EP4609242A1 - Anti-resonant hollow-core fibers featuring support structures - Google Patents
Anti-resonant hollow-core fibers featuring support structuresInfo
- Publication number
- EP4609242A1 EP4609242A1 EP24804391.1A EP24804391A EP4609242A1 EP 4609242 A1 EP4609242 A1 EP 4609242A1 EP 24804391 A EP24804391 A EP 24804391A EP 4609242 A1 EP4609242 A1 EP 4609242A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- elements
- optical fiber
- support structures
- hcf
- cross
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
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Classifications
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03B—MANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
- C03B37/00—Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
- C03B37/01—Manufacture of glass fibres or filaments
- C03B37/012—Manufacture of preforms for drawing fibres or filaments
- C03B37/01205—Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments
- C03B37/01211—Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments by inserting one or more rods or tubes into a tube
- C03B37/0122—Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments by inserting one or more rods or tubes into a tube for making preforms of photonic crystal, microstructured or holey optical fibres
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/02—Optical fibres with cladding with or without a coating
- G02B6/02042—Multicore optical fibres
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/02—Optical fibres with cladding with or without a coating
- G02B6/02295—Microstructured optical fibre
- G02B6/02314—Plurality of longitudinal structures extending along optical fibre axis, e.g. holes
- G02B6/02319—Plurality of longitudinal structures extending along optical fibre axis, e.g. holes characterised by core or core-cladding interface features
- G02B6/02323—Core having lower refractive index than cladding, e.g. photonic band gap guiding
- G02B6/02328—Hollow or gas filled core
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/44—Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03B—MANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
- C03B2203/00—Fibre product details, e.g. structure, shape
- C03B2203/10—Internal structure or shape details
- C03B2203/14—Non-solid, i.e. hollow products, e.g. hollow clad or with core-clad interface
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03B—MANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
- C03B2203/00—Fibre product details, e.g. structure, shape
- C03B2203/10—Internal structure or shape details
- C03B2203/14—Non-solid, i.e. hollow products, e.g. hollow clad or with core-clad interface
- C03B2203/16—Hollow core
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03B—MANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
- C03B2203/00—Fibre product details, e.g. structure, shape
- C03B2203/42—Photonic crystal fibres, e.g. fibres using the photonic bandgap PBG effect, microstructured or holey optical fibres
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/02—Optical fibres with cladding with or without a coating
- G02B6/02295—Microstructured optical fibre
- G02B6/02314—Plurality of longitudinal structures extending along optical fibre axis, e.g. holes
- G02B6/02342—Plurality of longitudinal structures extending along optical fibre axis, e.g. holes characterised by cladding features, i.e. light confining region
- G02B6/02371—Cross section of longitudinal structures is non-circular
Definitions
- the present disclosure relates generally to optical fiber designs and, more particularly, to designs of anti-resonant hollow core fibers.
- Anti-resonant (AR) hollow core fibers have the potential to replace solid-core standard silica fibers in a wide range of applications, including many telecommunication applications. Many of these applications require fibers that have attenuation losses comparable to state-of-the-art silica single-mode fibers and operate in a broadband range (i.e. low losses for a wide range of wavelengths). There is therefore a need to develop systems and methods for designing and manufacturing AR hollow core fibers.
- Prior AR hollow core fibers focused on maintaining a thin thickness (thin meaning smaller length thickness when compared to the wavelength of the propagating light within the fiber) of the tubular elements and/or other structures that impact the optical resonance conditions.
- Embodiments described herein include thick glass structures which can have a non-uniform thickness within the AR hollow core fiber.
- thicker structures with more glass material were thought to be detrimental to creating low loss AR hollow core fibers.
- Thick structures were previously thought to be undesirable because they were thought to support modes to which the core guided modes could couple, inducing high loss peaks across the fiber’s spectral UCF 2023-069-04 PATENT transmission window. While these thick structures can support cladding modes, they do not efficiently couple to the fundamental core guided mode.
- the techniques described herein relate to an optical fiber including a cladding structure extending along a fiber length providing a hollow interior fiber region; and a plurality of anti-resonant (AR) elements formed as walled structures with walls extending along the fiber length, where at least one of the plurality of AR elements surrounds an interior region and further includes one or more support structures in the interior region and formed as at least a portion of at least one of the walls, where the one or more support structures have a non-uniform thickness profile, where the plurality AR elements is configured to guide light along the fiber length in a central portion of the hollow interior fiber region based on optical anti-resonance.
- AR anti-resonant
- the techniques described herein relate to an optical fiber, where the plurality of AR elements include one or more sets of nested AR elements, where at least one of the one or more sets of nested AR elements includes a first AR element of the plurality of AR elements; and a second AR element of the plurality of AR elements located within an interior region of the first AR element bounded at least in part by the walls of the first AR element, where the second AR element is connected to one or more first support structures of the one or more support structures.
- the techniques described herein relate to an optical fiber, where the one or more first support structures are formed from the walls of the first AR element, where the walls of the first AR element have the non-uniform wall thickness profile in a cross-sectional plane defining shapes of the one or more first support structures, where the cross-sectional plane is orthogonal to a direction along the fiber length.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the walls of the first AR element in UCF 2023-069-04 PATENT the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 5%.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the walls of the first AR element in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 20%. [0009] In embodiments, the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the one or more first support structures in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 5%.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the one or more first support structures in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 20%.
- the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures at one or more contact points, where the non-uniform wall thickness profile of the first AR element is selected to provide selected separation distances between the one or more contact points and an outer face of the first AR element.
- the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures at two or more contact points. [0013] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures include at least one of a notch or groove to provide the two or more contact points. [0014] In embodiments, the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures along a spatially extended integration region. UCF 2023-069-04 PATENT [0015] In embodiments, the techniques described herein relate to an optical fiber, where the spatially extended integration region extends along at least 5% of a circumference of the first AR element.
- the techniques described herein relate to an optical fiber, where at least one of the selected separation distances is at least 5% of a radial distance between a centroid of the first AR element and the outer face of the first AR element at a location crossing an associated one of the one or more contact points. [0017] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the selected separation distances is at least 30% of a radial distance between a centroid of the first AR element and the outer face of the first AR element at a location crossing an associated one of the one or more contact points.
- the techniques described herein relate to an optical fiber, where the one or more first support structures position the second AR element within the interior region of the first AR element. [0019] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures center the second AR element within the interior region of the first AR element. [0020] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures are solid. [0021] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures have air gaps extending along the fiber length.
- the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures are porous.
- the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as at least one of an ellipse or a circle in a cross-sectional plane orthogonal to a direction along the fiber length.
- the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as at least one of a truncated ellipse or a truncated circle in a cross-sectional plane orthogonal to a direction along the fiber length. [0025] In embodiments, the techniques described herein relate to an optical fiber, where the single first support structure has a notch. [0026] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as a trapezium in a cross-sectional plane orthogonal to a direction along the fiber length.
- the techniques described herein relate to an optical fiber, where the at least one of the one or more sets of nested AR elements further includes one or more additional second AR elements located within an interior region of the first AR element bounded at least in part by the walls of the second AR element and attached to the one or more first support structures.
- the techniques described herein relate to an optical fiber, where the at least one of the one or more sets of nested AR elements further includes a third AR element of the plurality of AR elements located within an interior region of the second AR element bounded at least in part by the walls of the second AR element.
- the techniques described herein relate to an optical fiber, where the third AR element is connected to one or more second support structures of the one or more support structures. [0030] In embodiments, the techniques described herein relate to an optical fiber, where the at least one of the one or more sets of nested AR elements further includes a third AR element of the plurality of AR elements, where the first AR element is located within an interior region of the third AR element bounded at least in part by the walls of the third AR element. UCF 2023-069-04 PATENT [0031] In embodiments, the techniques described herein relate to an optical fiber, where the first AR element is connected to one or more third support structures of the one or more support structures.
- the techniques described herein relate to an optical fiber, where the first AR element is connected to the cladding structure.
- the techniques described herein relate to an optical fiber, where the one or more support structures include one or more outer support structures connected to the cladding structure, where the first structure is connected to at least one of the one or more outer support structures.
- the techniques described herein relate to an optical fiber, where at least one of the one or more outer support structures includes a solid rod extending along the fiber length.
- the techniques described herein relate to an optical fiber, where at least one of the one or more outer support structures includes a porous rod along the fiber length.
- the techniques described herein relate to an optical fiber, further including one or more additional structures connected to at least one of the plurality of AR elements.
- UCF 2023-069-04 PATENT [0041]
- the techniques described herein relate to an optical fiber, where the plurality of AR elements is divided into two or more sets of AR elements, where each of the two or more sets of AR elements is connected to at least one of the cladding structure or at least one of the one or more support structures.
