CN1317098A - Radially nonuniform and azimuthally asymmetric optical fiber - Google Patents

Radially nonuniform and azimuthally asymmetric optical fiber Download PDF

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Publication number
CN1317098A
CN1317098A CN99810742A CN99810742A CN1317098A CN 1317098 A CN1317098 A CN 1317098A CN 99810742 A CN99810742 A CN 99810742A CN 99810742 A CN99810742 A CN 99810742A CN 1317098 A CN1317098 A CN 1317098A
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sector
core
waveguide
refractive index
radius
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V·A·巴加万吐拉
R·M·霍克
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Corning Inc
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Corning Inc
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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/02Optical fibres with cladding with or without a coating
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B37/00Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
    • C03B37/01Manufacture of glass fibres or filaments
    • C03B37/012Manufacture of preforms for drawing fibres or filaments
    • C03B37/01205Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments
    • C03B37/01211Manufacture 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
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B37/00Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
    • C03B37/01Manufacture of glass fibres or filaments
    • C03B37/012Manufacture of preforms for drawing fibres or filaments
    • C03B37/01205Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments
    • C03B37/01211Manufacture 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
    • C03B37/01222Manufacture 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 multiple core optical fibres
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B37/00Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
    • C03B37/01Manufacture of glass fibres or filaments
    • C03B37/012Manufacture of preforms for drawing fibres or filaments
    • C03B37/01205Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments
    • C03B37/01225Means for changing or stabilising the shape, e.g. diameter, of tubes or rods in general, e.g. collapsing
    • C03B37/01228Removal of preform material
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B37/00Manufacture or treatment of flakes, fibres, or filaments from softened glass, minerals, or slags
    • C03B37/01Manufacture of glass fibres or filaments
    • C03B37/012Manufacture of preforms for drawing fibres or filaments
    • C03B37/01205Manufacture of preforms for drawing fibres or filaments starting from tubes, rods, fibres or filaments
    • C03B37/01225Means for changing or stabilising the shape, e.g. diameter, of tubes or rods in general, e.g. collapsing
    • C03B37/01228Removal of preform material
    • C03B37/01231Removal of preform material to form a longitudinal hole, e.g. by drilling
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/02Optical fibres with cladding with or without a coating
    • G02B6/02295Microstructured optical fibre
    • G02B6/02314Plurality of longitudinal structures extending along optical fibre axis, e.g. holes
    • G02B6/02319Plurality of longitudinal structures extending along optical fibre axis, e.g. holes characterised by core or core-cladding interface features
    • G02B6/02338Structured core, e.g. core contains more than one material, non-constant refractive index distribution in core, asymmetric or non-circular elements in core unit, multiple cores, insertions between core and clad
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B2203/00Fibre product details, e.g. structure, shape
    • C03B2203/10Internal structure or shape details
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B2203/00Fibre product details, e.g. structure, shape
    • C03B2203/10Internal structure or shape details
    • C03B2203/12Non-circular or non-elliptical cross-section, e.g. planar core
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B2203/00Fibre product details, e.g. structure, shape
    • C03B2203/10Internal structure or shape details
    • C03B2203/22Radial profile of refractive index, composition or softening point
    • C03B2203/29Segmented core fibres
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B2203/00Fibre product details, e.g. structure, shape
    • C03B2203/32Eccentric core or cladding
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B2203/00Fibre product details, e.g. structure, shape
    • C03B2203/34Plural core other than bundles, e.g. double core
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/02Optical fibres with cladding with or without a coating
    • G02B6/036Optical fibres with cladding with or without a coating core or cladding comprising multiple layers
    • G02B6/03616Optical fibres characterised both by the number of different refractive index layers around the central core segment, i.e. around the innermost high index core layer, and their relative refractive index difference
    • G02B6/03638Optical fibres characterised both by the number of different refractive index layers around the central core segment, i.e. around the innermost high index core layer, and their relative refractive index difference having 3 layers only
    • G02B6/03644Optical fibres characterised both by the number of different refractive index layers around the central core segment, i.e. around the innermost high index core layer, and their relative refractive index difference having 3 layers only arranged - + -

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Abstract

Disclosed is a single mode waveguide fiber and a method of making a single mode or multimode waveguide fiber which has an azimuthally and radially asymmetric core. This asymmetry provides additional degrees of freedom for use in forming a waveguide having particular performance characteristics.

Description

The asymmetric optical fiber of radially nonuniform and azimuthally
Background of invention
The present invention is based on the U.S. Provisional Application of submitting on September 9th, 1,998 60/099,535.We require the priority date of this application.
The present invention relates to a kind of optical fiber and a kind of methods for optical fiber manufacture, the refractive index distribution curve of described optical fiber radially with the position angle two changes of direction.The additional adaptability of giving along azimuthal variation provides such refractive index distribution curve design, promptly with refractive index only radially coordinate direction situation about changing compare, these designs can be satisfied more waveguide fiber performance requirement.
