Anti-resonant hollow core optical fiber having multiple resonant layers
11009654 · 2021-05-18
Assignee
Inventors
Cpc classification
B82Y20/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An anti-resonant hollow core optical fiber having multiple resonant layers. The optical fiber comprises a low-refractive index core region (1) and a high-refractive index cladding region. The high-refractive index cladding region comprises an inner cladding region (4) and an outer cladding region (5). The outer cladding region (5) clads the inner cladding region (4) and the core region (1). The inner cladding region (4) comprises a first anti-resonant layer (2) and a second anti-resonant layer (3), and the first anti-resonant layer (2) and the second anti-resonant layer (3) surround the core region (1); and the first anti-resonant layer (2) comprises several layers of microcapillary tubes, and the second anti-resonant layer (3) supports the first anti-resonant layer (2). The optical fiber adopts a double-cladding structure and uses two or more anti-resonant layers such that theoretically simulated loss is reduced to 0.1 dB/km, and has the features of ultralow transmission loss, wide spectral bandwidth, low bending loss, low transmission loss, high damage threshold and single-mode transmission.
Claims
1. An anti-resonant hollow core optical fiber, comprising a low-refractive index core region and a high-refractive index cladding region, wherein the high-refractive index cladding region comprises an inner cladding region and an outer cladding region, the outer cladding region clads the inner cladding region and a fiber core region, the inner cladding region comprises a first anti-resonant layer and a second anti-resonant layer, and the first anti-resonant layer and the second anti-resonant layer surround the fiber core region; the first anti-resonant layer comprises several layers of microcapillary tubes, and the second anti-resonant layer supports the first anti-resonant layer, wherein the second anti-resonant layer is an annular capillary tube or a rectangular tube, and the second anti-resonant layer is provided between adjacent two layers of the first anti-resonant layers and is tangent to each microcapillary tube in the two layers of the first anti-resonant layers.
2. The anti-resonant hollow core optical fiber according to claim 1, wherein the high-refractive index cladding region comprises silicon dioxide, soft glass or plastic.
3. The anti-resonant hollow core optical fiber according to claim 1, wherein the microcapillary tubes in each layer of microcapillary tubes form a ring-distributed structure, and each microcapillary tube in the innermost ring of microcapillary tubes does not contact each other.
4. The anti-resonant hollow core optical fiber according to claim 1, wherein the second anti-resonant layer is further provided with a supporting component for supporting the adjacent two layers of the first anti-resonant layers, the supporting component is provided at a position other than the tangent point between the second anti-resonant layer and the microcapillary tube, and several microcapillary tubes having a support function are provided between the outermost second anti-resonant layer and the outer cladding region.
5. The anti-resonant hollow core optical fiber according to claim 1, wherein the first anti-resonant layer comprises two layers, and the microcapillary tube is further provided with several layers of straight-line-type thin walls, wherein the several layers of straight-line-type thin walls are provided in parallel inside the microcapillary tube.
6. The anti-resonant hollow core optical fiber according to claim 5, wherein a cross-section of the innermost microcapillary tube is a circle or an ellipse.
7. The anti-resonant hollow core optical fiber according to claim 5, wherein the straight-line-type thin wall is a linear-structured quartz wall with a thickness of about 100 nm to 5000 nm, and the quartz wall is embedded in the innermost capillary tube.
8. The anti-resonant hollow core optical fiber according to claim 1, wherein the innermost microcapillary tube in the first anti-resonant layer has a negative curvature shape.
9. The anti-resonant hollow core optical fiber according to claim 1, wherein a distance between the circle centers of adjacent two microcapillary tubes in the first anti-resonant layer is no less than 10 μm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(8) The specific implementation modes of the invention will be further described in detail below in conjunction with the drawings and embodiments. The embodiments below are provided for illustrating the invention, rather than limiting the scope of the invention.