- the techniques described herein relate to an optical fiber, where the two or more sets of AR elements are uniformly distributed around a perimeter of the hollow interior fiber region.
- the techniques described herein relate to an optical fiber, where the two or more sets of AR elements are non-uniformly distributed around a perimeter of the hollow interior fiber region. [0044] In embodiments, the techniques described herein relate to an optical fiber, where the two or more sets of AR elements each have a common design. [0045] In embodiments, the techniques described herein relate to an optical fiber, where the two or more sets of AR elements include a first set of AR elements having a first design; and a second set of AR elements having a second design.
- the techniques described herein relate to an optical fiber, where the first set of AR elements is a first nested set of AR elements including a first AR element of the plurality of AR elements, where the walls of the first AR element form a tube extending along the fiber length; and a second AR element of the plurality of AR elements located within an interior region of the first AR element bounded at least in part by the walls of the first AR element, where the second AR element is connected to one or more first support structures of the one or more support structures.
- the techniques described herein relate to an optical fiber, where the hollow interior fiber region is filled with a gas.
- the techniques described herein relate to an optical fiber, where the hollow interior fiber region is under vacuum.
- the techniques described herein relate to an optical fiber including a cladding structure extending along a fiber length providing a hollow interior fiber region; a plurality of anti-resonant (AR) elements formed as walled structures with UCF 2023-069-04 PATENT walls extending along the fiber length; and one or more structures between at least one of the plurality of AR elements and the cladding structure, where the one or more structures are integrated with at least one the cladding structure along a spatially extended integration region, where the one or more structures have a non-uniform thickness profile, where the plurality AR elements is configured to guide light along the fiber length in a central portion of the interior fiber region based on optical anti- resonance.
- AR anti-resonant
- the techniques described herein relate to an optical fiber, where the spatially extended integration region extends along at least 5% of a circumference of a connected one of the plurality of AR elements. [0051] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the structures is solid. [0052] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the structures is porous. [0053] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the structures is hollow.
- the techniques described herein relate to an optical fiber, where the plurality of AR elements include one or more sets of nested AR elements, where at least one of the one or more sets of nested AR elements includes a first AR element of the plurality of AR elements; and a second AR element of the plurality of AR elements located within an interior region of the first AR element bounded at least in part by the walls of the first AR element, where the second AR element is connected to one or more first support structures, where the first AR element surrounds an interior region and further includes one or more first support structures in the interior region and formed as at least a portion of at least one of the walls.
- the techniques described herein relate to an optical fiber, where the one or more first support structures are formed from the walls of the first AR element, where the walls of the first AR element have the non-uniform wall thickness profile in a cross-sectional plane defining shapes of the one or more first support UCF 2023-069-04 PATENT structures, where the cross-sectional plane is orthogonal to a direction along the fiber length.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the walls of the first AR element in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 5%.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the walls of the first AR element in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 20%.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the one or more first support structures in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 5%.
- the techniques described herein relate to an optical fiber, where a fill factor defined as a ratio of an area of the one or more first support structures in the cross-sectional plane to an area of the first AR element bounded by an outer face in the cross-sectional plane is at least 20%.
- the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures at one or more contact points, where the non-uniform wall thickness profile of the first AR element is selected to provide selected separation distances between the one or more contact points and an outer face of the first AR element.
- the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures at two or more contact points. [0062] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures include at least one of a notch or groove to provide the two or more contact points. UCF 2023-069-04 PATENT [0063] In embodiments, the techniques described herein relate to an optical fiber, where the second AR element is connected to the one or more first support structures along a spatially extended integration region. [0064] In embodiments, the techniques described herein relate to an optical fiber, where the spatially extended integration region extends along at least 5% of a circumference of the first AR element.
- the techniques described herein relate to an optical fiber, where at least one of the selected separation distances is at least 5% of a radial distance between a centroid of the first AR element and the outer face of the first AR element at a location crossing an associated one of the one or more contact points. [0066] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the selected separation distances is at least 30% of a radial distance between a centroid of the first AR element and the outer face of the first AR element at a location crossing an associated one of the one or more contact points.
- the techniques described herein relate to an optical fiber, where the one or more first support structures position the second AR element within the interior region of the first AR element. [0068] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures center the second AR element within the interior region of the first AR element. [0069] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures are solid. [0070] In embodiments, the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures have air gaps extending along the fiber length.
- the techniques described herein relate to an optical fiber, where at least one of the one or more first support structures are porous.
- UCF 2023-069-04 PATENT [0072]
- the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as at least one of an ellipse or a circle in a cross-sectional plane orthogonal to a direction along the fiber length.
- the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as at least one of a truncated ellipse or a truncated circle in a cross-sectional plane orthogonal to a direction along the fiber length. [0074] In embodiments, the techniques described herein relate to an optical fiber, where the single first support structure has a notch. [0075] In embodiments, the techniques described herein relate to an optical fiber, where the one or more first support structures include a single first support structure shaped as a trapezium in a cross-sectional plane orthogonal to a direction along the fiber length.
- the techniques described herein relate to an anti-resonant hollow-core optical fiber (AR-HCF) including a cladding structure extending along a length of the AR-HCF providing a hollow interior fiber region; a first set of anti-resonant (AR) elements formed as walled structures with walls extending along the length of the AR-HCF, where the first set of AR elements is distributed around and in contact with a wall of the hollow interior fiber region; and a second set of AR elements formed as walled structures extending along the length of the AR-HCF, where the second set of AR elements is distributed around and in contact with the wall of the hollow interior fiber region and interleaved with the first set of AR elements, where an outer dimension of the first set of AR elements is larger than an outer dimension of the second set of AR elements.
- AR-HCF anti-resonant hollow-core optical fiber
- the techniques described herein relate to a AR-HCF, where the first set of AR elements has a common number of elements as the second set of AR elements.
- UCF 2023-069-04 PATENT [0078]
- the techniques described herein relate to a AR-HCF, where the first set of AR elements has a different number of elements as the second set of AR elements.
- the techniques described herein relate to a AR-HCF, where at least one of the first set of AR elements or the second set of AR elements includes one or more nested sets of AR elements.
- the techniques described herein relate to a AR-HCF, where the first set of AR elements or the second set of AR elements includes a first set of one or more nested sets of AR elements, where the second set of AR elements includes a second set of one or more nested sets of AR elements.
- the techniques described herein relate to a AR-HCF, where the first set of AR elements are spatially separated from the second set of AR elements.
- the techniques described herein relate to a AR-HCF, where at least one of the first set of AR elements contacts at least one of the second set of AR elements.
- the techniques described herein relate to a AR-HCF, where the first set of AR elements and the second set of AR elements contact the cladding structure. [0084] In embodiments, the techniques described herein relate to a AR-HCF, further including one or more additional elements located between the cladding structure and at least one of the first set of AR elements or at least one of the second set of AR elements. [0085] In embodiments, the techniques described herein relate to a AR-HCF, further including one or more additional sets of AR elements formed as walled structures extending along the length of the AR-HCF.
- FIG. 1 is a simplified cross-section of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2A is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2B is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2C is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2D is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2A is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2B is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2C is a cross-sectional view of one embodiment of an AR-HCF, in accordance with
- FIG. 2E is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2F is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2G is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2H is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 1 is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2I is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0098]
- FIG. 2J is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2K is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2L is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 1 is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2M is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2N is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2O is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2P is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2P is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2Q is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2R is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2S is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 2T is a cross-sectional view of one embodiment of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.3 is a cross-sectional view of one embodiment of an AR-HCF with five sets of AR elements but where not all of the sets have the same design, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0110]
- FIG.4A is a cross-sectional view of one embodiment of an AR-HCF with a two- layer cladding structure, in accordance with one or more embodiments of the present disclosure.
- FIG. 4B is a cross-sectional view of one embodiment of an AR-HCF with a three-layer cladding structure, in accordance with one or more embodiments of the present disclosure.
- FIG. 12 is a cross-sectional view of one embodiment of an AR-HCF with five sets of AR elements but where not all of the sets have the same design, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0110]
- FIG.4A is a cross-sectional view of one embodiment of an AR
- FIG. 4C is a cross-sectional view of one embodiment of an AR-HCF with multiple cladding structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 5A is a cross-sectional view of one embodiment of an AR-HCF with support structures shaped as truncated circles, in accordance with one or more embodiments of the present disclosure.
- FIG. 5B is a cross-sectional view of one embodiment of an AR-HCF with first support structures shaped as truncated circles and further including V-shaped notches, in accordance with one or more embodiments of the present disclosure.
