side of the focusing waveguide at a high angle of 85 degrees with respect to the normal to the waveguide surface, but acceptable results can be obtained at lower angles as well. b. The second embodiment uses light sources that are not necessarily collimated. In this configuration, the light source emits light that propagates from the light source toward the surface of the focusing waveguide through a hole or tunnel drilled through the strip. This hole guides the light and can form an angle of up to 85 degrees with respect to the normal to the waveguide surface, although lower angles can also yield acceptable results. The cross-section of the hole can be uniform along its length or tapered, and may have any shape, such as a cylindrical hole with a circular cross-section as shown in Figure 6, a rectangular cross-section, or a cross-section consisting of regular or irregular polygons. As the name suggests, tapered holes preferably have a larger cross-sectional dimension from the light source toward the side of the focusing waveguide (side-irradiated waveguide). A conical hole drilled in the strip, as shown in Figure 7, is an example of this tapered shape, where the smaller diameter faces the light source and the larger diameter faces the side of the focusing waveguide. Other cross-sectional shapes are also acceptable. The inner walls of the hole or tunnel may be polished or coated with reflective material to increase the amount of light guided toward the side-irradiated focusing waveguide. In all of these cases, the hole or tunnel forms an angle of up to 85 degrees with respect to the normal to the side surface of the focusing waveguide. c. In the third embodiment, as shown in Figures 9 to 10, a second waveguide, an irradiation waveguide, is used to guide light from a light source toward a focusing waveguide. This irradiation waveguide is positioned obliquely so as to be at a steep angle with respect to the normal to the side surface of the focusing waveguide. The irradiation waveguide may have a cross-section similar to the hole described in the previous section (a uniform cross-section like a cylindrical fiber, or a cross-section such that the cross-sectional dimensions increase from the light source toward the surface of the focusing waveguide, like a conical fiber). To increase the amount of light guided from the light source toward the side surface of the irradiated focusing waveguide, the surface of the irradiation waveguide may be coated with a reflective material. The proximal end of the irradiation waveguide facing the light source is preferably tangent to the surface of the light source, while the end facing the focusing waveguide is preferably perpendicular to the axis of the irradiation waveguide. d. In the fourth embodiment, as shown in FIGS. 12 to 13, an upright irradiation waveguide is used to guide light from a light source toward the condensing waveguide. This irradiation waveguide has an end that forms an angle with respect to the horizontal line in order to direct the light from the light source toward the condensing waveguide at a steeper angle. This configuration has the advantage of requiring less longitudinal occupied space compared to the configuration of the diagonal waveguide and holes (items b and c above). e. The fifth embodiment is a diagonal irradiation waveguide having an end at an angle as shown in FIGS. 15 to 16, which integrates the features of the third and fourth configurations.

[0014] Various objects, features, aspects, and advantages of the subject matter of the present invention will become more apparent from the following detailed description of the preferred embodiments, together with the accompanying drawings in which like numerals represent like components.