The waveguide fiber that the index distribution of recent development radially changes footpath demonstrates, and can optimize guide properties by regulating this distribution curve.For example with the simple step mode of a kind of ratio more generally mode change refractive index distribution curve, this change allows to select the value of one or more guide properties under the situation of not sacrificing one group of basic characteristic (decay, intensity or bending resistance).
In addition, the asymmetric fiber core refractive index distribution in some position angle (having the distribution of ellipse, triangle or square fibre core geometric configuration such as those) demonstrates, and they can provide the waveguide performance of usefulness, such as keeping or mixed polarized pattern.
Therefore, expectation along the position angle and radially the fiber core refractive index distribution curve of two changes of direction can offer an opportunity make be suitable in telecommunications, signal Processing or sensing system, using, have new or through the waveguide of improvement performance.
In the United States Patent (USP) 3,909,110 of authorizing Marcuse (being called for short ' 110 patents), a kind of multimode waveguide has been described, its fibre core relative bearing is asymmetric.Calculating in ' 110 patents shows, refractive index radially produces Mode Coupling with the cyclical variation meeting of position angle both direction, thereby increases the loss because of being coupled and producing with radial mode of bandwidth, restriction simultaneously.This notion does not extend to single mode waveguide.The scope of patent is also only limited to sinusoidal azimuthal variation in addition, ' 110.
Describe present position angle and radially during asymmetric fibre core, introducing the notion of fibre core sector.A fibre core sector is the part of fibre core, and it is limited by the track that forms first and second radius point of annulus in the waveguide.Two radiuses differ from one another, and are less than or equal to fiber core radius.The residue border of sector is at angle two planes each other, and each plane all comprises the center line of waveguide fiber.Refractive index is meant to have the refractive index difference of two points on this straight line at least along the variation of a straight line in the sector.
Definition
Below definition meets the conventional usage of this area.
-segmented core is a kind of fibre core that has specific refractive index in the layering of preliminary election radius.A particular hierarchical has the first refractive index point and last refractive index point.Radius from the waveguide core line to the first refractive index point position is the inside radius of core region or fibre core layering.Equally, from the waveguide core line to the end the radius of refractive index point position be the external radius of fibre core layering.
-relative index of refraction Δ, it is defined by following formula: Δ=(n 1 2-n 2 2)/2n 1 2, wherein, n 1Be the largest refractive index of refractive index layering 1, and n 2Be with reference to refractive index, in this application, it is the minimum refractive index of covering.Term " Δ % " is used in this area, and it is 100 * Δ.
-term " refractive index distribution curve " is meant, in the relation between Δ % or refractive index and the radius on the fibre core one selected part.Term " α distribution curve " is meant, satisfies the refractive index distribution curve of following equation:
n(r)=n 0(1-Δ[r/a] α),
Wherein r is a fiber core radius, the definition of Δ as above, a is the last point of distribution curve, r locates to be chosen as zero first of distribution curve, and α is the index that limits profile shape.Other refractive index distribution curve comprises the step change type refractive index of step change type refractive index, trapezoidal refractive index and band fillet, wherein generally causes owing to alloy spreads in the fast-changing zone of refractive index with fillet.
Summary of the invention
In a first aspect of the present invention, the fibre core of single mode waveguide has a sector at least.In the sector outside more at least refractive index and the sector more at least refractive index different.When the sector just in time is half fibre core, can selects to constitute in the sector part of any arbitrarily, and not lose the accuracy of distribution curve definition.The fiber core refractive index distribution curve changes along at least a portion of a radius, produces radially asymmetric.On the radius of a preliminary election, the fiber core refractive index in the sector is different with the fiber core refractive index outside the sector, thereby provides the position angle asymmetric.
In one embodiment, whole fibre core is a cylinder symmetric, and therefore radius r, position angle φ and the center line height z of being convenient to cylindrical coordinates describes.The preliminary election radius part Δ r that refractive index changes is at 0<Δ r≤r 0Scope in, r wherein 0It is fiber core radius.At least be that different preliminary election radius is in this same scope for two different orientations refractive indexes.
In another embodiment, the preliminary election radius partly is layering Δ r=r2-r1, wherein 0≤r 1<r 2, and r 2<r 0
In another embodiment, refractive index is along any or all change in radius in the sector, and the included angle of described sector is greater than zero degree, but is less than or equal to 180 °.
In another embodiment, the radius part is at 0<Δ r≤r 0Scope in, and position angle φ and the height z have any value, as long as coordinate points (r, φ is z) in core region.
In other embodiment of the present invention, stipulated the number of sector and the Angular Dimension and the radius size of sector, and stipulated the funtcional relationship between radius r and the relative index of refraction Δ %.The example of funtcional relationship is the step change type refractive index distribution curve of α distribution curve, step change type and band fillet, and the trapezoidal profile curve.