- FIG. 5A is a cross-sectional view of one embodiment of an AR-HCF with support structures shaped as truncated circles, in accordance with one or more embodiments of the present disclosure.
- FIG. 5B is a cross-sectional view of one embodiment of an AR-HCF with first support structures shaped as truncated circles and further including V-shaped notches, in accordance with one or more embodiment
- FIG. 5C is a cross-sectional view of one embodiment of an AR-HCF with first support structures shaped as truncated circles and further including U-shaped notches, in accordance with one or more embodiments of the present disclosure.
- FIG. 5D is a cross-sectional view of one embodiment of an AR-HCF with first support structures shaped as trapezium structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 5E is a cross-sectional view of one embodiment of an AR-HCF with multiple sets of nested AR elements and a single support structure between each set of nested AR elements and a cladding structure, in accordance with one or more embodiments of the present disclosure.
- FIG. 5C is a cross-sectional view of one embodiment of an AR-HCF with first support structures shaped as truncated circles and further including U-shaped notches, in accordance with one or more embodiments of the present disclosure.
- FIG. 5D is a cross-sectional view of one embodiment of an AR
- FIG. 5F is a cross-sectional view of one embodiment of an AR-HCF with multiple sets of nested AR elements and multiple support structures between each set of nested AR elements and a cladding structure, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0119]
- FIG. 6A is a cross-sectional view of one embodiment of an AR-HCF with support structures including multiple air gaps, in accordance with one or more embodiments of the present disclosure.
- FIG. 6B-6C are cross-sectional view of embodiments of an AR-HCF with support structures formed as walled structures, in accordance with one or more embodiments of the present disclosure.
- FIG.7A is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures around a perimeter of the hollow interior region shaped as tubes, in accordance with one or more embodiments of the present disclosure.
- FIG.7B is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures shaped as solid rods, in accordance with one or more embodiments of the present disclosure.
- FIG.7C is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures shaped as solid rods with alternating compositions, in accordance with one or more embodiments of the present disclosure.
- FIG.7D is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures with a first pattern of solid and tubular structures, in accordance with one or more embodiments of the present disclosure.
- FIG.7E is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures with a second pattern of solid and tubular structures, in accordance with one or more embodiments of the present disclosure.
- FIG.7F is a cross-sectional view of one embodiment of an AR-HCF with a first pattern of perimeter structures, in accordance with one or more embodiments of the present disclosure.
- FIG.7D is a cross-sectional view of one embodiment of an AR-HCF with a ring of perimeter structures with a first pattern of solid and tubular structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 7G is a cross-sectional view of one embodiment of an AR-HCF with a second pattern of perimeter structures, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0128]
- FIG. 7H is a cross-sectional view of one embodiment of an AR-HCF with a perimeter structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 7I is a cross-sectional view of one embodiment of an AR-HCF with a perimeter structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 7G is a cross-sectional view of one embodiment of an AR-HCF with a second pattern of perimeter structures, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0128]
- FIG. 7H is a cross-sectional view of one embodiment of an AR-HCF with a perimeter structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 8 is a cross-sectional view of one embodiment of an AR-HCF with additional structures, each connected to a single AR element, in accordance with one or more embodiments of the present disclosure.
- FIG.9A is a cross-sectional view of one embodiment of an AR-HCF with a non- uniform distribution of nested AR elements, in accordance with one or more embodiments of the present disclosure.
- FIG.9B is a cross-sectional view of one embodiment of an AR-HCF with a first pattern of AR elements with varying designs, in accordance with one or more embodiments of the present disclosure.
- FIG.9A is a cross-sectional view of one embodiment of an AR-HCF with a non- uniform distribution of nested AR elements, in accordance with one or more embodiments of the present disclosure.
- FIG.9B is a cross-sectional view of one embodiment of an AR-HCF with a first pattern of AR elements with varying designs, in accordance with one or more embodiments of the present disclosure.
- FIG. 9C is a cross-sectional view of one embodiment of an AR-HCF with a second pattern of AR elements with varying designs, in accordance with one or more embodiments of the present disclosure.
- FIG.9D is a cross-sectional view of one embodiment of an AR-HCF with a third pattern of AR elements with varying designs, in accordance with one or more embodiments of the present disclosure.
- FIG.10 is a plot of confinement loss for variations of an AR-HCF with the design shown in FIG. 2A with varying thickness of the first support structures as well as for an AR fiber without support structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 10 is a plot of confinement loss for variations of an AR-HCF with the design shown in FIG. 2A with varying thickness of the first support structures as well as for an AR fiber without support structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 11 is a plot of confinement losses for the fundamental mode (LP01) and higher-order modes (LP11) for an AR-HCF with support structures 108 based on the first design, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0137]
- FIG.12 is a plot 1200 of confinement losses for different designs of an AR-HCF with support structures as well as for an AR fiber without support structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 13A is a simplified schematic illustrating the fabrication of a nested- element preform for a set of nested AR elements with support structures, in accordance with one or more embodiments of the present disclosure.
- FIG.13B shows multiple pathways for obtaining the final design of the nested- element preform, in accordance with one or more embodiments of the present disclosure.
- FIG.14 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.15 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.16 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.17 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.18 is a cross-sectional view of a fifth design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.19 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.20 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.21 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG.22 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- UCF 2023-069-04 PATENT [0149]
- FIG.23 is a cross-sectional view of one design of an AR-HCF, in accordance with one or more embodiments of the present disclosure.
- FIG. 24 is a cross-sectional view of one design of an AR elements, in accordance with one or more embodiments of the present disclosure. [0151] FIG.
- Embodiments of the present disclosure are directed to systems and methods providing anti-resonant hollow-core fibers (AR-HCFs). Further with anti-resonant (AR) elements and support structures.
- the support structures may provide various functions such as, but not limited to, positioning various AR elements, improving optical performance properties, providing structural support, or improving mechanical properties (including manufacturability, such as improved manufacturing tolerance and stability throughout the fiber-fabrication process) of the AR-HCF. Further, support structures may provide additional anti-resonant behavior and are not limited to non- resonant structures.
- an AR-HCF may include one or more cladding structures providing a hollow interior fiber region extending a length of the fiber (e.g., along a fiber length) and multiple AR elements distributed around the interior fiber region, which forms a hollow core surrounded by AR elements. Further, such an AR-HCF may have any suitable size.
- the hollow core size of an AR-HCF fiber is between 5X and 100X the guided wavelength.
- the hollow core size of an AR-HCF fiber may be, but is not limited to, 5X, 10X, 20X, 30X, 50X, or 100X the guided wavelength.
- Any of the AR elements may include walled structures with walls that extend along the fiber length.
- the walls of the AR elements and/or the distribution of the AR elements more generally may provide guiding of light in a central hollow interior region of the AR-HCF through anti-resonant optical phenomena.
- some of the AR elements may be nested. As an illustration, one AR element may be located within an interior region bounded at least in part by walls of another AR element.
- AR elements distributed around a circumference of the hollow interior fiber region are spatially separated. Spatially separated sets of nested AR elements are described generally in W. Belardi and J. C. Knight, "Negative curvature fibers with reduced leakage loss," in Optical Fiber Communication Conference, OSA Technical Digest (online) (Optica Publishing Group, 2014), paper Th2A.45; which is incorporated herein by reference in its entirety.
- AR elements may also be non-circular in cross section. For example, AR elements may be parabolic, elliptical, shaped like a snowman or figure “8,” or have other cross sections.
- Nested AR elements may or may not lie on an imaginary line extending from the center of the AR-HCF.
- an inner AR element and an outer AR element e.g., in a nested arrangement
- various aspects of the performance of an AR- HCF such as, but not limited to, the confinement of light within the interior fiber region may be impacted by the placement and arrangement of the various AR elements.
- at least one of the AR elements in an AR-HCF is connected to one or more support structures, which may extend from the cladding structure and/or another of the AR elements.
- a support structure may extend from or otherwise be a part of one or more AR elements.
- an AR element may have walls with a non-uniform thickness profile (e.g., as measured in a cross-sectional plane orthogonal to a direction along the fiber length).
- a support structure may be formed as a relatively thick portion of the walls of an AR element. It is contemplated herein that such a configuration may be suitable for, but not limited to, positioning a nested AR element within an interior region of another AR element.
- a support structure is located between the cladding structure and one or more AR elements.
- such a support structure may be formed as a rod, a pedestal, a tube, a slab with a rectangular cross section, a slab with a circular cross section, a slab with a cross section of less than a whole circle (such as half or a part of a circle), or a combination thereof.
- a support structure may be solid, porous, or hollow.