Brief Description of the Drawings

[0015] [Figure 1] It is a perspective view of one embodiment of a light source such as a laser pointer that irradiates a condensing waveguide with a parallel light beam. The light source is mounted on a goniometer and can irradiate the condensing waveguide at different angles θ and positions x. [Figure 2] It is a plot of the light intensity with respect to the irradiation angle θ with respect to the normal of the surface of the condensing waveguide for three different positions x along the condensing waveguide according to the setting of FIG. 1, and the condensing waveguide has a tapered shape. The position x is measured based on the tip (end) of the waveguide closest to the photodetector. In all cases, an exponential increase in intensity is seen for angles up to a certain angle, which may also depend on the taper angle of the waveguide at the irradiation point. [Figure 3] The plot shown in FIG. 2 is plotted on a logarithmic scale. [Figure 4] It is a plot of the intensity with respect to the irradiation angle and the position along the condensing waveguide according to the setting of FIG. 1, where the condensing waveguide has a tapered shape. [Figure 5] It is a plot of the ratio between the maximum intensity I_max and the intensity I_0 at the zero-degree angle of irradiation, i.e., I_max / I_0, for a given position x. [Figure 6] Perspective view of a strip having cylindrical holes respectively at a specific angle for irradiating a light collecting waveguide. [Figure 7] Perspective view of one embodiment of a strip having a conical hole for irradiating a light collecting waveguide. [Figure 8A] Explanatory drawing showing one embodiment of an obliquely cylindrical irradiation waveguide. [Figure 8B] Explanatory drawing showing one embodiment of an obliquely conical irradiation waveguide. [Figure 9] Perspective view of a support having an obliquely cylindrical irradiation waveguide. [Figure 10] Perspective view of a support having an obliquely conical irradiation waveguide. [Figure 11A] Explanatory drawing showing a vertically cylindrical irradiation waveguide. [Figure 11B] Showing a vertically conical irradiation waveguide. [Figure 12] Perspective view of a support having several vertically cylindrical irradiation waveguides. [Figure 13] Perspective view of a support having several vertically conical irradiation waveguides. [Figure 14A] Explanatory drawing showing a cylindrical irradiation optical waveguide. [Figure 14B] Showing a conical irradiation optical waveguide. [Figure 15] Perspective view of a support having the cylindrical irradiation optical waveguide of FIG. 14A. [Figure 16] Perspective view of a support having the conical irradiation optical waveguide of FIG. 14B. [Figure 17] Diagram showing an array of light sources attached at a fixed angle for irradiating a light collecting waveguide at a predetermined angle.

Embodiments for Carrying Out the Invention

[0016] The following description provides exemplary embodiments of the subject matter of the present invention. Each embodiment represents a single combination of the inventive elements, but the subject matter of the present invention is considered to include all possible combinations of the disclosed elements. Thus, if one embodiment includes elements A, B, and C, and a second embodiment includes elements B and D, the subject matter of the present invention is also considered to include other remaining combinations of A, B, C, or D, even if not expressly disclosed.

[0017] Figure 1 shows one embodiment of the present invention. The light source 100 illuminates the side of the focusing waveguide 110 with a parallel light beam 120. A portion of the parallel light beam 120 is coupled into the focusing waveguide 110 as a focused light beam 130, which is guided toward the tip of the focusing waveguide 110, and the photodetector 140 measures the light intensity of the focused light beam 130.

[0018] As shown in Figure 1, the focusing waveguide 10 may be cylindrical. However, it is intended that the focusing waveguide 110 may have a tapered shape (e.g., a cylinder with a diameter that decreases along its length). The focusing waveguide 110 is intended to be an optical fiber or any other structure of any material capable of receiving and inducing waves (e.g., electromagnetic waves, acoustic waves, or particle waves). Similarly, the light source may be a source of any type of wave, such as electromagnetic waves, acoustic waves, or particle waves. Furthermore, although a light beam 120 is shown in Figure 1, any type of wave (e.g., electromagnetic waves; acoustic waves; matter waves, or any other type) is intended.

[0019] The light source 100 is mounted on a goniometer 150, which can be positioned to illuminate the waveguide 110 at different angles θ. The goniometer 150 may be used to measure the illumination angle that couples the greatest amount of light into the focusing waveguide 110. As shown in Figure 1, the illumination point 160 of the focusing waveguide 110 coincides with the axis of the goniometer 150. The light beam 120 is shown illuminating the focusing waveguide at an illumination angle θ of 50 degrees, but the illumination angle is intended to be 1 to 89 degrees, more preferably 40 to 60 degrees. In embodiments having a tapered focusing waveguide 110, it should be understood that the exact angle will vary depending on (1) the taper angle of the focusing waveguide at the illumination point, and (2) the practicality of illuminating the focusing waveguide at a steep angle.

[0020] Figure 2 shows a series of experimental results obtained with the goniometer in Figure 1. A tapered focusing waveguide, in this case an optical fiber, was irradiated at several different angles and at three different positions: x=12cm, x=16cm, and x=18cm. As shown in Figure 1, position x is measured from the end of the focusing waveguide 110 closest to the photodetector 140 to positions along the length of the focusing waveguide 100 (e.g., 12cm, 16cm, 18cm, etc.). The collected data shows that the maximum coupling angle θ into the focusing waveguide is approximately 83 degrees. Theoretically modeling this configuration reveals that this maximum coupling angle differs depending on the taper angle of the side-irradiated focusing waveguide; in other words, it is a function of the angle with respect to the normal of the side of the focusing waveguide at the irradiation point. Figure 2 also shows that the increase in the signal is exponential up to the maximum coupling angle.