In other embodiment of the present invention, waveguide has a segmented core and stated number destination sector, has embedded the vitreum with specific size and shape in some zones of sector.Below described and had three and four sectors and embodiment that have particular fiber cored structure and embedded part.In certain embodiments, embedded part itself has the refractive index structures of layering.
In general, the embodiment of first aspect present invention can be single mode or multimode waveguide fiber.
A second aspect of the present invention is a kind of position angle and method of asymmetric waveguide fiber radially made.This method can be used for making single mode or multimode waveguide fiber.
One embodiment of the present of invention may further comprise the steps: change the shape of wire drawing prefabricated rods, then prefabricated stick drawn wire is become a waveguide fiber with round section.Like this, the shape of prefabricated rods just has been transferred to the cylinder symmetric feature that is comprised in the prefabricated rods, specifically has been transferred to the cylinder symmetric feature of fibre core.The shape of wire drawing prefabricated rods can be used such as any method in the methods such as etching, saw, boring or mill and change.
In an embodiment of this method, change prefabricated rods by formation hole or surface gap in prefabricated rods.Prefabricated rods after the change becomes the waveguide fiber with round section through follow-up wire drawing, make the fibre core of circular symmetry become radially or the position angle asymmetric.
Summary of drawings
Figure 1A is a sectional view, shows the present invention and has the waveguide of central core design or an embodiment of prefabricated rods.
Figure 1B is the refractive index distribution curve of obtaining by the 1B cross section of Figure 1A.
Fig. 1 C is the refractive index distribution curve of obtaining by the 1C cross section of Figure 1A.
Fig. 1 D is a sectional view, shows the present invention and has the waveguide of central core design or an embodiment of prefabricated rods.
Fig. 1 E is the refractive index distribution curve of obtaining by the 1E cross section of Fig. 1 D.
Fig. 1 F is the refractive index distribution curve of obtaining by the 1F cross section of Fig. 1 D.
Fig. 1 G is a sectional view, shows the present invention and has the waveguide of embedding core design or an embodiment of prefabricated rods.
Fig. 2 A is a sectional view, shows to have the waveguide that embeds core design or an embodiment of prefabricated rods.
Fig. 2 B is the refractive index distribution curve of obtaining by the 2B cross section of Fig. 2 A.
Fig. 2 C is a sectional view, shows to have the waveguide that embeds core design or an embodiment of prefabricated rods.
Fig. 2 D is the refractive index distribution curve of obtaining by the 2D cross section of Fig. 2 C.
Fig. 2 E is a sectional view, shows to have the waveguide that embeds core design or an embodiment of prefabricated rods.
Fig. 2 F is a sectional view, shows to have the waveguide that embeds core design or an embodiment of prefabricated rods.
Fig. 3 is a sectional view, shows the novel waveguide or the prefabricated rods that contain the hole.
Fig. 4 A and 4B and 4C and 4D are sectional views, show wire drawing after the prefabricated rods profile pass to fibre core.
Fig. 5 A and 5B are sectional views, show the influence of the hole of prefabricated rods to core shape.
Fig. 6 A and 6B and 7A and 7B show the sectional view of preform core and pipe assembly, and the waveguide to obtaining after the assembly wire drawing.
Fig. 8 A and 8B are sectional views, show the segmented core prefabricated rods of fluting, and the waveguide that obtains after the wire drawing.
Detailed description of the present invention
Breach 4 makes that the fibre core 2 of Figure 1A is that the position angle is asymmetric.In this illustrated novel prefabricated rods or waveguide fiber, the material of breach is identical with the material of covering 6.Figure 1B and Fig. 1 C show the vertical cross-section by fibre core respectively, and have provided the azimuthal variation of step change type refractive index distribution curve width.This specific distribution curve is a radial symmetry.
The prefabricated rods of Fig. 1 D or waveguide cores radially with all be asymmetric on the position angle.In this illustrated novel waveguide or prefabricated rods, fibre core is divided into four sectors.Shown in the sector 1F and 1E that obtain by fibre core, sector, two diagonal angles 8 and 10 is the other side's catoptron picture mutually.In Fig. 1 E, label 16 expression 1E sectors are to dependence radially, and it is band fillet step change type distribution curve or α distribution curve.In Fig. 1 F, the distribution curve 18 of 1F sector is the step change type refractive index distribution curve.Clad section 12 and 14 can comprise any material of refractive index less than adjacent core region.That is to say that the situation that the composition of covering generally only is subjected to fibre core cladding structure guided wave situation rather than radiant light to enter waveguide limits.
Fig. 1 G is according to the complicated structure of an example of novel prefabricated rods and waveguide.In this illustrated waveguide, fibre core or fibre core prefabricated rods 20 comprise a segmented core, and this fibre core has center 22 and adjacent annulus 28,24 and 26.Each district all uses corresponding relative index of refraction Δ %, refractive index distribution curve and is characterized by radius 32,34,36,38 and 40 determined zones.For example, center 22 and annulus 24 comprise separately mixes germanite English glass accordingly, and annulus 28 and 26 comprises quartz, and the relative size in each district is referring to accompanying drawing.The vitreum 30 that embeds is with asymmetric introducing fibre core prefabricated rods, and the refractive index of vitreum 30 is general different with its annular layering that is contacted 24 or 26.