- Support structures may distinguish support structures based on properties such as, but not limited to, location within an AR-HCF, connections to additional elements with an AR-HCF, UCF 2023-069-04 PATENT structural properties, and/or optical properties (e.g., antiresonant properties, resonant properties, a number of nodes, or the like).
- properties such as, but not limited to, location within an AR-HCF, connections to additional elements with an AR-HCF, UCF 2023-069-04 PATENT structural properties, and/or optical properties (e.g., antiresonant properties, resonant properties, a number of nodes, or the like).
- numerical designations e.g., Class 1, Class 2, or the like
- numerical designations may identify additional elements in an AR-HCF that a support structure may contact or otherwise be integrated with.
- a Class 1 support structure may be located within an interior portion of an AR element.
- a Class 2 support structure may be located between an AR element and an interior wall of a cladding structure.
- Table 1 depicts numerical class designations.
- alphabetic designations e.g., Class A, Class B, or the like
- a Class A integration may include an extended integration region (e.g., an extended touchpoint, an extended node, or the like) region with another element in an AR-HCF.
- a Class B integration may include multiple integration regions (e.g., multiple touchpoints, multiple nodes, or the like) with another element in an AR-HCF.
- a support structure may have notches or “V” grooves providing multiple integration regions (e.g., multiple touchpoints) with another element (e.g., an AR element, a cladding structure, or the like).
- the use of multiple integration regions may provide various benefits including, but not limited to, providing robust alignment of elements within the AR- HCF, and providing high manufacturing tolerance and stability throughout the fiber- fabrication process as well as deployment.
- a Class C UCF 2023-069-04 PATENT integration may include a single spatially-limited integration region (e.g., a single touchpoint, a single node, or the like).
- Table 2 depicts alphabetic class designations.
- Numerical and alphabetic designations may be combined into alphanumeric designations to describe support structures with particular properties.
- a Class 1A support structure may be located in an interior region of an AR element and further be integrated to the AR element along an extended integration region.
- a support structure may integrate with multiple additional elements with different degrees of integration.
- a Class 1 support structure within an interior region of a first AR element may have a Class A integration with the first AR element and a Class B integration with a second AR element (e.g., an inner AR element).
- a second AR element e.g., an inner AR element.
- nomenclature used herein to separately describe AR elements and support structures as separate elements is merely illustrative and should not be interpreted as limiting the scope of the present disclosure.
- the various elements of a fabricated AR-HCF e.g., AR elements, cladding structures, support structures, and the like
- a support UCF 2023-069-04 PATENT structure as extending from an AR element.
- a support structure may be indistinguishable from the AR element such that it may also be accurate to describe the support structure as being integrated into and forming a part of the AR element.
- a support structure may be integrated with an AR element in such a way that the AR element and the support structure are one cohesive element.
- FIG.1 is a simplified cross-section of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG.1 depicts a cross- section of the AR-HCF 100 in an X-Y plane, where a length of the AR-HCF 100 extends along the Z direction (e.g., a direction along the fiber length).
- a length of the AR-HCF 100 extends along the Z direction (e.g., a direction along the fiber length).
- an AR-HCF 100 may generally be flexible and/or bend such that the fiber length need not extend along a straight line.
- the cross-sectional view depicted in FIG. 1 may correspond to a plane orthogonal to the fiber length at any selected location.
- FIG.1 depicts a non-limiting configuration of an AR- HCF 100 with seven AR elements 106 uniformly distributed around a perimeter of the hollow interior region 104 formed by the cladding structure 102. Further, any of the AR elements 106 may be spatially isolated from other AR elements 106, may be in contact with other AR elements 106, or may be nested within other AR elements 106.
- an AR-HCF 100 includes one or more support structures 108, which may position at least one AR element 106 within the AR-HCF 100.
- at least one AR element 106 may be connected to at least one support structure 108.
- the support structures 108 may generally be formed as or be in contact with the cladding structures 102 and/or any of the AR elements 106.
- the various AR elements 106 within the AR-HCF 100 may have a common design or may have different designs. For instance, FIG. 1 depicts a configuration of an AR-HCF 100 in which all AR elements 106 have a common design, though this is not a requirement.
- an AR-HCF 100 includes one or more AR elements 106 with a first design and one or more AR elements 106 with a second design, and so on.
- the hollow interior region 104, as well as any interior cavities of other structures may be under vacuum or filled with any gas (e.g., ambient air, nitrogen, argon, or any selected composition).
- any gas e.g., ambient air, nitrogen, argon, or any selected composition.
- the walls 202 may be characterized by a thickness (or a thickness profile) in a cross-sectional plane (e.g., an X-Y plane in FIGS.2A-2T). Further, the thickness of any of the walls 202, or portions thereof, may be selected to operate provide anti- resonant properties to confine and guide light through a central portion of the hollow interior region 104. In this way, at least some of the walls 202, or portions thereof, may provide confinement of light through anti-resonant phenomena. [0177] In some embodiments, the walls 202 of an AR element 106 may be arranged to provide an interior region 204 (e.g., an interior cavity).
- an interior region 204 e.g., an interior cavity
- an AR-HCF 100 includes one or more support structures 108 suitable for positioning one or more of the AR elements 106.
- a support structure 108 may extend along the fiber length and may generally have any shape suitable for positioning one or more connected AR elements 106 within the hollow interior region 104 of the AR-HCF 100 such as, but not limited to, a circle, an ellipse, a truncated circle, a truncated ellipse, or any multi-faced shape.
- a support structure 108 may be attached to or incorporated as part of an AR element 106 or a cladding structure 102.
- a support structure 108 is formed as a portion of a wall 202 of an AR element 106.
- an AR element 106 may have a wall 202 with a non-uniform thickness profile, where a portion of the wall 202 (e.g., a relatively thick portion) may form a support structure 108.
- the non-uniform thickness profile of a wall 202 may define a shape of the support structure 108.
- any of the support structures 108 may be formed directly as part of a wall 202.
- the various components of an AR-HCF 100 including, but not limited to, the AR elements 106 (e.g., the walls 202), the support structures 108, or the cladding structures 102 may be formed from any suitable material such as, but not limited to, a glass or a polymer. Individual AR elements 106 may be formed from a different material than another AR element 106. Similarly, different support structures 108 may be formed from a different material than other support structures 108.
- any such components may be formed silica glass, doped silica glass, chalcogenide UCF 2023-069-04 PATENT glass, fluoride glass, or the like. Further, any such components may be undoped or doped with one or more dopants.
- an AR-HCF 100 may be formed from a single material or may have different components formed from different materials.
- a support structure 108 may be formed from a different material than a connected AR element 106.
- nested AR elements 106 may be formed from different materials.
- the index of refraction of the AR elements 106 is different than the index of refraction of the support structures 108.
- FIG. 2A is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure. It is noted that the AR elements 106 in FIG.2A are substantially the same as shown in FIG.1. In FIG.
- the AR-HCF 100 includes five sets of AR elements 106 distributed around the perimeter of the hollow interior region 104, where each set includes a first AR element 106a and a second AR element 106b nested within a first interior region 204a bounded by the first AR element 106a and connected to a first support structure 108a.
- the first support structure 108a may position the second AR element 106b at any location within a first interior region 204a of the first AR element 106a.
- the first support structure 108a may center the second AR element 106b within the interior region 204a of the first AR element 106a.
- the first support structure 108a may be formed as part of a wall 202a of the first AR element 106a or as a separate element.
- the support structures 108 in FIG.2 may be characterized as Class 1 support structures 108 since they are located within the first interior region 204a of the first AR element 106a.
- each of the support structures 108 in FIG. 2 may provide a Class A integration with the first AR element 106a characterized by a spatially- extended integration region 206, and a Class C integration with the second AR element 106 characterized by a spatially-limited integration region 208.
- FIG. 1 The support structures 108 in FIG.2 may be characterized as Class 1 support structures 108 since they are located within the first interior region 204a of the first AR element 106a.
- each of the support structures 108 in FIG. 2 may provide a Class A integration with the first AR element 106a characterized by a spatially- extended integration region 206, and a Class C integration with the second AR element 106 characterized by a spatially
- FIG.2B is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the AR elements 106 in FIG.2B are substantially similar to those in FIG.2A except that the UCF 2023-069-04 PATENT second AR element 106b includes a second support structure 108b within a second interior region 204b.
- the second support structure 108b may be formed as part of a wall 202b of the second AR element 106b or as a separate element. Further, the second support structure may also be a Class 1 support structure with a Class A integration to the second AR element 106b. [0183] FIG.
- FIG.2C is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the AR elements 106 in FIG.2C are substantially similar to those in FIG.2B except that the AR elements 106 further include a third AR element 106c within the second interior region 204b of the second AR element 106b and connected to a second support structure 108b (e.g., with a Class C integration).