[0021] Figure 3 shows the same data as in Figure 2, but with a logarithmic intensity axis, demonstrating a clear linear increase in intensity on this scale, where an exponential increase in intensity with angle is observed.

[0022] Figure 4 shows the intensity as a function of position x and irradiation angle. The highest intensity I (maximum) occurs at 139,320 Hz, at position x = 18 cm and irradiation angle θ (maximum) = 83 degrees.

[0023] Figure 5 plots the ratio Imax / I0°, which is the ratio of the maximum intensity Imax at each irradiation position x to the intensity (or normal illuminance) l0o at a 0-degree angle. According to this data, three large ratios occur at positions 17cm, 20cm, and 13cm, with values ​​of 92.56, 89.06, and 82.11, respectively, which are nearly 100 times. These distinct changes are due to the different taper angles observed along the focusing waveguide.

[0024] Figure 6 is a perspective view of a strip 270 that can be used to laterally illuminate a focusing waveguide 210 at a predetermined angle. The strip 270 has several cylindrical holes 280 at specific angles. Each of the cylindrical holes 280 is designed to carry light 285 from each light source 200 through a first end 282 to a second end 283 (from which light 285 is transmitted to the focusing waveguide 210). The light sources 200 are mounted on a support 201 that forms an array of light sources 200. The inner walls 281 of each cylindrical hole 280 are preferably intended to be polished or coated with a reflective surface to better guide light 285 from each light source 200 to the focusing waveguide 210.

[0025] As shown in Figures 2, 3, and 4, generally, the steeper the irradiation angle θ with respect to the normal of the focusing waveguide axis, the higher the degree of coupling into the focusing waveguide. In this case, although the angles of each cylindrical hole 280 are shown to be the same, it is intended that different angles can be set. Furthermore, or alternatively, the irradiation angle θ provided by the cylindrical hole 280 is intended to be between 1 and 89 degrees, more preferably between 40 and 60 degrees.

[0026] Figure 7 shows one embodiment of a strip 370 having conical holes 390 that extend from each light source 300 toward a focusing waveguide 310. It should be understood that the conical holes 390 are a better alternative to cylindrical holes 280 because they have the ability to increase the collimation of light 385 from the light sources 300. As shown in Figure 7, the diameter of the conical holes 390 increases from the first end 382 to the second end 383. The light sources 300 are mounted on a support 301 that forms an array of light sources 300. The inner walls 381 of each conical hole 390 are preferably intended to be polished or coated with a reflective surface to better guide light 385 from each light source 300 toward the focusing waveguide 310.

[0027] Figure 8A shows an oblique cylindrical irradiation waveguide (e.g., optical fiber) 410, and Figure 8B shows an oblique The diagram shows a conical irradiation waveguide (e.g., an optical fiber) 550. Its proximal ends 420 and 520 face the light source, while its terminal ends 430 and 530 face the focusing waveguide. In both cases, the proximal ends 420 and 520 are polished and are parallel to or tangent to the surface of the light source to increase the focusing from the light source; in other words, the proximal ends do not necessarily have to be flat. The terminal ends 430 and 530, on the other hand, are perpendicular to the axis of the irradiation waveguide to reduce the amount of Fresnel reflection that reduces the output of the irradiation waveguide to the focusing waveguide.

[0028] Figure 9 shows the oblique cylindrical irradiation waveguide 410 of Figure 8A, which is positioned inside the support 640 to irradiate the focusing waveguide 610. The cylindrical irradiation waveguide 410 is positioned at a predetermined angle to the side of the focusing waveguide 610 in order to increase the amount of light 685 coupled into the focusing waveguide 610. The predetermined angle is intended to be between 1 and 89 degrees, and more preferably between 40 and 60 degrees. It is shown that the light 685 propagates from the light source 600, through the cylindrical irradiation waveguide 410, and finally reaches the focusing waveguide 610. The irradiation angle θ is intended to be between 1 and 89 degrees, and more preferably between 40 and 60 degrees.