Vitreum 30 can form in the following manner, and for example saw or grinding earlier used such as modes such as depositions to be filled in the container with glass then.The luminous energy that each layering 22,28,24,26 and 30 relative index of refraction and size thereof will determine 20 of fibre cores to deliver distributes.Luminous energy distributes on fibre core prefabricated rods or fibre core 20 and has determined the functional characteristic of waveguide.
In another embodiment of novel prefabricated rods or waveguide, shown in Fig. 2 A, fibre core is made of host glass 50, and host glass 50 has the vitreum 42,44 and 48 of embedding.Vitreum extends in prefabricated rods or the waveguide that obtained by prefabricated stick drawn wire from the beginning to the end.Glass-clad 52 is wrapped in fibre core 50.The refractive index of glass of fiber core 50 is greater than the refractive index of covering 52.Fig. 2 B shows the cross section 2B by an embedded body, and it has the step change type refractive index distribution curve.The size that embeds the sectional area of vitreum 42,44 and 48 can be identical or different, and glass-clad can have many relative orientations relatively.
The structure of Fig. 2 A is made by following method, promptly to prefabricated rods boring, makes the wall in gained hole smooth, and glass dust or rod are inserted in the hole.Another kind method is, with many bar construction fibre cores, then rod inserted in the holding tube, can use or not use insulating glass rod or glass particle.If these rods are combined, so just do not need holding tube with suitable glass isolated material.Surrounding layer can be deposited on the coupling unit, perhaps be made into a pipe, before the wire drawing or during pipe is collapsed on assembly.
Fig. 2 C shows another embodiment, and it comprises host glass and a plurality of embedding vitreum.Here, the general structure of waveguide 54 is similar to the structure of Fig. 2 A, except each embeds the refractive index distribution curve that vitreum 56,58 and 60 all has a segmented core.Fig. 2 D illustration a segmented core distribution curve, it is the cross section by an embedded body, wherein the center has higher relatively Δ %, coated outside two annuluses 62 and 64.In the figure, the Δ % of first ring 62 is less than second ring 64.Be appreciated that each layering all has a radially dependence of selecting from multiple possibility, such as the step change type distribution curve of α distribution curve or band fillet, and can regulate the relative Δ % of each layering, so that different waveguide functional characteristics to be provided.
The manufacture method of prefabricated rods or waveguide shown in Fig. 2 C manufacture method with prefabricated rods shown in Fig. 2 A or waveguide in fact is identical.
Fig. 2 E and Fig. 2 F show two other embodiment of this prefabricated rods or waveguide type.Embedding vitreum 66,68 and 70 among Fig. 2 E has the cross section of rectangle, and is arranged in the drift angle of equilateral triangle substantially.Also attempted embedding Vitrea other and arranged, such as diameter arrangement along core region.Core region 72 can comprise many kinds of shapes and form very much.In the simple case shown in Fig. 2 E, glass of fiber core 72 is step change type refractive index distribution curves, and presses the leaded light needs, and its refractive index is at least greater than the part of covering 74.
In Fig. 2 F, show a kind of five Vitrea structures of embedding that comprise.Here, four vitreums 76,78,80 and 82 with diamond-shaped cross-section are made the symmetry layout about circular central core region 84.Clearly, this design can have many kinds to change.For example, embedded body 76,78,80,82 and 84 refractive index can have the relative index of refraction different with fibre core 86.
As shown in Figure 3, the embedded body 88 in prefabricated rods or the waveguide can be the hole.The waveguide that has elongated hole along major axis can be made by forming elongated hole, for example forms by boring or etching in fibre core or the wire drawing prefabricated rods.The refractive index of glass of fiber core 90 must be different from the refractive index in hole, and asymmetric core region is provided thus.In wire drawing prefabricated rods shown in Figure 3, can be collapsed in the hole, to produce asymmetric fibre core.The shape of core region is decided by the relative viscosity of core material 90 and clad material 92 after collapsing in the hole.By control prefabricated rods in just by the thermograde of the part of wire drawing, can keep to the glass relative viscosity control.Relative viscosity also depends on the composition of fibre core and cladding glass.
Fig. 4 A and Fig. 4 B show the shape 98 that makes prefabricated rods among Fig. 4 A and pass to the core segment 102 of the waveguide 100 that obtains through prefabricated rods 98 wire drawings Fig. 4 B from the clad section 94 of prefabricated rods.When the symmetry of the initial symmetry of preform core and waveguide covering 104 was identical, the transmission shown in Fig. 4 A and Fig. 4 B took place.Shown cylinder symmetric among the figure, because this is and the present prefabricated rods manufacturing symmetry the most compatible with drawing process.Other symmetry also is fine, and for example the shape with prefabricated rods partly passes to the waveguide cores shape, i.e. the net shape stray circle cylindrical symmetry of waveguide.