(9) An anti-resonant hollow core optical fiber includes a low-refractive index core region and a high-refractive index cladding region, wherein the high-refractive index cladding region includes an inner cladding region and an outer cladding region, the outer cladding region dads the inner cladding region and the fiber core region, the inner cladding region includes a first anti-resonant layer and a second anti-resonant layer, and the first anti-resonant layer and the second anti-resonant layer surround the fiber core region; the first anti-resonant layer includes several layers of microcapillary tubes, and the second anti-resonant layer supports the first anti-resonant layer.
(10) The high-refractive index cladding region comprises silicon dioxide, soft glass or plastic.
(11) The microcapillary, tubes in each layer of microcapillary tubes form a ring-distributed structure, and each microcapillary tube in the innermost ring of microcapillary tubes does not contact each other.
Embodiment 1
(12) As shown in
(13) In this embodiment, the low-refractive index fiber care region is filled with one or more gases, or is vacuum.
(14) In this embodiment, the high-refractive index cladding region comprises silicon dioxide, soft glass or plastic. The microcapillary tube has a negative curvature shape, and the thickness thereof is in the same order of magnitude as the operating wavelength of the laser to be transmitted.
(15) In this embodiment, the distance between the circle center of a microcapillary tube and the circle center of an adjacent microcapillary tube is at least 10 μm.
(16) In this embodiment, in the first anti-resonant layer 2, each microcapillary tube is further provided with one straight-line-type thin wall 3, the straight-line-type thin wall 3 is distributed in parallel inside the microcapillary tube, and the connecting line of the center point of the cross-section of the straight-line-type thin wall 3 and the circle center of the outer cladding region 5 passes through the circle center or center of the microcapillary tube.
(17) In this embodiment, the straight-line-type thin walls 3 are, several linear-structured quartz walls with a thickness of 100 nm to 5000 nm, and the quartz walls are embedded inside the microcapillary tube.
Embodiment 2
(18) As shown in
(19) In this embodiment, the low-refractive index fiber core region is filled, with one or more gases, or is vacuum.
(20) In this embodiment the high-refractive index cladding region comprises silicon dioxide, soft glass or plastic. The microcapillary tube has a negative curvature shape, and the thickness thereof is in the same order of magnitude as the operating wavelength of the laser to be transmitted.
(21) In this embodiment, the distance between the circle center of a microcapillary tube and the circle center of an adjacent microcapillary tube is at least 10 μm.
(22) In this embodiment, in the first anti-resonant layer 2, each microcapillary tube is further provided with two straight-line-type thin walls 3, and except that there are two straight-line-type thin walls 3, the other structure is the same as Embodiment 1. The two straight-line-type thin walls 3 are distributed in parallel inside the microcapillary tube, and the connecting line of the center point of the cross-section of the straight-line-type thin wall 3 and the circle center of the outer cladding passes through the circle center or center of the microcapillary tube.
(23) In this embodiment, the straight-line-type thin walls 3 are several linear-structured quartz walls with a thickness of 100 nm to 5000 nm, and the quartz walls are embedded inside the microcapillary tube.
Embodiment 3
(24) In this embodiment, except that there are several straight-line-type thin walls distributed inside the microcapillary tube, the other characteristics are the same as Embodiment 1 and Embodiment 2, and no repeated description will be given here.
Embodiment 4
(25) As shown in
Embodiment 5
(26) As shown in
(27) In this embodiment, the low-refractive index core region is filled with one or more gases, or is vacuum.
(28) In this embodiment, the microcapillary tubes do not contact each other and form an annular structure without nodes or contacts, and the microcapillary tubes have a negative curvature shape, and the thickness of the microcapillary tubes is in the same order of magnitude as the laser to be transmitted.
(29) In this embodiment, the distance between the circle center of a microcapillary tube and the circle center of an adjacent microcapillary tube is at least 10 μm.
(30) In this embodiment, there further includes a second anti-resonant layer 3. The second anti-resonant layer 3 is an annular capillary tube. As shown in
(31) In this embodiment, the second anti-resonant layer 3 is further provided with a supporting component for supporting the adjacent two layers of the first anti-resonant layers 2, and the supporting component is provided at a position other than the tangent point between the second anti-resonant layer 2 and the microcapillary tube.
