Medical optical fiber with tip protecting encapsulation
Patent Information
- Application Number
- JP2025135178
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-04-25
- Filing Date
- 2025-08-14
- Publication Date
- 2026-02-05
- Estimated Expiration
- 2042-04-22
AI Technical Summary
Medical optical fibers face issues with tips loosening or falling off during manufacture and use due to weak bonding between the tip and the jacket, which can affect the integrity and functionality of the fiber.
A protective tip is designed to encapsulate the optical fiber end face and jacket end face, with openings or apertures that enhance adhesion and include a material that absorbs laser energy, fragmenting or melting to allow laser energy delivery while maintaining structural integrity.
The protective tip provides high adhesion and predictable laser energy delivery, ensuring the optical fiber's functionality and structural integrity, particularly during laser activation.
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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Application Serial No. 63 / 179,487, filed April 25, 2021, entitled "Medical Optical Fiber with Protective Tip Encapsulation," which is incorporated herein by reference in its entirety. [Background technology]
[0002] Medical optical fibers typically include an optical fiber and a jacket surrounding the optical fiber. The optical fiber may have an innermost optical core and, optionally, a cladding layer surrounding the optical core. Some optical fibers may optionally include a mechanical support layer surrounding the cladding layer. Furthermore, medical optical fibers often include a jacket (or protective layer), and many may have a portion of the jacket stripped at their distal end. For example, like electrical wire, optical fibers may be stripped to expose the core of the optical fiber at their distal end. The diameter of medical optical fibers ranges from tens to hundreds of microns. Due to this small diameter, the distal section of a medical optical fiber may be sharpened or pointed.
[0003] Some medical optical fibers include a smooth tip located on the distal end to aid in passage through an endoscope. Such tip additions are designed to fracture, fragment, melt, or otherwise break when a laser pulse is activated to expose the optical fiber core. Some tips provide mechanical strength to the medical optical fiber. However, the bond between the tip and the jacket can cause the tip to loosen or fall off during manufacture and use. Summary of the Invention
[0004] The present disclosure provides a medical optical fiber including an optical fiber disposed along a longitudinal axis. The medical optical fiber further includes an optical fiber tip disposed at a distal end of the medical optical fiber, the distal end of the medical optical fiber comprising an optical fiber tip having an optical fiber endface transverse to the longitudinal axis. The optical fiber further includes an innermost optical core having an optical core endface at a center of the optical fiber endface. The medical optical fiber further includes a jacket surrounding the optical fiber, the jacket having a distal jacket endface transverse to the longitudinal axis, the jacket including at least one opening or aperture.
[0005] Also provided herein is a protective tip that encapsulates the optical fiber end face and the jacket end face, the protective tip overlapping the plurality of openings, hi some embodiments, the protective tip substantially contacts the inner surfaces of the plurality of openings to provide high adhesion of the protective tip to the medical optical fiber.
[0006] In some embodiments, the predetermined number of openings can be any depth up to and including the full depth of the jacket. The medical fiber optic openings can be any geometric shape or volume. The predetermined number of medical fiber optic openings can include opening sidewalls, and the opening sidewalls can be any geometric shape. Furthermore, the predetermined number of medical fiber optic openings can include volumes of any geometric volume.
[0007] In some embodiments, the medical optical fiber includes a plurality of openings, each of which is at a different depth and / or has a different geometric shape within the jacket. In some embodiments, within the plurality of openings, the openings are co-axial with the longitudinal axis. The openings of the medical optical fiber can extend from the jacket end face. In other embodiments, the openings of the medical optical fiber are transverse to the longitudinal axis.
[0008] In some embodiments, the protective tip is made of a material that absorbs laser energy and undergoes one or more of fragmentation and melting, such that upon delivery of laser energy through the medical optical fiber, at least a portion of the front end protective tip surface forward of the optical fiber end face fragments or melts to enable delivery of laser energy through the optical core end face to the internal organ.