Fig. 4 C shows the cross section of square segmented core prefabricated rods.After becoming cylindrical waveguide to the prefabricated rods heating and with its wire drawing, the segmented core 106 among Fig. 4 D is got square, because core material generation drag flow, to adapt to the cylindrical surface of covering.
Use similar mode, when the prefabricated stick drawn wire that has fibre core 110, covering 112 and elongated hole 108 in Fig. 5 A becomes cylindrical waveguide, it will produce asymmetric fibre core.But in this case, prefabricated rods is columniform, and core material fills up the hole during can Yin Lasi and is moved.As long as keep the shape of prefabricated rods when prefabricated stick drawn wire is become waveguide, fibre core will inevitably be out of shape, and promptly becomes asymmetric, to fill up the hole.
For example
With the prefabricated rods type shown in the outside vapor deposition process shop drawings 5A.Core region 110 is to mix germanite English, and covering 112 is quartzy.By boring, make hole wall smooth with etching solution then, in prefabricated rods, form hole 108.Prefabricated stick drawn wire is become a waveguide fiber, and its zero-dispersion wavelength is in the operation window of 1500nm, even waveguide generation dispersion shift.Compare with having the dispersion shift waveguide in 7 μ m to 8 mu m ranges of azimuthal symmetry fibre core and mode field diameter, this waveguide has very large mode field diameter 10.4 μ m.
Fig. 6 A and Fig. 6 B show the manufacture method of asymmetric fibre core.Make segmented core prefabricated rods 114,116 and 118 with any method in several known methods, described known method comprises OVD, axial vapor deposition method, plasma deposition processes or modified chemical vapor deposition method.The fibre core prefabricated rods is inserted in the pipe 122, in pipe 122, prefabricated rods is kept in position with spacer rod 120.Spacer rod can be made by quartz, doping quartz etc.If desired, covering 124 can be deposited on the pipe.Now, the wire drawing of prefabricated rods assembly can be become a waveguide fiber, shown in Fig. 6 B, its fibre core 130,132 and 134 is embedded in the glass of fiber core 128, and is wrapped in by glass-clad 126.Can directly carry out wire drawing to the assembly shown in Fig. 6 A.Another kind method is, before wire drawing, with the covering consolidation of deposition.In addition, before the deposition covering, can fully heat, make its surface softening, cause to each other to stick together, thereby form more stable structure, so that in surrounding layer or drawing process, use to pipe, fibre core prefabricated rods and spacer rod assembly.
Method shown in the manufacture method of the asymmetric fibre core shown in Fig. 7 A and Fig. 7 B and Fig. 6 A and Fig. 6 B is closely related.In Fig. 7 A, fibre core is encircled 136 and is being retrained, and ring 136 can make light propagate in step change type refractive index fibre core prefabricated rods 138,140 and 142 better.As mentioned above, can stablize the relative position of fibre core prefabricated rods in ring with spacer rod or glass dust.Can be directly to the assembly wire drawing of fibre core prefabricated rods, selectable isolated material, ring and outsourcing layer, perhaps elder generation is with assembly consolidation, wire drawing then.Fig. 7 B shows resulting waveguide fiber.
Fig. 8 A and 8B show the manufacture method of last routine asymmetric fibre core.In Fig. 8 A, the segmented core of prefabricated rods has center 144, first annulus 146 and second annulus 148.Prefabricated rods is passed through technologies such as grinding and cut, forms groove 152.These grooves can be empty, perhaps fill up material 150, and material 150 is different from the composition of covering 154.To the wire drawing of prefabricated rods assembly, form a waveguide, it has the asymmetric fibre core shown in Fig. 8 B.Here, can perhaps before wire drawing, deposit directly with the assembly wire drawing equally, consolidation or positioning step, so that each parts in the prefabricated rods keep suitable relative positioning.
Although in this announcement with describe specific embodiment of the present invention, the present invention is only limited by the accompanying Claim book.

Claims (29)

1. single-mode fiber, it has radially and the asymmetric fibre core in position angle, it is characterized in that, comprising:
Core region, it contacts with on every side covering, and the refractive index of at least a portion is greater than the refractive index of at least a portion in the covering in the core region;
The center line of waveguide is parallel to the length direction of waveguide, and waveguide has a fibre core sector that is limited by first and second planes at least, and intersect in a peripheral layering with core region on first and second planes, wherein first and second planes all comprise center line and form an included angle≤180 ° in centerline
Fiber core refractive index changes along at least a portion Δ r of a preliminary election radius, and described preliminary election radius part stretches out perpendicular to center line; And
In described at least one fibre core sector, one have at least on the radius any fiber core refractive index to be different from this preliminary election radius outside described at least one fibre core sector more at least fiber core refractive index value in advance.
