PHOTONIC BAND GAP FIBER AND METHOD OF PRODUCING THE SAME
A photonic band gap fiber is provided having multiple air holes in a silica portion extending in the longitudinal direction of the fiber. The fiber includes a cladding containing an air hole periodic structure in an extended triangular lattice configuration, wherein first rows each having a number of air holes at a first pitch are arranged alternately in the cross section of the fiber with multiple second rows of air holes each with multiple air holes at a second pitch which is twice the first pitch. The fiber further includes an air hole core.
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1. Field of the Invention
The present invention relates to a photonic band gap fiber wherein multiple air holes are provided in silica portions along the longitudinal direction of the fiber. The photonic band gap fiber of the present invention can inhibit surface modes specific to ordinary photonic band gap fibers and can expand the transmission bandwidth of the fiber. It can, therefore, be used in very low loss optical transmissions, optical transmissions from the UV region to the visible light region and infrared region, and in fiber laser optical transmissions.
2. Description of Related Art
By using a periodic structure of air holes in the cladding, a photonic band gap fiber (hereinafter referred to as “PBGF”) can confine light in the core by making use of its photonic band gap. Even if the core is air, wave guidance is possible. (See R. F. Cregan, B. J. Mangan, J. C. Knight, T. A. Birks, P. St. J. Russell, P. J. Roberts, and D. C. Allan, “Single-mode photonic band gap guidance of light in air,” Science, vol. 285, no. 3, pp. 1537-1539, 1999.)
However, even if the periodic structure of air holes provided in the cladding forms a band gap, the core mode wherein light is concentrated in the core couples with the surface mode wherein light is concentrated in the silica close to the core edge and causes a large transmission loss. Thus, optical wave guiding cannot be obtained for the entire wavelength band of the band gap (see J. A. West, C. M. Smith, N. F. Borrelli, D. C. Allan, and K. W. Koch, “Surface modes in air-core photonic band-gap fibers,” Opt. Express, vol. 12, no. 8, pp. 1485-1496, 2004).
The presence of a surface mode depends on the magnitude of the core diameter.
The conventional PBGF 1 shown in
In
In the PBGF of the structure as shown in
However, when a normal triangular lattice periodic structure as shown in
An exemplary object of the present invention is to offer a PBGF with low transmission loss and wide wave guide bandwidth after considering the circumstances mentioned above.
A first exemplary aspect of the present invention offers a PBGF with multiple air holes provided in silica portions extending in the longitudinal direction of the fiber. the fiber comprises: a cladding having an air hole periodic structure in an extended triangular lattice configuration in the cross section of the fiber wherein first rows each having a number of air holes at a first pitch, and second rows each having a plurality of air holes at a second pitch which is twice the first pitch, are arranged such that the air holes of the first rows and the air holes of the second rows are disposed alternately so as to form a triangular lattice in the cross section of the fiber. The fiber further comprises an air hole core.
In the PBGF of the first aspect of the present invention, the air hole core may have an almost circular shape in the cross section of the fiber and the diameter D of the air hole core may have the relationship 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ.
In the PBGF of the first aspect of the present invention, the air hole core may have an almost circular shape in the cross section of the fiber and the diameter D of the air hole core may have the relationship of 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ.
In the PBGF of the first aspect of the present invention, the air hole core may have an almost circular shape in the cross section of the fiber and the diameter D of the air hole core may have the relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch
In the PBGF of aspect of the present invention, the air holes may have a circular cross section with a diameter d that satisfies the relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ.
In the PBGF of the first aspect of the present invention, three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding may be provided outside the air hole core.
The PBGF of the first aspect of the present invention may have a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and may have optical characteristics wherein a surface mode is substantially absent.
The PBGF of the present invention may have optical characteristics wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
The PBGF of the first aspect of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦1.2 (where Γ=2Λ, where Λ is the first pitch).
The PBGF of the first aspect of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, is in the range 1.4≦Γ/λ≦1.8 (where Γ=2Λ, and Λ is a first pitch).
In a second exemplary aspect of the present invention, a method of producing PBGF is provided, the method comprising arranging silica capillary tubes and silica rods into first rows of air holes and into second rows of air holes, wherein in each first row, a number of capillary tubes are arranged at a first pitch, and in each second row capillary tubes and silica rods are alternately arranged, such that a capillary tube arrangement of a cross section forms an extended triangular lattice. The method further comprises forming an air hole core region with capillary tube bundles containing silica rods by eliminating a central silica rod, or by eliminating the central silica rod together with capillary tubes and silica rods surrounding the central silica rod, heating the capillary tube bundles containing the silica rods and making them integrated, thus forming a preform for fiber spinning. The method further comprises spinning the preform.