[0029] Figure 10 shows the oblique conical irradiation waveguide 550 of Figure 8B installed on the support 740. The conical irradiation waveguide 550 is positioned at a predetermined angle to the side of the focusing waveguide 710 in order to increase the amount of light 785 coupled into the focusing waveguide 710. The predetermined angle is intended to be between 1 and 89 degrees, and more preferably between 40 and 60 degrees. The conical irradiation waveguide 550 is used to irradiate the focusing waveguide 710 at a preferred irradiation angle θ, which is intended to be between 1 and 89 degrees, and more preferably between 40 and 60 degrees. As mentioned above, the conical shape of the conical irradiation waveguide 550 is useful for parallelizing the light 785 from the light source 700.

[0030] Figure 11A shows an upright cylindrical irradiation waveguide (e.g., optical fiber) 860, and Figure 11B shows an upright conical waveguide (e.g., optical fiber) 980. These waveguides have respective ends 830 and 930 that form an angle with respect to the horizontal plane. This feature is designed to refract the irradiation light at a predetermined angle with respect to the normal to the surface of the focusing waveguide. These angles, reference numerals 870 and 970, are preferably steep enough to form a high angle of incidence with respect to the normal to the surface of the focusing waveguide, and shallow enough to prevent total internal reflection of the irradiation light at the interface of each end 830 and 930. The maximum angles of reference numerals 870 and 970 depend on (1) the refractive indices of the irradiation waveguides 860 and 980, and (2) the angle of incidence of the irradiation light at ends 830 and 930. Given a refractive index of 1.5 and an incident angle of the irradiated light parallel to the axes of irradiation waveguide 860 and irradiation waveguide 980, it is intended that the angles of reference numeral 870 and reference numeral 970 do not exceed 41.8 degrees.

[0031] The upright nature of the upright irradiation waveguide allows for the use of smaller supports compared to the corresponding supports in Figures 6, 7, 9, and 10, thus highlighting the advantages of the upright irradiation waveguide.

[0032] Figures 12 and 13 show the irradiation waveguides 860 and 980 installed on their respective supports 1040 and 1140. As shown in Figures 12 and 13, light 1085 and 1185 first propagate from the light sources 1000 and 1100 along the axes of their respective irradiation waveguides (860 and 980) to their ends 830 and 930, where they change direction and head towards the focusing waveguides 1010 and 1110, resulting in irradiation at a predetermined irradiation angle θ. This irradiation angle θ is preferably between 1 and 89 degrees. The intention is for the angle to be between 40 and 60 degrees.

[0033] Figures 14A and 14B illustrate different configurations 1282 and 1384 of an irradiated waveguide (e.g., optical fiber) that combine the features of the oblique and vertical optical fibers shown in Figures 8A-B and 11A-B, respectively. In this hybrid configuration, the oblique configuration and proximal end 1220, proximal end 1320 of the waveguide in Figure 8A-B are combined with the angled end 1230, end 1330 of Figure 11A-B to further increase the irradiation angle of the focusing waveguide.

[0034] Figures 15 and 16 show the irradiation waveguides 1282 and 1384 located inside the respective supports 1440 and 1540, and the behavior of the respective irradiation light 1485 and 1585. In these figures, the light 1485 and light 1585 are a. Propagated from light source 1400 and light source 1500; b. Incident at the proximal ends 1220 and 1320 of the irradiation waveguides 1282 and 1384 at angles between 0 and 89 degrees, more preferably between 40 and 60 degrees, with respect to the proximal ends 1220 and 1320, respectively; c. Propagate through irradiation waveguides 1282 and 1384 to terminals 1230 and 1330; and, d. The light is refracted toward the surfaces of the focusing waveguides 1410 and 1510 at an angle between 1 and 89 degrees, more preferably between 40 and 60 degrees, with respect to the normal direction of the surfaces of the focusing waveguides 1410 and 1510.

[0035] Figure 17 shows an embodiment of a tilt light source 1601 that directly illuminates the focusing waveguide 1610. It should be understood that this configuration eliminates the need for a support as in other embodiments. The tilt light source 1601 is intended to be mounted on a printed circuit board. The tilt light source 1601 is mounted at a fixed angle to illuminate the focusing waveguide 1610 with light 1685 at a predetermined illumination angle θ. This illumination angle θ is intended to be between 1 and 89 degrees, more preferably between 40 and 60 degrees. It should be understood that the light 1685 is transmitted through an unbound medium. Intended unbound mediums include, but are not limited to, air, vacuum, and water.