2. single mode waveguide as claimed in claim 1 is characterized in that core region is cylindrical, and the point in the core region has cylindrical coordinates, i.e. radius r, position angle φ and center line height z, and the radius of core region is r=r 0, and preliminary election radius part is at 0<Δ r≤r 0Scope in.
3. single mode waveguide as claimed in claim 2 is characterized in that, the preliminary election radius partly is layering Δ r=r 2-r 1, 0≤r wherein 1<r 2, and r 2<r 0
4. as claim 2 or 3 described single mode waveguides, it is characterized in that preliminary election radius part any one radius at least one sector, the angle of described at least one sector are 0<φ≤180 °.
5. single mode waveguide as claimed in claim 2 is characterized in that, preliminary election radius part Δ r is at 0<Δ r≤r 0Scope in, the position angle of this radius is in the scope of 0<φ≤360 °, and this radius draws from any point z on the center line.
6. single mode waveguide as claimed in claim 2 is characterized in that, the preliminary election radius partly is layering Δ r=r 2-r 1, 0≤r wherein 1<r 2, and r 2≤ r 0, the radius position angle that comprises this layering and comprises this layering radius and draws from any point z on the center line in the scope of 0<φ≤360 °.
7. single mode waveguide as claimed in claim 2, it is characterized in that, fibre core has four isopyknic sectors, they are 1-4 by counterclockwise azimuth direction number consecutively, the boundary surface of each sector all is 90 ° angle, and sector 1 and sector 3 have the refractive index radial variations that function f (r) limits, and sector 2 and sector 4 have the refractive index radial variations that function g (r) limits.
8. single mode waveguide as claimed in claim 7 is characterized in that, g (r) is the step change type refractive index, and f (r) is the α distribution curve.
9. single mode waveguide as claimed in claim 2 is characterized in that, fibre core has 4 isopyknic sectors, and the boundary surface of each sector all is 90 ° angle, and the refractive index distribution curve of each sector all has a core, and its radius is r c, relative index of refraction is a Δ c, and between the plane that limits this sector, extend,
First annulus, it contacts with core, and it has external radius r 1, the relative index of refraction Δ 1, and between the plane that limits the sector, extend,
Second annulus, it contacts with first annulus, and it has external radius r 2, the relative index of refraction Δ 2, and between the plane that limits the sector, extend,
The 3rd annulus, it contacts with second annulus, and it has external radius r 3, the relative index of refraction Δ 3, and between the plane that limits the sector, extend,
First volume, it has constant refractive index, be embedded in the fibre core of first sector, and a part that limits first plane of this sector defines its surperficial first, and the part of first, second and the 3rd annulus defines its surperficial second portion
Second volume, it has constant refractive index, be embedded in the fibre core of first sector, and a part that limits second plane of this sector defines its surperficial first, and the part of first, second and the 3rd annulus defines its surperficial second portion, wherein
Remaining three sectors all comprise embedded body, the volume that the limiting mode on these embedded body surfaces is embedded in corresponding to first sector, and wherein each relative index of refraction and radius satisfy with lower inequality:
0≤r c<r 1<r 2<r 3≤ r 0, and Δ c〉=Δ 2>Δ 1〉=Δ 3
10. single mode waveguide as claimed in claim 2, it is characterized in that, fibre core has three sectors, each sector all comprises first vitreum with constant refractive index, first vitreum is embedded in the secondary vitreous with constant refractive index, and wherein the refractive index of first glass is greater than the refractive index of second glass.
11. single mode waveguide as claimed in claim 10 is characterized in that, each first vitreum all is a slender bodies, and its major axis is parallel to center line, and wherein the vertical cross-section of slender bodies is selected from the group that following shape is formed: circle, ellipse and parallelogram.
12. single mode waveguide as claimed in claim 2, it is characterized in that, fibre core has three sectors, each sector all comprises an elongated vitreum, this vitreum has core, first annular section and at least one additional annular part, wherein first annular section wraps up and the contact core, and at least one additional annular partly contacts and wrap up annular section, and the major axis of each slim-lined construction all is parallel to center line.
13. single mode waveguide as claimed in claim 12 is characterized in that, core is a right cylinder, and its radius is r c, refractive index is a Δ c, annular section is a pipe, its external radius is respectively r i, refractive index is a Δ i, i=1 wherein ... n, n are the numbers of annular section, and the Δ of i when being even number iΔ when being odd number greater than i i
14. single mode waveguide as claimed in claim 2 is characterized in that, fibre core has four sectors, and each sector all comprises first vitreum, and the first Vitrea relative index of refraction is a Δ 1, and to embed in each sector first vitreum be that elongated a, relative index of refraction is a Δ 2Secondary vitreous, the relative center line symmetric arrangement of each slender bodies wherein.
