Low-loss hollow-core antiresonant fiber
11209591 · 2021-12-28
Inventors
Cpc classification
International classification
Abstract
Disclosed is an ultralow loss hollow-core antiresonant fiber, which includes an outer layer structure, a hollow-core area and a plurality of closed cavities. The radial section of the inner surface of the outer layer structure is a circle with a first radius. In the circumferential direction of the inner surface of the outer layer structure, the plurality of the closed cavities are spaced from one another and are distributed uniformly and circumferentially. Each closed cavity includes: an outermost wall serving as a first thin wall, and the radial section of the outermost wall is a fan shape or a circle with a second radius. Each closed cavity further includes: second thin walls located in the inner space surrounded by the inner surface of the outermost wall, and the end surfaces of the second thin walls are annular thin-walled structures with thin-walled spacers arranged in the centers.
Claims
1. A low-loss hollow-core antiresonant fiber, comprising: in the radial direction from the outside to the inside of the fiber, an outer layer structure, and a hollow-core area and a plurality of closed cavities, except for the hollow-core area, with the same structure located in the inner space surrounded by the inner surface of the outer layer structure, wherein the radial section of the inner surface of the outer layer structure is a circle with a first radius; in the circumferential direction of the inner surface of the outer layer structure, the plurality of the closed cavities are spaced from one another and are distributed uniformly and circumferentially; each closed cavity comprises: an outermost wall serving as a first thin wall, and the radial section of the outermost wall is a fan shape or a circle with a second radius; each closed cavity further comprises: second thin walls located in the inner space surrounded by the inner surface of the outermost wall, and the end surfaces of the second thin walls are annular thin-walled structures with thin-walled spacers arranged in the centers.
2. The fiber according to claim 1, wherein preferably, when the radial section of the first thin wall is a fan shape with a second radius, the end surfaces of the second thin walls alternatively select concentric and fan-shaped thin-walled structures with outward openings.
3. The fiber according to claim 1, wherein when the radial section of the first thin wall is a fan shape with a second radius, the end surfaces of the second thin walls alternatively select nested casings.
4. The optical cable according to claim 1, wherein when the radial section of the first thin wall is a fan shape with a second radius, the number of the second thin walls is two.
5. The fiber according to claim 1, wherein when the radial section of the first thin wall is a fan shape with a second radius, the number of the second thin walls is two, and the end surfaces of the second thin walls alternatively select two annular thin-walled structures that are not in contact with each other.
6. The fiber according to claim 1, wherein for any two of the plurality of the closed cavities, the wall thicknesses of the first thin walls of the two closed cavities are not equal.
7. The optical cable according to claim 1, wherein for any two of the plurality of the closed cavities, the wall thicknesses of the first thin walls of the two closed cavities are equal.
8. The fiber according to claim 1, wherein for any two of the plurality of the closed cavities, the wall thicknesses of the second thin walls of the two closed cavities are equal.
9. The fiber according to claim 1, wherein the second radius is greater than the radius of the fiber core of the fiber.
10. The fiber according to claim 2, wherein the minimal radius of the concentric fan-shaped thin-walled structures is less than the radius of the fiber core of the fiber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(11) To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the following clearly and completely describes the technical solutions in the embodiments of the present disclosure with reference to the accompanying drawings in the embodiments of the present disclosure. Apparently, the described embodiments are part rather than all of the embodiments of the present disclosure. On the basis of the embodiments of the present disclosure, all other embodiments obtained on the of premise of no creative work of those of ordinary skill in the art fall within the scope of protection of the present disclosure.
(12) The following further describes the present disclosure in detail with reference to accompanying drawings:
(13) In one embodiment, the present disclosure discloses a low-loss hollow-core antiresonant fiber:
(14) In the radial direction from the outside to the inside of the fiber, the fiber includes an outer layer structure, and a hollow-core area and a plurality of closed cavities, except for the hollow-core area, with the same structure located in the inner space surrounded by the inner surface of the outer layer structure.
(15) The radial section of the inner surface of the outer layer structure is a circle with a first radius.
(16) In the circumferential direction of the inner surface of the outer layer structure, the plurality of the closed cavities are spaced from one another and are distributed uniformly and circumferentially.
(17) Each closed cavity includes: an outermost wall serving as a first thin wall, and its radial section is a fan shape or a circle with a second radius.
(18) Each closed cavity further includes: second thin walls located in the inner space surrounded by the inner surface of the outermost wall, and the end surfaces of the second thin walls are annular thin-walled structures with thin-walled spacers arranged in the centers.