- FIGS.2A-2C illustrate the cascading of multiple nested AR elements 106 (e.g., one AR element 106 within another, within another, and so on), where at least one of the nested AR elements 106 is connected to a support structure 108.
- FIG. 2D is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the AR elements 106 include a first AR element 106a as depicted in FIGS. 2A-2C. Additionally, the AR elements 106 in FIG.2D include two second AR elements 106b within the interior of the first AR element 106a and connected to a first support structure 108a (e.g., with Class C integrations).
- FIG. 2E is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2E is substantially the same as FIG.2D except that the AR elements 106 further include a third AR element 106c in each of the second AR elements 106b. In this configuration, the third AR element 106c is directly in contact with an interior portion of a wall 202b of the corresponding second AR element 106b.
- a nested set of AR elements 106 is asymmetric (e.g., with respect to a radial line from a center of the AR- HCF 100 through an outermost AR element 106 in the nested set).
- FIG. 2F is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2F is substantially the same as FIG.2D except that only a single offset second AR element 106b is located within the interior region of the first AR element 106a. Put another way, the second AR elements 106b are not symmetrically placed within the first AR elements 106a and are thus not centered on a radial line 210 from the center of the AR-HCF 100.
- FIG. 2G is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2G is substantially the same as FIG. 2F except that the second AR element 106b further includes a third AR element 106c nested within it.
- FIG. 2G is substantially the same as FIG. 2F except that the second AR element 106b further includes a third AR element 106c nested within it.
- FIG. 2H is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2H is substantially the same as FIG.2G except that the third AR element 106c is relatively larger than the third AR element 106c in FIG.2G.
- support structures 108 are not used to position AR elements 106, but may provide additional functions such UCF 2023-069-04 PATENT as, but not limited to, mechanical stability, improving optical performance properties, or the like. These improvements can aid manufacturing tolerance and stability throughout the fiber-fabrication process.
- FIG. 2I is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2I is substantially the same as FIG. 2D except that the second AR elements 106b are directly connected to an interior portion of a wall 202a of the first AR element 106a rather than the first support structure 108a.
- FIG. 2J is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2J is substantially the same as FIG. 2E except that the second AR elements 106b are directly connected to an interior portion of a wall 202a of the first AR element 106a rather than the first support structure 108a.
- FIG. 2K is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2K is substantially the same as FIG.2A except that the second AR elements 106b further includes a membrane AR element 106d that divides the interior regions 204 of the second AR elements 106b into two regions 204a,b.
- the membrane AR element 106d is a walled structure that further provides AR properties and may thus contribute to guiding of light in the hollow interior region 104 of the AR- HCF 100 via optical antiresonance.
- FIG. 2L is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- an arched AR element 106e is located within an interior region 204 of the first AR element 106a.
- two ends of the arched AR element 106e contact the first support structure 108a.
- FIG. 2M is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2M is substantially the same as FIG.2L except that the arched AR element 106e is relatively larger than the arched AR element 106e. In a general sense, an arched AR element 106e may have any size or shape.
- FIG. 2N is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2N is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2N is substantially the same as FIG.2M except that the arched AR element 106e is relatively taller than the arched AR element 106e, but has a narrower base width. In a general sense, an arched AR element 106e may have any size or shape.
- FIGS. 2O-2Q elliptical AR elements 106 are shown. As described throughout the present disclosure, an AR element 106 may have any shape. In this way, the AR elements 106 with circular cross-sections are merely illustrative.
- FIG. 2O is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure. FIG. 2O is substantially the same as FIG.
- FIG. 2Q is substantially the same as FIG.2A except that both the first AR element 106a and the second AR element 106b have elliptical cross-sectional shapes. Further, as with FIG. 2O, the support structure 108 within the first AR element 106a matches the curvature of the first AR element 106a to provide a Class A integration with this shape.
- UCF 2023-069-04 PATENT [0203] Referring now to FIGS. 2R-2S, the dimensions of support structures 108 are described in greater detail, in accordance with one or more embodiments of the present disclosure. In a general sense, a support structure 108 may be used to position an AR element 106 (or any element more generally) within the hollow interior portion of the AR-HCF 100. [0204] FIG.
- FIG. 2R is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2R is substantially the same as FIG.2A except that the support structure 108 in FIG.2R is relatively thicker along a radial line 210.
- the first support structures 108a in FIG.2A have a first thickness t1 selected to center the second AR element 106b within the first AR element 106a
- the first support structures 108a in FIG. 2R has a second thickness t2 selected position the second AR element 106 closer to a center of the AR-HCF 100.
- FIG. 2S is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2S is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIG. 2S is substantially the same as FIG.2F except that the support structure 108 in FIG.2S is relatively thicker along a radial line 210.
- the first support structures 108a in FIG.2A have a first thickness t1 selected to center the second AR element 106b within the first AR element 106a
- the first support structures 108a in FIG. 2S has a third thickness t3 selected position the second AR element 106 closer to a center of the AR-HCF 100.
- the thickness of any support structure along any dimension may be selected to position any other element of the AR-HCF 100 in any desired location.
- FIG.2T is a cross-sectional view of one embodiment of an AR-HCF 100, in accordance with one or more embodiments UCF 2023-069-04 PATENT of the present disclosure.
- the AR-HCF 100 in FIG. 2T includes a first AR element 106a connected to a cladding structure 102, a second AR element 106b nested within the first AR element 106a and directly connected to a wall 202a of the first AR element 106a, and a third AR element 106c nested within the second AR element 106b and connected to a second support structure 108b.
- FIGS.2A-2T are provided solely for illustrative purposes and should not be interpreted as limiting. Rather, the one or more AR elements 106 and/or the one or more support structures 108 may have any design suitable for guiding light with any wavelength of interest (or ranges or wavelengths) in an interior portion of the hollow interior region 104.
- the various AR elements 106 may have the same or different thicknesses (or thickness profiles). FIG.
- FIG. 3 is a cross-sectional view of one embodiment of an AR-HCF 100 with five sets of AR elements 106 but where not all of the sets have the same design, in accordance with one or more embodiments of the present disclosure.
- a first set of AR elements 106a has a first design that is one variant of the design depicted in FIG.1 and a second set of AR elements 106b has a second design that is another variant of the design depicted in FIG.1.
- the first set of AR elements 106a has a first AR element 106a with a wall 202a thickness ⁇ for at least a portion and a second AR element 106b with a thickness ⁇ for at least a portion
- the second set of AR elements 106b has a first AR element 106a with a thickness ⁇ for at least a portion and a second AR element 106b with a thickness ⁇ for at least a portion.
- FIGS. 4A-4C the cladding structures 102 are described in greater detail, in accordance with one or more embodiments of the present disclosure.
- An AR-HCF 100 may generally have any number of cladding structures 102 that bound or otherwise define a hollow interior region 104.
- the cladding structures 102 may have any cross- sectional shape including, but not limited to, a circle, an ellipse, a square, a pentagon, a hexagon, a heptagon, an octagon, or the like.
- a cladding structure 102 is formed as a tube (e.g., having an annular cross-section).
- FIGS.1-3 each depict an AR-HCF 100 having a single cladding structure 102 formed as a tube.
- one or more cladding structures 102 are formed as a multi-layer tube (e.g., a tube having multiple layers of material of the same or different composition). Such a structure may have any number of layers. Further, each of the layers may be referred to as separate cladding structures 102.
- FIG. 4A is a cross- sectional view of one embodiment of an AR-HCF 100 with a two-layer cladding structure 102, in accordance with one or more embodiments of the present disclosure. In particular, FIG. 4A depicts a first cladding structure 102a as a first layer and a second cladding structure 102b as a second layer.
- FIG.4B is a cross-sectional view of one embodiment of an AR-HCF 100 with a three-layer cladding structure 102, in accordance with one or more embodiments of the present disclosure.
- FIG. 4B depicts a first cladding structure 102a as a first layer, a second cladding structure 102b as a second layer, and a third cladding structure 102c as a third layer.
- an AR-HCF 100 includes additional cladding structures 102 between tube structures (e.g., layers of a multi-layer tube).
- FIG. 1 is a cross-sectional view of one embodiment of an AR-HCF 100 with a three-layer cladding structure 102, in accordance with one or more embodiments of the present disclosure.
- FIG. 4B depicts a first cladding structure 102a as a first layer, a second cladding structure 102b as a second layer, and a third cladding structure 102c as a third layer.
- FIG. 4C is a cross- sectional view of one embodiment of an AR-HCF 100 with multiple cladding structures 102, in accordance with one or more embodiments of the present disclosure.