In the method of producing a PBGF according to the second aspect of the present invention, the capillary tubes may have annular cross sections, and the silica rods may have circular cross sections and diameters equal to those of the capillary tubes.
In the method of producing PBGF of the second aspect of the present invention, forming the preform may comprise making the capillary tube bundle containing silica rods integrated while it is inserted in the hole of the silica tube.
In the method of producing PBGF according to the second aspect of the present invention, forming an air hole core region comprises eliminating only one silica rod at a center of a cross section of the capillary tube bundle containing silica rods.
In the method of producing PBGF according to the second aspect of the present invention, forming an air hole core region comprise eliminating one silica rod at a center of a cross section of the capillary tube bundle containing silica rods, and capillary tubes and silica rods in no less than one layer and no more than five layers surrounding the central silica rod.
In the method of production of PBGF according to the present invention, the capillary tube bundle containing silica rods may be provided such that the air hole periodic structure in an extended triangular lattice configuration surrounding the air hole core region has three or more layers of silica rods facing the rear and directed outward.
A third exemplary aspect of the present invention offers a PBGF having multiple air holes in silica portion extending in the longitudinal direction of the fiber, the fiber comprising: a cladding having an air hole periodic structure in an extended triangular lattice configuration in a cross section of the fiber wherein first rows each having a number of air holes at a first pitch, and second rows each having a plurality of air holes at a second pitch which is twice the first pitch, are arranged such that the air holes of the first rows and the air holes of the second rows are arranged so as to form a triangular lattice in the cross section of the fiber. The fiber further comprises an air hole core comprising multiple air holes arranged at a constant pitch in triangular lattice configuration.
In the PBGF of the third aspect of the present invention, the core may comprise a central air hole at a center of the fiber cross section and a first layer of air holes surrounding the central air hole.
In the PBGF of the present invention, the core may comprise an air hole at a center of the fiber cross section and two or more layers of air holes surrounding the air hole at the center of the fiber.
In the PBGF of the third aspect of the present invention, the cross sectional shape of the air holes may be circular and their diameter d may satisfy the relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ.
In the PBGF of the third aspect of the present invention, three or more layers of air hole periodic structure in the extended triangular lattice configuration in the cladding may be provided outside the core.
The PBGF of the present invention may have a core mode in which 60% or more of a transmitting power is concentrated in the core region, and optical characteristics wherein a surface mode is substantially absent.
The PBGF of the third aspect of the present invention may have optical characteristics wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
The PBGF of the third aspect of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦1.2 (where Γ=2Λ, where Λ is the first pitch).
The PBGF of the third aspect of the present invention may have optical characteristics wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies of 1.4≦Γ/λ≦1.8 (where Γ=2Λ, where Λ is the first pitch).
In a fourth exemplary aspect of the present invention, a method of producing a PBGF is provided, the method comprising: arranging silica capillary tubes and silica rods into first rows of air holes wherein a number of capillary tubes are arranged at a first pitch, and into second rows of air holes, wherein the capillary tubes and the silica rods of the second rows are alternately arranged with the tubes and rods of the first rows and arranged such that the capillary tube arrangement of a cross section forms an extended triangular lattice. The method further comprises forming an air hole core region with capillary tube bundles containing silica rods by eliminating a central silica rod, or by eliminating the central silica rod together with capillary tubes and silica rods in one or more layers surrounding the central silica rod, and heating the capillary tube bundles containing the silica rods and making them integrated in order to make a preform for fiber spinning; and subsequently, spinning the preform.
In the method of producing the PBGF according to the fourth aspect of the present invention, the capillary tubes may have an annular cross section, and the silica rods may have a circular cross section with diameters equal to that of the capillary tubes.
In the method of producing PBGF of the fourth aspect of the present invention, the preform for fiber spinning may be produced by making the capillary tube bundle containing silica rods integrated while it is inserted in a hole of a silica tube.
In the method of producing PBGF according to the fourth aspect of the present invention, forming an air hole core region may comprise replacing only one silica rod at a center of the capillary tube bundle containing silica rods with a capillary tube.
In the method of producing PBGF according to the fourth aspect of the present invention, forming an air hole core region may comprise replacing one silica rod at a center of the capillary tube bundle containing silica rods and one layer of silica rods surrounding the silica rod with capillary tubes.
In the method of producing PBGF according to the fourth aspect of the present invention, forming an air hole core region may comprise replacing one silica rod at a center of the capillary tube bundle containing silica rods and two layers of silica rods surrounding the silica rod with capillary tubes.