15. a method that is used to make radially with asymmetric single mode in position angle or multimode optical fiber is characterized in that, may further comprise the steps:
A) make single mode or multimode optical fiber preform, described prefabricated rods has major axis, fibre core and covering, and wherein prefabricated rods all is circular perpendicular to any cross section of major axis;
B) grind, amputate or remove the peripheral part of prefabricated rods, change the surface of prefabricated rods, cause prefabricated rods identical with prefabricated rods in fact perpendicular to the shape in any other cross section of major axis perpendicular to the shape in any cross section of major axis;
C) prefabricated rods is heated, and its wire drawing is become a waveguide fiber along its major axis, this waveguide fiber has fibre core, major axis, and all has the round section perpendicular to major axis on any point of major axis, thereby the waveguide cores with the shape that changes the back prefabricated rods is provided.
16. method as claimed in claim 15 is characterized in that, step b) comprises the steps, promptly forms one or more breach on the prefabricated rods surface.
17. method as claimed in claim 16, it is characterized in that, manufacturing step a) comprises the steps, promptly make a segmented core prefabricated rods, this prefabricated rods has central core district and at least one parcel and contacts the annular section in central core district, wherein the relative index of refraction of center is different from the relative index of refraction of annular section, and has at least one or more breach to be penetrated in the annular section.
18. a method that is used to make radially with asymmetric single mode in position angle or multimode waveguide is characterized in that, may further comprise the steps:
A) make a preform, described prefabricated rods has major axis, fibre core and covering, and wherein prefabricated rods all is circular perpendicular to any cross section of major axis;
B) in the waveguide prefabricated rods, get out, grind or produce one or more holes that axle extends that prolong;
C) prefabricated rods is heated, and its wire drawing is become a waveguide fiber along its major axis, this waveguide fiber has fibre core, major axis, and all has the round section perpendicular to major axis on any point of major axis, thereby provides radially and the asymmetric waveguide cores in position angle.
19. a method that is used to make radially with asymmetric single mode in position angle or multimode optical fiber is characterized in that, may further comprise the steps:
A) make at least two preforms, every prefabricated rods all has a major axis;
B) will at least two the fibre core prefabricated rods insert in the pipe of making by cladding glass, forms a fibre core prefabricated rods-tube assembly, wherein between the border of at least two fibre core prefabricated rods and the inside of pipe formation interstitial opening with major axis;
C) assembly is heated, and its wire drawing is become a waveguide fiber along its major axis, this waveguide fiber has fibre core, major axis, and all has the round section perpendicular to major axis on any point of major axis, thereby the waveguide fiber that has radially with the asymmetric fibre core in position angle is provided.
20. method as claimed in claim 19, it is characterized in that, before step c), also comprise the steps, be about to cladding glass and be inserted in the interstitial opening that forms between at least two fibre core prefabricated rods and the pipe, the shape of wherein said cladding glass is selected from the group that is formed by following material: particle, rod and microsphere.
21. method as claimed in claim 19, it is characterized in that, manufacturing step a) comprises the steps, promptly make a segmented core prefabricated rods, this prefabricated rods comprises central core district and at least one parcel and contacts the annular section in central core district that wherein the relative index of refraction of center is different from the relative index of refraction of annular section.
22. a multimode optical fiber, it has radially and the asymmetric fibre core in position angle, it is characterized in that, comprising:
Core region, it contacts with on every side covering, and the refractive index of at least a portion is greater than the refractive index of at least a portion in the covering in the core region;
The center line of waveguide is parallel to the length direction of waveguide, and waveguide has four fibre core sectors, each sector is all limited by first and second planes, and intersect in a peripheral layering with core region on first and second planes, wherein first and second planes all comprise center line and form an included angle≤180 ° in centerline
Core region is cylindrical, and a bit has a cylindrical coordinates on the core region, i.e. radius r, and position angle φ and center line height z, and the radius of core region is r=r 0, and refractive index changes along radius part Δ r, and Δ r is at 0<Δ r≤r 0Scope in, wherein
Four fibre core sector volumes equate, by counterclockwise azimuth direction number consecutively is 1-4, and the boundary surface of each sector all is 90 ° angle, and sector 1 and sector 3 have the refractive index radial variations that function f (r) limits, and sector 2 and sector 4 have the refractive index radial variations that function g (r) limits.
23. waveguide as claimed in claim 22 is characterized in that, g (r) is the step change type refractive index, and f (r) is the α distribution curve.