[0009] To easily identify the discussion of any element or operation, the most significant digit(s) of a reference number refers to the figure number in which that element is first introduced. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 illustrates a medical optical fiber according to at least one embodiment. [Figure 2A] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 2B] FIG. 2B is an alternative view of the medical optical fiber of FIG. 2A. [Figure 3] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 4] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 5] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 6A] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 6B] FIG. 1 illustrates another medical optical fiber according to at least one embodiment. [Figure 7] 1 shows a medical optical fiber. [Figure 8] 1A-1D illustrate a manufacturing method according to at least one embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0011] 1 shows a medical optical fiber 100 having an optical fiber 102 and a jacket 104. The optical fiber 102 has an end face 108 and the jacket 104 has an end face 110, each at a distal end 106 of the medical optical fiber 100. The medical optical fiber 100 further includes a protected tip 112 having a trailing protected tip face 114 disposed at the distal end 106 of the medical optical fiber 100. In some embodiments, the protected tip 112 overlaps a portion of the jacket 104 at the distal end 106. In particular, the protected tip 112 overlaps a portion of the jacket 104 to cover the jacket 104 and the end face 110 and protect the end face.
[0012] The end face 110 of the jacket 104 is spaced apart from the jacket 104 of the optical fiber 102 along the longitudinal axis 116 by a length L1 118. In some embodiments, the length L1 118 is between about 400 and 500 micrometers (μm). Generally, the protective tip 112 can be manufactured and / or provided on the medical optical fiber 100 using any of a variety of conventional manufacturing techniques that do not interfere with its structure or operation. Such conventional manufacturing techniques include, but are not limited to, adhesive bonding, curing, and the like.
[0013] The jacket 104 includes an opening or aperture 120. The opening 120 can be formed in a variety of shapes and orientations. In some embodiments, the opening 120 comprises one or more grooves that extend transverse to the longitudinal axis, or rather circumferentially around the medical optical fiber 100, when viewed from the distal end 106. In some examples, the jacket 104 can include multiple openings 120. The multiple openings 120 can be the same or different shapes or volumes. Additionally, the openings 120 can be formed at various depths within the jacket 104.
[0014] In some embodiments, the openings or holes 120 in the jacket 104 can be prepared by steps including, but not limited to, chemical etching, laser etching, physical stripping, or any combination thereof. In some embodiments, the peripheral surface of the jacket 104 is prepared (e.g., scratched, sanded, or the like) to present a surface with higher adhesive capacity. Some jacket materials, such as Teflon, have low adhesive capacity.
[0015] In some embodiments, the medical optical fiber 100 further comprises a cladding layer 124 and a mechanical support layer 122. In some embodiments, the protected tip 112 is attached to the medical optical fiber 100 through at least one opening 120. That is, the protected tip 112 is attached to and contacts the mechanical support layer 122 through the opening 120. In some embodiments, the opening 120 can be made through the mechanical support layer 122 such that the cladding layer 124 is exposed. In such embodiments, the protected tip 112 is attached to and contacts the cladding layer 124 through the opening 120. Contact of the protective tip material on the mechanical support layer 122 and / or cladding layer 124 can have greater adhesive strength than contact to the jacket 104 alone.
[0016] 2A and 2B illustrate a medical optical fiber 200 that may include elements similar to those of the medical optical fiber 100 depicted in FIG. 1. However, the medical optical fiber 200 differs from the medical optical fiber 100 in that the medical optical fiber 200 includes a groove 202 formed in the jacket 104. The groove 202 extends from the distal end 106 along the longitudinal axis 116. The groove 202 may be positioned to expose the mechanical support layer 122 and / or the mechanical support cladding layer 124. In some examples, a single groove 202 is provided. In other examples, multiple grooves 202 are provided.
[0017] The protected tip 112 is positioned on the distal end 106 of the medical optical fiber 200 and overlaps a portion of the jacket 104, such that the protected tip 112 overlaps or covers the groove 202. For example, FIG. 2B shows a cutaway view from the distal end 106 along the cut line 204. As can be seen, the protected tip 112 contacts the mechanical support layer 122 through the groove 202, providing a connection of the protected tip 112 to the jacket 104.
[0018] FIG. 3 illustrates a medical optical fiber 300 comprising an optical fiber 102, a cladding layer 124, and a jacket 104. The medical optical fiber 300 further includes a plurality of apertures 120 formed at different locations along the jacket 104. As discussed above, the apertures 120 can be formed circumferentially around the medical optical fiber 300. Additionally, the apertures 120 can have different depths. For example, different depths D1 302 and D2 304 are shown. In some embodiments, the apertures 120 can have the same depth, while another or other apertures 120 can have different depths. In some embodiments, one or more of the apertures 120 are formed to a depth D1 302 that reaches or contacts the cladding layer 124, while one or more other apertures 120 are formed to a depth D2 304 that does not reach or contact the cladding layer 124.