(32) In this embodiment, the cross-section of the microcapillary tube is a circle.
(33) In this embodiment, the innermost microcapillary tube in the first anti-resonant layer 2 has a negative curvature shape.
(34) In this embodiment the distance between the circle centers of adjacent two microcapillary tubes in the first anti-resonant layer 2 is no less than 10 μm, the second anti-resonant layer 2 is an annular structure with a thickness similar to that of the microcapillary tube and a material the same as that of the microcapillary tube. The thickness is about 200 nm to 5000 nm.
Embodiment 6
(35) As shown in
(36) In this embodiment, the low-refractive index core region is filled with one or more gases, or is vacuum.
(37) In this embodiment, the microcapillary tubes do not contact each other and form an annular structure without nodes or contacts, and the microcapillary tubes have a negative curvature shape, and the thickness of the microcapillary tubes is on the same order of magnitude as the laser to be transmitted.
(38) In this embodiment. the distance between the circle center of a microcapillary tube and the circle center of an adjacent microcapillary tube is at least 10 μm.
(39) In this embodiment, there further includes a second anti-resonant layer. The second anti-resonant layer is an annular capillary tube. As shown in
(40) In this embodiment, the second anti-resonant layer 3 is further provided with a supporting component for supporting the adjacent two first anti-resonant layers 2, and the supporting component is provided at a position other than the tangent point between the second anti-resonant layer 3 and the microcapillary tube.
(41) In this embodiment, the cross-section of the microcapillary tube is a circle.
(42) In this embodiment, the innermost microcapillary tube in the first anti-resonant layer 2 has a negative curvature shape.
(43) In this embodiment, the distance between the circle centers of adjacent two microcapillary tubes in the first anti-resonant layer 2 is no less than 10 μm.
Embodiment 7
(44) In this embodiment, an anti-resonant hollow core optical fiber includes a low-refractive index core region and a high-refractive index cladding region, wherein the high-refractive index cladding region includes an inner cladding region and an outer cladding region, and the outer cladding region clads the inner cladding region and the fiber core region. The inner cladding region includes a first anti-resonant layer and a second anti-resonant layer, and the first anti-resonant layer and the second anti-resonant layer surround the fiber core region. The first anti-resonant layer includes several layers of microcapillary tubes, and the second anti-resonant layer supports the first anti-resonant layer.
(45) The second anti-resonant layer is an annular capillary tube or a rectangular tube, and the second anti-resonant layer is provided between adjacent two first anti-resonant layers and is tangent to each microcapillary tube in the two first anti-resonant layers.
(46) In this embodiment, the second anti-resonant layer is further provided with a supporting component for supporting the adjacent two first anti-resonant layers. The supporting, component is provided at a position other than the tangent point between the second anti-resonant layer and the microcapillary tube, and several microcapillary tubes with a support function are provided between the outermost second anti-resonant layer and the outer cladding region,
Embodiment 8
(47) As shown in
Embodiment 9
(48) As shown in
(49) In conclusion, the invention puts, forwards an anti-resonant hollow core optical fiber having multiple resonant layers, wherein a first anti-resonant layer and a second anti-resonant layer are provided in the inner cladding region of the optical fiber. By employing a double-cladding structure and using two or more anti-resonant layers, theoretically-simulated loss can be lowered to 0.1 dB/km, thereby achieving the features of ultralow transmission loss, wide spectral bandwidth, low bending loss, low transmission loss, high laser induced damage threshold and single-mode transmission. At the same time, a high-efficiency and high-sensitivity ideal platform may be created for leading-edge applications such as nonlinear frequency conversion, gas/liquid trace detection and high-power pulse compression, etc.
(50) Finally, the method according to the invention merely shows a preferred implementation mode, rather than limiting the protection scope of the invention. Therefore, all modifications, equivalent substitutions and improvements made without departing from the spirit and principle of the invention should fall into the protection scope of the invention.