- the AR-HCF 100 includes a first cladding structure 102a formed as an outer tube, a second cladding structure 102b formed as an inner tube, and a series of additional cladding structures 102c between the first cladding structure 102a and the second cladding structure 102b.
- the additional cladding structures 102c in FIG. 4C are shown as tubes. However, this is merely illustrative and not limiting.
- FIG.5A is a reproduction of FIG.2A.
- a first support structure 108a conforms to the interior wall of an AR element 106 on one side (e.g., forming a Class A integration) and has a flat interior face 402 to form a truncated circle.
- the support structure may be a rod, a pedestal, a tube, a slab with a rectangular cross section, a slab with a circular cross section, or a slab with a cross section of less than a whole circle (such as half or a part of a circle).
- FIG.5B is a cross-sectional view of one embodiment of an AR-HCF 100 with first support structures 108a shaped as truncated circles and further including V- shaped notches, in accordance with one or more embodiments of the present disclosure.
- FIG.5B is substantially similar to FIG.5A except that the interior face 402 has a V-shaped notch.
- Such a notch may provide additional contact points (e.g., Class B integrations) for an additional AR element 106 (e.g., the second AR element 106b as depicted), which may improve stability during and/or after fabrication.
- FIG.5C is a cross-sectional view of one embodiment of an AR-HCF 100 with first support structures 108a shaped as truncated circles and further including U- shaped notches, in accordance with one or more embodiments of the present disclosure.
- FIG. 5C is substantially similar to FIG. 5B except that the notches in the interior face 402 are U-shaped (e.g., with curved faces).
- the inner radius of curvature of support structure 108a may be similar to the outer radius of curvature UCF 2023-069-04 PATENT of AR element 106b such that the support structure 108a optimizes surface contact with AR element 106b.
- the support structures 108a in FIG.5B are Class 1 support structures 108 with Class A integrations (region 506) with the first AR elements 106a, and Class A integrations (region 510) with the second AR elements 106b based on the extended touchpoints.
- FIG.5D is a cross-sectional view of one embodiment of an AR-HCF 100 with first support structures 108a shaped as trapezium structures, in accordance with one or more embodiments of the present disclosure.
- each support structure 108 in FIG. 5D includes multiple interior faces 402 (here flat faces, but this is not a requirement).
- an AR-HCF 100 includes one or more support structures 108 located between a cladding structure 102 and at least one AR element 106. Such support structures 108 may thus position one or more AR elements 106 (or sets of nested AR elements 106) within the hollow interior region 104 of an AR-HCF 100, further control the optical performance, improve structural stability, and/or improve manufacturability.
- the inner radius of curvature of support structure 108 may be similar to the outer radius of curvature of AR element 106 such that the support structure 108a optimizes surface contact with AR element 106 (e.g., forming a Class A integration).
- FIG. 5E is a cross-sectional view of one embodiment of an AR-HCF 100 with multiple sets of nested AR elements 106 and a single support structure 108d between each set of nested AR elements 106 and a cladding structure 102, in accordance with UCF 2023-069-04 PATENT one or more embodiments of the present disclosure.
- each set of nested AR elements 106 is the same as depicted in FIG. 2A and includes a second AR element 106b nested within a first AR element 106a and connected to a first support structure 108.
- each first AR element 106a is connected to an additional support structure 108d, which is in turn connected to a cladding structure 102.
- Such an additional support structure 108d may be characterized as a Class 2 support structure based on the integration with the cladding structure 102 (here a Class C integration).
- each additional support structure 108d is shown as a solid circle (e.g., a rod when considered in three dimensions), but this is merely illustrative and not limiting.
- FIG. 5F is a cross-sectional view of one embodiment of an AR-HCF 100 with multiple sets of nested AR elements 106 and multiple support structures 108d between each set of nested AR elements 106 and a cladding structure 102, in accordance with one or more embodiments of the present disclosure.
- FIG. 5F is a cross-sectional view of one embodiment of an AR-HCF 100 with multiple sets of nested AR elements 106 and multiple support structures 108d between each set of nested AR elements 106 and a cladding structure 102, in accordance with one or more embodiments of the present disclosure.
- each set of AR elements 106 includes a first AR element 106a, a second AR element 106b nested within the first AR element 106a and connected to two first support structure 108a (e.g., Class 1 support structures 108 with Class C integrations), and a third AR element 106c nested within the second AR element 106b and connected to a single second support structure 108b (e.g., a Class 1 support structure 108 with Class A and Class C integrations with the first and second AR elements 106a/b, respectively).
- the first AR element 106a is connected to two additional support structures 108d (e.g., Class 2 support structures 108 with Class C integrations) which are in turn connected to a cladding structure 102.
- a Class A integration between a support structure 108 and another element may be characterized as an extended node along a circumference of the AR element 106.
- the support structure 108 itself and/or a region of integration with a UCF 2023-069-04 PATENT wall 202 of an AR element 106 may be sufficiently large so as to lack antiresonant properties (e.g., may be resonant structures).
- FIGS. 5A-5F various aspects of the support structures 108 are described in greater detail, in accordance with one or more embodiments of the present disclosure.
- FIG. 1-5D depicts a configuration in which a first AR element 106a has a circular outer profile, but where the support structure 108 is integrated with an extended portion of the wall 202 of the first AR element 106a.
- a first portion of the wall 202a e.g., shown in FIG.5A
- a second portion of the wall 202b associated with the support structure 108 is sufficiently thick as to lack such optical antiresonance for the light of selected wavelengths.
- the second portion of the wall 202b may correspond to a substantial portion of a total circumference of the first AR element 106a (e.g., greater than 1%, greater than 5%, greater than 10%, or more).
- a Class C integration between a support structure and another element may be characterized as a spatially-limited node along a circumference of the AR element 106.
- FIGS.5E-5F depict configurations in which a support structure 108d is connected to both the cladding structures 102 and an exterior portion of the first AR element 106a in one or more spatially limited nodes.
- FIGS.5E and 5F depict such support structures 108d both on interior and exterior portions of an AR element 106.
- the second portion of the wall 202b may correspond to a small and in some cases negligible portion of the total circumference of the first AR element 106a (e.g., less than 1%).
- the size of this single node may be determined a size necessary to provide mechanical stability and/or firm contact between the support structure 108 and the wall 202 of the first AR element 106a.
- a Class B integration between a support structure and another element may be characterized as having multiple point of contact (e.g., integration), where the associated integration regions may have any size or combination of sizes.
- a Class B integration may include two or more Class A integrations, two or UCF 2023-069-04 PATENT more Class C integrations, or any combination of Class A or Class C integrations.
- a support structure 108 may be described based on an extent to which it fills an AR element 106.
- a fill factor may be defined as a ratio of an area (e.g., in a cross-sectional plane) of the support structure 108 to an area of the AR element 106 bounded by an outer face of the AR element 106.
- the fill factor may be defined as a ratio of an area of the wall 202 (e.g., an area of the entire wall 202 or just a portion of the wall 202 corresponding to the support structure 108) to an area of the AR element 106.
- the fill factor is greater than 2.5%. In some embodiments, the fill factor is between 2.5% and 60%.
- a support structure 108 may also be described based on an extent to which it positions an outer face of an AR element 106 away from another object such as a cladding structure 102 or another AR element 106.
- the first support structure 108a may position an outer face of the second AR element 106b at a selected distance 502 from an outer face of the first AR element 106a.
- this selected distance 502 may be a selected percentage of a radial distance 504 from a centroid of the first AR element 106a to the outer face of the first AR element 106a.
- a support structure 108 may be provided in a variety of configurations.
- a support structure 108 is formed as a solid material.
- a support structure 108 may be formed as a porous material. In this way, the pores may not extend fully along the fiber length.
- a support structure 108 has one or more air gaps that extend fully along the fiber length.
- a support structure 108 may be formed as a walled structure (e.g., a tube or a walled structure of any shape).
- FIG. 6A is a cross-sectional view of one embodiment of an AR-HCF 100 with support structures 108 including multiple air gaps 602, in accordance with one or more embodiments of the present disclosure. Each air gap 602 may have a different size or shape, but may fully extend along the fiber length.
- FIG. 6B-6C are cross-sectional view of embodiments of an AR-HCF 100 with support structures 108 formed as walled structures, in accordance with one or more embodiments of the present disclosure.
- the walled support structures 108 may provide air gaps 602 along the fiber length. Further, the walled support structures 108 may have any cross-sectional thickness. In some embodiments, the walled support structures 108 provide further anti-resonant properties and may thus improve the optical performance in ways beyond positioning the AR elements 106. Additionally, the connections between various walls of the support structures shown in FIGS.6A-6B may provide multiple nodes and may thus be referred to as multi-node structures. UCF 2023-069-04 PATENT [0234] The support structures 108 in FIGS.