[0019] In some embodiments, the aperture 120 can have sidewalls of different shapes or configurations. For example, FIG. 4 shows a medical optical fiber 400 including an optical fiber 102, a cladding layer 124, a jacket 104, and an aperture 120 formed in the jacket 104. The aperture 120 has sidewalls 402 that can have a variety of shapes. As a particular example, the sidewalls 402 can be curved. As another example, the sidewalls 402 can be undercut such that the aperture 120 is wider at the bottom of the aperture 120 than at the top of the aperture 120.
[0020] 5 illustrates a medical optical fiber 500 showing a jacket 104 surrounding the optical fiber 102. The medical optical fiber 500 further includes a plurality of openings 120 formed in the jacket 104. In this example, the openings 120 are formed to have different geometric shapes. Although not specifically depicted in this figure, the openings 120 may have different depths or volumes. Furthermore, although each of the openings 120 is shown as having a different geometric shape, the openings 120 may have the same geometric shape or any combination of the same and different geometric shapes.
[0021] Figures 6A and 6B show medical optical fiber 600a and medical optical fiber 600b, respectively. Medical optical fiber 600a and medical optical fiber 600b are depicted with protective tips 112 having different elongated spherical shapes. In general, protective tips 112 can be formed to have any of a variety of lengths. For example, medical optical fiber 600a depicted in Figure 6A shows a protective tip 112 having a length L2 602, while medical optical fiber 600b depicted in Figure 6B shows a protective tip 112 having a length L3 604 that is longer than length L2 602.
[0022] In some embodiments, the length of the protective tip 112 can be arranged such that the protective tip 112 extends from the distal end 106 toward the proximal end sufficiently to cover or overlap the opening 120 in the jacket 104.
[0023] FIG. 7 illustrates a medical optical fiber 700. The medical optical fiber 700 includes a protected tip 112 formed at the distal end 106 of the medical optical fiber 700. Furthermore, the protected tip 112 includes a blunt distal portion 702. In some embodiments, the distal end 106 of the protected tip 112 can be flattened or blunted to form the blunt distal portion 702. In some specific embodiments, the blunt distal portion 702 is flattened to be 100-150 micrometers away from the end face 108 of the optical fiber 102. An advantage of the blunt distal portion 702 is that it increases the predictability of the output of laser radiation from the end face 108 of the optical fiber 102. For example, whereas in other embodiments discussed herein, the first few pulses of laser radiation open or form a passageway through the protected tip 112, the use of the blunt distal portion 702 allows the passageway to open in a shorter time, requiring less laser radiation to open the passageway.
[0024] 8 illustrates a method 800 for manufacturing a medical optical fiber. Method 800 can be performed to manufacture a medical optical fiber, such as medical optical fiber 100, medical optical fiber 200, medical optical fiber 300, medical optical fiber 400, medical optical fiber 500, medical optical fiber 600a, and medical optical fiber 600b, as described herein. Method 800 can begin at block 802. At block 802, "Provide a Medical Optical Fiber," a medical optical fiber can be provided. In some examples, the prepared medical optical fiber can include an optical fiber 102 surrounded or enclosed by a jacket 104. The provided medical optical fiber can further include a mechanical support layer 122 and / or a cladding layer 124. The optical fiber 102 and jacket 104 have end faces (e.g., end faces 108 and 110, respectively) formed at a distal end 106 of the provided medical optical fiber.
[0025] Proceeding to block 804, "Form an opening or aperture in the jacket of the medical optical fiber," an opening is formed in the jacket of the provided medical optical fiber. For example, an opening 120 may be formed in the jacket 104 proximate the end face 110 or the distal end 106. The opening or aperture 120 may be formed by laser etching, acid etching, cutting, grinding, or the like.
[0026] Proceeding to block 806 "Attach a Protective Tip to the Medical Optical Fiber so that the Protective Tip Overlies the Opening," the protective tip can be attached to the medical optical fiber so that it overlaps the opening. For example, the protective tip 112 can be attached to the distal end 106 of the medical optical fiber so that the protective tip 112 overlaps or covers the opening 120. In some embodiments, the protective tip 112 completely covers and fills the opening 120.