[0036] In all the figures, it is shown that the light from the light source is parallelized, but this is not a requirement of the present invention.

[0037] As used herein and throughout the following claims, “a,” “an,” and “the” include multiple references unless the context clearly indicates otherwise. Also, as used herein, “in” includes “in” and “on” unless the context clearly indicates otherwise.

[0038] Those skilled in the art will see that many modifications other than those already described are possible without departing from the conceptual basis of the invention as described herein. Therefore, the subject matter of the present invention should not be limited except to the spirit of this disclosure. Furthermore, in interpreting this disclosure, all terms should be interpreted in the broadest sense consistent with the context. In particular, the terms “includes” and “equip” should be interpreted as referring to an element, component, or step in a non-exclusive manner, indicating that the referenced element, component, or step may exist with, be utilized in, or be combined with other elements, components, or steps not expressly referenced.

Claims

1. A system for increasing the coupling efficiency between a light source and a focusing waveguide, The light-gathering waveguide has a first end surface, a second end surface, and a side surface disposed between the first end surface and the second end surface. A light source configured to generate light, An illumination device comprising a goniometer having the aforementioned light source, configured to direct light toward the side surface of the focusing waveguide at one or more angles deviating from the normal, and A system including a detector located on the first or second end surface of the light-gathering waveguide.

2. A system for increasing the coupling efficiency between a light source and a focusing waveguide, The light-gathering waveguide has a first end surface, a second end surface, and a side surface disposed between the first end surface and the second end surface. A light source configured to generate light, A lighting device configured to direct light toward the side surface of the light-gathering waveguide at one or more angles deviating from the normal, and Includes a detector located at the first or second end surface of the focusing waveguide, The lighting device is a support for the focusing waveguide, the support having one hole positioned at an angle deviating from the normal to the side surface of the focusing waveguide, or two or more holes positioned at the same or different angles deviating from the normal to the side surface of the focusing waveguide, the holes guiding the light from the light source toward the focusing waveguide.

3. The system according to claim 2, wherein the inner wall of the hole reflects the light from the light source toward the side surface of the focusing waveguide.

4. The system according to claim 2, wherein the hole is filled with an irradiation waveguide.

5. A method for increasing the coupling efficiency between a light source and a focusing waveguide, The light-gathering waveguide has a first end surface, a second end surface, and a side surface disposed between the first end surface and the second end surface. The steps include generating light using a light source, The steps include: directing light toward the side surface of the focusing waveguide at one or more angles deviating from the normal, using an illumination device including a goniometer having the aforementioned light source; A method comprising the step of detecting the light emitted from the first or second end surface of the focusing waveguide using a detector.

6. A method for increasing the coupling efficiency between a light source and a focusing waveguide, The light-gathering waveguide has a first end surface, a second end surface, and a side surface disposed between the first end surface and the second end surface. The steps include generating light using a light source, The steps of using an illumination device to direct light toward the side surface of the focusing waveguide at one or more angles deviating from the normal, and The process includes the step of detecting the light emitted from the first or second end surface of the focusing waveguide using a detector, A method wherein the lighting device is a support for the focusing waveguide, the support having one hole positioned at an angle deviating from the normal to the side surface of the focusing waveguide, or two or more holes positioned at the same or different angles that are deviating from the normal to the side surface of the focusing waveguide, the holes guiding the light from the light source toward the focusing waveguide.

7. The method according to claim 6, wherein the inner wall of the hole reflects the light from the light source toward the side surface of the focusing waveguide.

8. The method according to claim 6, wherein the hole is filled with an irradiation waveguide.

Citation Information

Patent Citations

  • Integrated optic waveguide immunosensor

    US20020034457A1

  • A method and structure for coupling light from a light source into a planar waveguide

    WO2011119104A1

  • Optical waveguide device, photoelectric conversion device, architectural structure, electronic apparatus and light-emitting device

    WO2017061448A1

  • Light receiving device and light transmitting and receiving device

    WO2019180813A1