- Such structures may have various functions such as, but not limited to, operating as AR elements themselves, operating as polarization-controlling elements, operating to increase a confinement factor of guided light, operating to increase a mechanical stability of the fiber, operating to increase a robustness to bending, operating to position AR elements 106 (or sets thereof) within the AR-HCF 100 or the like.
- additional structures may be formed from any suitable material and may generally have any shape, design (e.g., solid, walled, porous, or the like), and may or may not include air gaps extending along the fiber length.
- the additional structures may further be characterized as Class 2 support structures 108 based on their location between the cladding structure 102 and various AR elements 106.
- FIG.7A is a cross-sectional view of one embodiment of an AR-HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 support structures 108) around a perimeter of the hollow interior region 104 shaped as tubes, in accordance with one or more embodiments of the present disclosure.
- FIG.7B is a cross-sectional view of one embodiment of an AR-HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 support structures 108) shaped as solid rods, in accordance with one or more embodiments of the present disclosure.
- FIG. 7A is a cross-sectional view of one embodiment of an AR-HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 support structures 108) shaped as solid rods, in accordance with one or more embodiments of the present disclosure.
- FIG. 7C is a cross-sectional view of one embodiment of an AR-HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 support structures 108) shaped as solid rods with alternating compositions (labeled as 702a and 702b, respectively), in accordance with one or more embodiments of the present disclosure.
- FIG. 7D is a cross-sectional view of one embodiment of an AR- HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 support structures 108) with a first pattern of solid and tubular structures, in accordance with one or more embodiments of the present disclosure.
- FIG. 7E is a cross-sectional view of one embodiment of an AR-HCF 100 with a ring of perimeter structures 702 (e.g., Class 2 UCF 2023-069-04 PATENT support structures 108) with a second pattern of solid and tubular structures, in accordance with one or more embodiments of the present disclosure.
- FIGS. 7F-7I show additional non-limiting designs of an AR-HCF 100 with perimeter structures 702 that do not fully cover the perimeter of the hollow interior region 104.
- FIG.7F is a cross-sectional view of one embodiment of an AR-HCF 100 with a first pattern of perimeter structures 702 (e.g., Class 2 support structures 108), in accordance with one or more embodiments of the present disclosure.
- a first pattern of perimeter structures 702 e.g., Class 2 support structures 108
- the AR-HCF 100 includes sets of three perimeter structures 702 near each set of AR elements 106 and one additional perimeter structure 702c, which may provide polarization control.
- FIG.7G is a cross-sectional view of one embodiment of an AR- HCF 100 with a second pattern of perimeter structures 702 (e.g., with different compositions), in accordance with one or more embodiments of the present disclosure.
- Any perimeter structures 702 operating as Class 2 support structures may further have any interface type (e.g., Class A, Class B, Class C, or the like).
- FIG.7H is a cross-sectional view of one embodiment of an AR-HCF 100 with a perimeter structures 702 (e.g., Class 2 support structures 108), in accordance with one or more embodiments of the present disclosure.
- the support structures 108 in FIG.7H provide a Class A interface with both the cladding structure 102 and the AR elements 106.
- support structures 108 have a radius of curvature on one side that is matches to the radius of curvature of the cladding structure 102 to provide an extended interface region with the cladding structure 102.
- the support structures 108 have a radius of curvature on an opposite side that is within a selected percentage of (e.g., within 1%, 5%, 10%, or the like) of a radius of curvature of the first AR elements 106a. Such a configuration may provide robust mechanical connections between the AR elements 106 and the cladding structure 102. Further, the support structures 108 may position the AR elements 106 (or the nested sets thereof as shown in FIG.7H) at any selected location within the AR-HCF 100.
- FIG.8 is a cross-sectional view of one embodiment of an AR-HCF 100 with additional structures 802, each connected to a single AR element 106, in accordance with one or more embodiments of the present disclosure.
- FIGS. 1-8 nomenclature associated with the description of support structures 108 and the associated classes is described in greater detail, in accordance with one or more embodiments of the present disclosure.
- a design of a support structures 108 and a design of an AR-HCF 100 more generally may be complex such that the various constituent elements may be described using different terms within the spirit and scope of the present disclosure.
- FIGS. 1-5D depicts a configuration in which a first AR element 106a has a circular outer profile, but where the support structure 108 is integrated with an extended portion of the wall 202 of the first AR element 106a.
- a first portion of the wall 202a (e.g., shown in FIG.5A) is sufficiently thin as to provide optical antiresonance that may contribute to guiding of light of selected wavelengths within the hollow interior region 104 of the AR-HCF 100 as a whole, whereas a second portion of the wall 202b associated with the support structure 108 is sufficiently thick as to lack such optical antiresonance for the light of selected wavelengths.
- the second portion of the wall 202b may correspond to a substantial portion of a total circumference of the first AR element 106a (e.g., greater than 5%, greater than 10%, or more).
- class 2 support structures 108 may be described as an independent element that may be connected to the wall 202 of the first AR element 106a.
- a Class C integration may be described as having a single contact point with the wall 202 of the first AR element 106a.
- a class A support structure 108 may be considered to have a continuous series of contact points or one extended contact point.
- a Class B integration may then have multiple contact points of any size.
- an AR- HCF 100 may be fabricated by drawing a preform, where the preform has a cross- sectional profile that may resemble the final cross-sectional profile of the drawn AR- HCF 100, though it is recognized that the cross-sectional profile of the preform need not necessarily be a precisely scaled version of the cross-sectional profile of the drawn AR-HCF 100. Rather, the drawing process may induce some variations in the cross- sectional profile of the drawn AR-HCF 100 relative to the preform design.
- a preform used to fabricate an AR-HCF 100 may be formed by multiple fused components, which then melt into a single continuous structure during a fiber draw process.
- a preform for a first AR element 106a with an integrated support structure 108 as depicted in FIGS.1-5D may be formed from a first glass tube component and one or more additional components located in the glass tube, where the draw process induces at least partial melting of the associated components and ultimately results in the first AR element 106a with an integrated support structure 108.
- an AR-HCF 100 may generally include any number or distribution of AR elements 106.
- non-uniform distributions of AR elements 106 may be used to control various properties of guided UCF 2023-069-04 PATENT light such as, but not limited to, polarization, polarization mode dispersion, or the like. This could be used, for example, to create a polarization maintaining fiber.
- the AR-HCF 100 in FIG.9B includes two sets of nested AR elements 106 having a second design 904 and four sets of nested AR elements 106 having the first design 902, where all sets are uniformly distributed around the perimeter of the hollow interior region 104. Further, the sets of nested AR elements 106 having the second design 904 are on opposing sides of the fiber.
- FIG.9C is a cross-sectional view of one embodiment of an AR-HCF 100 with a second pattern of AR elements 106 with varying designs, in accordance with one or more embodiments of the present disclosure. FIG. 9C is substantially similar to FIG.
- the design in inset 1006 is referred to as a nested AR nodeless fiber (NANF) design.
- the first design (Design 1) outperforms the NANF design for both simulated thicknesses of the support structures 108. It is contemplated herein that the performance increase may be achieved at least in part by positioning the second AR element 106b away from a wall 202 of the first AR element 106a. This is just one example.
- the wavelength position of the low loss spectral band can be shifted to shorter or longer wavelengths by altering the fiber design, for example, by scaling the size of the AR-HCF structure.
- inset 1202 provides cross-sectional views of the various simulated designs. As shown in plot 1200, Designs 1-4 including support structures 108 all outperform the NANF design. Further, the inclusion of multiple nested AR elements 106 in Design 2 along with the support structures 108 provides substantially improved performance (e.g., over to two orders of magnitude relative to the NANF for some wavelengths). [0262] Referring now to FIG. 13, fabrication of an AR-HCF 100 with nested AR elements 106 having support structures 108 is described in greater detail, in accordance with one or more embodiments of the present disclosure. In a general sense, nested AR elements 106 with support structures 108 may be generated using any suitable technique. [0263] FIG.
- the nested- element preform 1300 in FIG.13A may be formed with a first tubular preform element 1302a, a first support structure preform element 1304a nested within the first tubular preform element 1302a, a second tubular preform element 1302b connected to the first support structure preform element 1304a, a second support structure preform element 1304b within the second tubular preform element 1302b, and a third tubular preform element 1302c connected to the second support structure preform element 1304b.
- one or more composite preforms are fabricated and drawn in order to scale down the dimensions. Such drawn down composite preforms may then be used as preform elements used to generate a more complex preform.
- the nested-element preform 1300 in FIG. 13 may be fabricated in multiple steps.