[0027] In the discussion, unless otherwise indicated, adjectives such as "substantially" and "about" modifying a condition or relationship characteristic of one or more features of an embodiment of the present disclosure are understood to mean that the condition or characteristic is defined within a tolerance allowed for operation of the embodiment for its intended use. Unless otherwise indicated, the term "or" in this specification and claims is considered to be an inclusive "or" rather than an exclusive "or" and indicates at least one or any combination of the items it conjugates.
[0028] While the presented concepts have been described with respect to a limited number of embodiments, it will be understood that many variations, modifications, and other applications of the present disclosure can be made without departing from the scope of the appended claims. [Explanation of symbols]
[0029] 100 Medical Optical Fiber 102 Optical Fiber 104 Jacket 106 Distal end 108 End face 110 End face 112 Protective Tip 114 End protection tip surface 116 Longitudinal axis 118 Length L1 120 opening 122 Mechanical support layer 124 Cladding layer
Claims
1. A medical optical fiber, an optical fiber core having an optical fiber end face at a distal end of the medical optical fiber; a jacket surrounding the optical fiber core; a protective tip encapsulating the optical fiber end face and extending longitudinally from the distal end of the medical optical fiber toward the proximal end of the medical optical fiber; a medical optical fiber, the protective tip comprising a flattened distal end configured to fracture, fragment, melt, or otherwise open a passageway in response to laser energy to enable delivery of laser energy through the optical fiber end face.
2. The medical optical fiber of claim 1 , wherein the flattened distal end is located a predetermined distance from the optical fiber end face.
3. The medical optical fiber of claim 2, wherein the predetermined distance is between about 100 micrometers and 150 micrometers.
4. 10. The medical optical fiber of claim 1, wherein the protective tip comprises a material that absorbs laser energy and fragments or melts upon delivery of laser energy.
5. The medical optical fiber of claim 1 , further comprising a cladding layer disposed between the optical fiber core and the jacket.
6. The medical optical fiber of claim 1 , wherein the protective tip overlaps the distal end face of the jacket.
7. The medical optical fiber of claim 1 , wherein the flattened distal end forms a blunt distal portion prior to laser activation.
8. The medical optical fiber of claim 1 , wherein the blunt distal portion increases the predictability of the output of laser radiation from the optical fiber end face.
9. The medical optical fiber of claim 1 , wherein the protective tip provides mechanical protection to the distal end of the medical optical fiber prior to laser activation.
10. 1. A medical laser system comprising: a laser console configured to generate laser energy; a medical optical fiber coupled to the laser console, the medical optical fiber comprising: an optical fiber core having an optical fiber end face at a distal end; a jacket surrounding the optical fiber core; a medical optical fiber, the medical optical fiber comprising: a protective tip encapsulating the optical fiber end face and extending longitudinally from the distal end of the medical optical fiber; a medical laser system, wherein the protective tip comprises a flattened distal end configured to fracture, fragment, melt, or otherwise open a passageway in response to laser energy delivered from the laser console.
11. 11. The medical laser system of claim 10, wherein the laser console is configured to deliver pulses of laser energy.
12. 11. The medical laser system of claim 10, wherein the laser console is configured to deliver laser energy for lithotripsy or tissue ablation.
13. 11. The medical laser system of claim 10, wherein the flattened distal end is located between about 100 micrometers and 150 micrometers from the optical fiber end face.
14. 11. The medical laser system of claim 10, wherein the protective tip is configured to spall or melt upon initial delivery of a laser pulse.
15. 11. The medical laser system of claim 10, wherein the blunt distal portion reduces variability in laser energy delivery during initial laser operation.
16. 1. A method for delivering laser energy using a medical optical fiber, comprising: providing a medical optical fiber comprising an optical fiber core surrounded by a jacket and a protective tip encapsulating the optical fiber end face at a distal end of the medical optical fiber; transmitting laser energy from a laser console through the medical optical fiber; fracturing, fragmenting, or melting the protective tip in response to the delivered laser energy to open a passageway through the flattened distal end of the protective tip to enable delivery of laser energy through the optical fiber end face to the target tissue or stone.
17. 17. The method of claim 16, wherein the flattened distal end is located between about 100 micrometers and 150 micrometers from the optical fiber end face.
18. 17. The method of claim 16, wherein opening the passageway occurs upon initial delivery of the laser pulse.
19. 17. The method of claim 16, wherein the protective tip absorbs laser energy and fragments or melts to expose the optical fiber end face.
20. 17. The method of claim 16, wherein the flattened distal end increases the predictability of laser energy delivery compared to a rounded distal tip.