(19) For the above-mentioned embodiment, its core technical contribution lies in the inner space surrounded by the inner surface of the outer layer structure, specifically, the hollow-core area and the plurality of closed cavities, except for the hollow-core area, with the same structure. It can be understood that the fiber core medium of the hollow-core fiber includes a gas or vacuum, and in some cases, may be a liquid with lower refractive index than that of the medium (for example, silica, soft glass or plastics) adopted by any one of the thin films.
(20) Referring to
(21) In terms of
(22) Further referring to
(23) Further, it can be understood that the key of the present disclosure is the plurality of walls and their designs. As for the first thin wall closest to the fiber core, whether its radial section is fan-shaped or circular is not the key, because a symmetrical wall is formed no matter it is fan-shaped or circular. In the case that other structures are unchanged, the difference between the fan shape and the circle is only the specific performance difference of low loss.
(24) Referring to
(25) In addition, there are five closed cavities in
(26) Referring to
(27) The following
(28) Referring to
(29) when the radial section of the first thin wall is a fan shape with the second radius, the end surfaces of the second thin walls alternatively select concentric fan-shaped thin-walled structures with outward openings.
(30) It should be noted that the radial, outward, inner, outer, and the like in the present disclosure are all relative to the axial direction of the fiber or the direction from the outside to the inside of the fiber. It can be understood that outward may also be understood as outward relative to the center of the fiber.
(31) In terms of
(32) It should be noted that the plurality of concentric fan-shaped thin walls of the second thin walls are concentric, and
(33) Referring to
(34) when the radial section of the first thin wall is a fan shape with a second radius, the end surfaces of the second thin walls alternatively select nested casings.
(35) It can be understood in combination with
(36) In another embodiment,
(37) when the radial section of the first thin wall is a fan shape with a second radius, the number of the second thin walls is two.
(38) Preferably,
(39) when the radial section of the first thin wall is a fan shape with a second radius, the number of the second thin walls is two, and the end surfaces of the second thin walls substitutively select two annular thin-walled structures that are not in contact with each other.
(40) In terms of different specific embodiments with two thin walls, referring to
(41) In
(42) It should be noted that, for the above embodiments with two second thin walls, the two thin walls are not in contact with each other.
(43) In another embodiment,
(44) for any two of the plurality of the closed cavities, the wall thicknesses of the first thin walls of the two closed cavities are not equal.
(45) For the present embodiment, the forgoing relevant schematic diagrams and its structures also disclose this situation. However, it should be noted that, the wall thicknesses may also be equal. Whether the wall thicknesses are equal or not will affect the performance of low loss to some extent, but it does not hinder the achievement of a low-loss hollow-core antiresonant fiber.
(46) That is to say,
(47) for any two of the plurality of the closed cavities, the wall thicknesses of the first thin walls of the two closed cavities are equal.
(48) In addition, in another embodiment,
(49) for any two closed cavities, the wall thicknesses of the second thin walls of the two closed cavities are equal.
(50) In another embodiment,
(51) the second radius is greater than the radius of the fiber core of the fiber.
(52) In another embodiment,
(53) the minimal radius of the concentric fan-shaped thin-walled structures is less than the radius of the fiber core of the fiber.
(54) It should be noted that for the above-mentioned wall thickness, radius sizes, and the like, obviously, the bottom line principle of the hollow-core antiresonant fiber is to realize the antiresonance.
(55) In addition, the wall thicknesses of all thin walls are as equal as possible, which helps to realize lower loss.
(56) Furthermore, in the case that various wall thicknesses are equal, the arc radius and/or arc length corresponding to the first thin wall and the second thin wall can be further reduced, and meanwhile, the fiber core can be increased correspondingly. This can further reduce the loss of the fiber. Because of these and the forgoing parameter principles, there is no need to deliberately emphasize all parameters of each structural diagram in
(57) In additional embodiment,
(58) the shape and the number of layers can be adjusted according to requirements and a second preparation direction.
(59) In conclusion, the fiber of the present disclosure is simple and reasonable in structure and can meet low transmission loss, for example, the loss less than 1 dB/km. In addition, the fiber structure of the present disclosure can further realize ultra-low transmission loss, for example, referring to forgoing description, the ultra-low transmission loss less than 1 dB/km, and even less than 0.1 dB/km can be reached.
(60) The above descriptions are merely embodiments of the present disclosure, but are not intended to limit the present disclosure. For those skilled in the art, the present disclosure may have various modifications and variations. Any modification, equivalent replacement, improvement or the like made within the spirit and principle of the present disclosure shall fall within the scope of protection of the present disclosure.