24. waveguide as claimed in claim 22 is characterized in that, four fibre core sectors have equal volume, and the boundary surface of each sector all is 90 ° angle, and the refractive index distribution curve of each sector all has a core, and its radius is r c, relative index of refraction is a Δ c, and between the plane that limits this sector, extend,
First annulus, it contacts with core, and it has external radius r 1, the relative index of refraction Δ 1, and between the plane that limits the sector, extend,
Second annulus, it contacts with first annulus, and it has external radius r 2, the relative index of refraction Δ 2, and between the plane that limits the sector, extend,
The 3rd annulus, it contacts with second annulus, and it has external radius r 3, the relative index of refraction Δ 3, and between the plane that limits the sector, extend,
First volume, it has constant refractive index, be embedded in the fibre core of first sector, and a part that limits first plane of this sector defines its surperficial first, and the part of first, second and the 3rd annulus defines its surperficial second portion
Second volume, it has constant refractive index, be embedded in the fibre core of first sector, and a part that limits second plane of this sector defines its surperficial first, and the part of first, second and the 3rd annulus defines its surperficial second portion, wherein
Remaining three sectors all comprise embedded body, the volume that the limiting mode on these embedded body surfaces is embedded in corresponding to first sector, and wherein each relative index of refraction and radius satisfy with lower inequality:
0≤r c<r 1<r 2<r 3≤ r 0, and Δ c〉=Δ 2>Δ 1〉=Δ 3
25. waveguide as claimed in claim 22 is characterized in that, four fibre core sectors all comprise first vitreum, and the first Vitrea relative index of refraction is a Δ 1, and to embed in each sector first vitreum be that elongated a, relative index of refraction is a Δ 2Secondary vitreous, the relative center line symmetric arrangement of each slender bodies wherein.
26. a multimode optical fiber, it has radially and the asymmetric fibre core in position angle, it is characterized in that, comprising:
Core region, it contacts with on every side covering, and the refractive index of at least a portion is greater than the refractive index of at least a portion in the covering in the core region;
The center line of waveguide is parallel to the length direction of waveguide, and waveguide has four fibre core sectors, each sector is all limited by first and second planes, and intersect in a peripheral layering with core region on first and second planes, wherein first and second planes all comprise center line and form an included angle≤180 ° in centerline, wherein
Core region is cylindrical, and a bit has a cylindrical coordinates on the core region, i.e. radius r, and position angle φ and center line height z, and the radius of core region is r=r 0, and refractive index changes along radius part Δ r, and Δ r is at 0<Δ r≤r 0Scope in, wherein
Fibre core has three sectors, and each sector all comprises first vitreum with constant refractive index, and first vitreum is embedded in the secondary vitreous with constant refractive index, and wherein the refractive index of first glass is greater than the refractive index of second glass.
27. waveguide as claimed in claim 26 is characterized in that, each first vitreum all is a slender bodies, and its major axis is parallel to center line, and wherein the vertical cross-section of slender bodies is selected from the group that following shape is formed: circle, ellipse and parallelogram.
28. waveguide as claimed in claim 26, it is characterized in that, three fibre core sectors all comprise an elongated vitreum, this vitreum has core, first annular section and at least one additional annular part, wherein first annular section wraps up and the contact core, and at least one additional annular partly contacts and wraps up annular section, and the major axis of each slim-lined construction all is parallel to center line.
29. waveguide as claimed in claim 28 is characterized in that, core is a right cylinder, and its radius is r c, refractive index is a Δ c, annular section is a pipe, its external radius is respectively r i, refractive index is a Δ i, i=1 wherein ... n, n are the numbers of annular section, and the Δ of i when being even number iΔ when being odd number greater than i i
CN99810742A 1998-09-09 1999-08-20 Radially nonuniform and azimuthally asymmetric optical fiber Pending CN1317098A (en)

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CN105500719A (en) * 2016-01-28 2016-04-20 北京交通大学 Method for manufacturing terahertz waveguide preform by means of 3D printing technology
CN107017548A (en) * 2015-12-04 2017-08-04 恩耐公司 Using the optical mode filter of radially asymmetric optical fiber
CN110114320A (en) * 2016-12-28 2019-08-09 住友电气工业株式会社 Method for manufacturing fibre-optical preform

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PL223518B1 (en) 2013-03-12 2016-10-31 Wrocławskie Centrum Badań Eit + Spółka Z Ograniczoną Spindle for polishing the fiber preform polymeric microstructure, the method for polishing the polymer microstructure of the fiber preform and the fiber polymer microstructural spindle made of polished preform
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WO2018169487A1 (en) * 2017-03-14 2018-09-20 Nanyang Technological University Fiber preform, optical fiber and methods for forming the same
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CN107017548A (en) * 2015-12-04 2017-08-04 恩耐公司 Using the optical mode filter of radially asymmetric optical fiber
CN107017548B (en) * 2015-12-04 2020-07-17 恩耐公司 Optical mode filter using radially asymmetric optical fibers
CN105500719A (en) * 2016-01-28 2016-04-20 北京交通大学 Method for manufacturing terahertz waveguide preform by means of 3D printing technology
CN110114320A (en) * 2016-12-28 2019-08-09 住友电气工业株式会社 Method for manufacturing fibre-optical preform
CN110114320B (en) * 2016-12-28 2021-11-30 住友电气工业株式会社 Method for manufacturing optical fiber preform

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