- a first composite preform element 1306a may include a first tubular preform element 1302a and a first support structure preform element 1304a within the first tubular preform element 1302a. Multiple instances of this composite preform element 1306 may then be fabricated, either with the same dimensions or with dimensions that are scaled or otherwise modified.
- FIG.13B shows multiple pathways for obtaining the final design of the nested- element preform 1300, in accordance with one or more embodiments of the present disclosure.
- a second composite preform element 1306b is generated by adding an additional tubular preform element 1302d to the first composite preform element 1306a.
- the nested-element preform 1300 may be formed by adding a drawn-down (e.g., scaled) instance of the second composite preform element 1306b to the first composite preform element 1306a.
- UCF 2023-069-04 PATENT [0269]
- a third composite preform element 1306c may be fabricated by placing a drawn-down (e.g., scaled) instance of the first composite preform element 1306a within another original-size instance of the first composite preform element 1306a.
- the nested-element preform 1300 may be formed by adding an additional tubular preform element 1302e to the third composite preform element 1306c.
- FIGS. 13A-B and the associated descriptions are provided solely for illustrative purposes and should not be interpreted as liming.
- the particular nested-element preform 1300 may be fabricated using numerous techniques including individual or composite preform elements.
- a support structure 108, and thus a support structure preform element 1304 need not be solid, but may be porous, include one or more air gaps extending along the fiber length, or the like.
- any particular support structure 108 may be formed using a single support structure preform element 1304 or multiple support structure preform elements 1304.
- a particular support structure 108 may be formed using multiple support structure preform elements 1304, which may each have any shape including, but limited to, a rod or a tube. When drawn, such support structure preform elements 1304 may fuse together or may retain their shapes.
- a support structure 108 including air gaps that extend along the fiber length may be formed using one or more tubular support structure preform elements 1304 and/or a series of solid support structure preform elements 1304 arranged with air gaps between them.
- any of the features of an AR-HCF 100 such as, but not limited to, AR elements 106, support structures 108, or cladding structures 102 may have any cross-sectional shape such as, but not limited to, a circle, an ellipse, a triangle, a square, a pentagon, a hexagon, a heptagon, an octagon, a figure “8,” or the like. Any such shapes may be complete or truncated. Further, any such shapes may be solid, porous, tubular, or have air gaps extending along the fiber length. Finally, the various features of an AR-HCF 100 may be formed from a single composition or different compositions.
- an AR-HCF 100 further includes a second set of AR elements 106 distributed around the interior wall of the cladding and interleaved with the first set of AR elements 106. This second set of AR elements 106 may aid in the confinement of light even and enable low-loss performance for a greater range of bend diameters than achievable without these elements.
- FIGS. 14-25 depict different designs of AR-HCFs 100 with two sets of AR elements 106 distributed around a perimeter of a hollow interior region 104. It is to be understood that FIGS.14-25 are provided merely for illustrative purposes and should not be interpreted as limiting on the scope of the present disclosure.
- FIG. 14 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the AR-HCF 100 includes a first set of five AR elements 106-1 and a second set of five AR elements 106-2 interleaved with the first set of AR elements 106-1.
- an outer dimension ⁇ ⁇ of the first set of AR elements 106-1 is larger than an outer dimension of the second set of AR elements 106-2.
- the hollow interior region 104 in which light is guided is primarily defined by the first set of AR elements 106-1.
- FIG.14 further depicts a configuration in which both the first set of AR elements 106-1 and the second set of AR elements 106-2 include multiple instances of a pattern of nested AR elements 106, except that the sizes of the constituent AR elements 106 are different.
- each instance includes a first AR element 106a (e.g., an outer AR element 106) and a second AR element 106b (e.g., an inner AR element 106).
- all of the AR elements 106 have a common wall thickness ⁇ , though this is not a requirement.
- the first set of AR elements 106-1 are spatially separated from (e.g., not in contact with) the second set of AR elements 106-2. However, this is not a requirement.
- FIG. 16 is substantially similar to the design depicted in FIG. 14, except that the design depicted in FIG.16 includes six instances of nested AR elements 106 in both the first set of AR elements 106-1 and the second set of AR elements 106-2.
- FIG. 17 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the design depicted in FIG. 17 is substantially similar to the design depicted in FIG. 14, except that the first set of AR elements 106-1 includes third AR elements 106c within an interior region of the second AR elements 106b.
- FIG. 18 is a cross-sectional view of a fifth design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- FIGS.14-19 depicted designs of an AR-HCF 100 in which a first set of AR elements 106-1 and a second set of AR elements 106-2 have common numbers of constituent features.
- FIGS.20-23 designs of an AR-HCF 100 having different numbers of features in different sets of AR elements 106 are UCF 2023-069-04 PATENT shown.
- FIG. 20 depicts a configuration in which at least some of the AR elements 106 are symmetrically distributed around a perimeter of the hollow interior region 104, which may provide polarization-independent guiding of light.
- FIGS.21-23 depict configurations in which at least some of the AR elements 106 are asymmetrically distributed around a perimeter of the hollow interior region 104, which may provide polarization-sensitive (e.g., polarization-maintaining) guiding of light.
- FIG. 20 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure. The design depicted in FIG. 20 is substantially similar to the design depicted in FIG. 16, except that the second set of AR elements 106-2 includes three instances of nested AR elements 106 rather than 6. Additionally, the second set of AR elements 106-2 are symmetrically distributed around a perimeter of the hollow interior region 104.
- FIG. 20 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure. The design depicted in FIG. 20 is substantially similar to the design depicted in FIG. 16, except that the second set of AR elements 106-2 includes three instances of nes
- FIG. 21 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the design depicted in FIG. 21 is substantially similar to the design depicted in FIG. 20, except that the second set of AR elements 106-2 has only two AR elements 106, which are distributed on opposite sides of the AR-HCF 100.
- FIG. 22 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the AR-HCF 100 includes a first set of five AR elements 106-1 and a second set of three AR elements 106-2 interleaved with the first set of AR elements 106-1.
- FIG. 23 is a cross-sectional view of one design of an AR-HCF 100, in accordance with one or more embodiments of the present disclosure.
- the first set of AR elements 106-1 is the same as depicted in the design of FIG. 17, but the second set of AR elements 106 is the same as depicted in the design of FIG.22.
- an AR-HCF 100 may include any UCF 2023-069-04 PATENT number of sets of AR elements 106 having different sizes and/or designs of constituent features. In this way, the depiction of only two sets of AR elements 106 in FIGS.14- 23 is merely illustrative.
- any particular set of AR elements 106 may have any combination of AR elements 106 with any selected size, shape, wall thickness, or any other property. Further, any particular set of AR elements 106 may have any number of nested AR elements 106 in any arrangement.
- FIGS.15-23 may similarly include support structures. These support structures, like those shown in FIG. 24, may be separate from the AR elements 106 or may be a part of the AR elements 106. Support structures may exist within inner AR elements, either separate from those AR elements or combined with those AR elements. [0291] Referring now to FIG.25, the bending performance of selected designs of an AR-HCF 100 is described. FIG.
- FIG. 25 is a plot 2500 of confinement losses for the fundamental mode (LP01) and higher-order modes (LP11) for an AR-HCF 100 with a UCF 2023-069-04 PATENT traditional nested AR nodeless fiber (NANF) design including only a single set of AR elements 106 (shown in panel 2502) along with an AR-HCF 100 with the design depicted in FIG. 14 (shown in panel 2504), in accordance with one or more embodiments of the present disclosure.
- the design depicted in FIG.14 including multiple sets of AR elements 106 with different sizes have superior bending performance.
- an AR-HCF 100 as disclosed herein with multiple sets of AR elements 106 with different sizes provides a microbending and/or macrobending loss improvement of at least 10%.
- the herein described subject matter sometimes illustrates different components contained within, or connected with, other components. It is to be understood that such depicted architectures are merely exemplary, and that in fact many other architectures can be implemented which achieve the same functionality. In a conceptual sense, any arrangement of components to achieve the same functionality is effectively “associated” such that the desired functionality is achieved. Hence, any two components herein combined to achieve a particular functionality can be seen as "associated with” each other such that the desired functionality is achieved, irrespective of architectures or intermedial components.
- any two components so associated can also be viewed as being “connected” or “coupled” to each other to achieve the desired functionality, and any two components capable of being so associated can also be viewed as being “couplable” to each other to achieve the desired functionality.
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| US202363465762P | 2023-05-11 | 2023-05-11 | |
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| US202463626922P | 2024-01-30 | 2024-01-30 | |
| PCT/US2024/029157 WO2024234007A1 (en) | 2023-05-11 | 2024-05-13 | Anti-resonant hollow-core fibers featuring support structures |
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| EP4609242A4 EP4609242A4 (en) | 2026-02-25 |
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