In the method of production of PBGF according to the fourth aspect of the present invention, the capillary tube bundle containing silica rods may be provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the air hole core region has three or more layers of silica rods facing the rear and are directed outward.
A fifth exemplary aspect of the present invention offers a PBGF with multiple air holes provided in silica portions along the longitudinal direction of the fiber. The fiber comprises: multiple hexagonally-shaped silica portions at constant pitch Γ in a cross section of the fiber arranged in triangular lattice configuration; air holes disposed between the silica portions; a cladding having a periodic structure wherein a length ωr between two sides facing each other of the silica portion is equal to a length Λ which is half of the pitch Γ; and an air hole core or a core with multiple hexagonal air holes arranged in triangular lattice configuration.
The sixth exemplary aspect of the present invention offers a PBGF having multiple air holes in a silica portion extending in the longitudinal direction of the fiber. the fiber comprises: a cladding having an air hole periodic structure in an extended triangular lattice configuration with a length ωr between two sides facing each other of the silica portion is substantially equal to a first pitch Λ, wherein first rows of air holes each comprising multiple hexagonal air holes at the first pitch Λ is arranged through a silica partition wall in a cross section of the fiber, and second rows of air holes each comprising multiple hexagonal air holes at a second pitch Γ which is twice the first pitch are arranged through hexagonally-shaped silica portions such that the air holes of the first rows are disposed alternately with the air holes of the second rows, so as to form a triangular lattice in the cross section of the fiber. The fiber further comprises an air hole core or a core with multiple hexagonal air holes arranged in a triangular lattice configuration.
The PBGF of the sixth aspect of the present invention wherein a thickness ωb of the silica partitioning wall may be in the range 0.005Λ≦ωb≦0.2Λ.
The PBGF of the sixth aspect of the present invention wherein a diameter D of the air hole core has the relationship of 0.7Λ≦D≦3.3Λ with respect to the pitch Λ.
The PBGF of the fifth and sixth aspects of the present invention wherein a diameter D of the air hole core has the relationship of 4.7Λ≦D≦7.3Λ with respect to the pitch Λ.
The PBGF of the fifth and sixth aspects of the present invention wherein a diameter D of the air hole core has the relationship of 8.7Λ≦D≦11.3Λ with respect to the pitch Λ.
In the PBGF of the fifth and sixth aspects of the present invention, three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding may be provided outside the core.
The PBGF of the fifth and sixth aspects of the present invention may have a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and may have optical characteristics wherein a surface mode is substantially absent.
The PBGF of the fifth and sixth aspects of the present invention may have optical characteristics wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
The PBGF of the fifth and sixth aspects of the present invention may have optical characteristics wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies of 0.6≦Γ/λ≦1.5.
The PBGF of the fifth and sixth aspects of the present invention may have optical characteristics wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies of 1.4≦Γ/λ≦2.3.
The PBGF of the fifth and sixth aspects of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 2.2≦Γ/λ≦3.2.
A seventh exemplary aspect of the present invention provides a method of producing a PBGF, the method comprising: arranging silica capillary tubes and silica rods into first rows of air holes and into second rows of air holes, wherein each first row comprises multiple capillary tubes, and each second row comprises capillary tubes and silica rods are alternately arranged, such that the capillary tube arrangement of a cross section forms an extended triangular lattice. The method further comprises forming an air hole core region by eliminating a central silica rod or by eliminating the central silica rod together with capillary tubes and silica rods surrounding the central silica rod, or by forming a capillary tube bundle containing silica rods by replacing the silica rod with capillary tubes. the method further comprises heating the arrangement of capillary tubes and silica rods and making it integrated, thus forming a preform for fiber spinning while maintaining a pressure in the spaces in the capillary tubes at a higher level than a pressure in the spaces surrounding the capillary tubes. the method further comprises spinning the preform.
In the method of producing PBGF according to the seventh aspect of the present invention, the capillary tubes may have annular cross sections, and the silica rods may have circular cross sections with diameters equal to those of the capillary tubes.
In the method of producing PBGF of the seventh aspect of the present invention, making the arrangement of capillary tubes and silica rods integrated may comprise making the arrangement of capillary tubes and silica rods integrated while it is inserted in a hole of a silica tube.
The method of producing PBGF according to the seventh mode wherein only a pressure in the spaces in the capillary tubes in the arrangement of capillary tubes and silica rods inserted in the air hole of the silica tube may be maintained at or above the atmospheric pressure, and the spaces other than the spaces in the capillary tubes may be maintained in a low pressure condition when performing the integration.
In the method of producing PBGF according to the seventh aspect of the present invention, forming the air hole core region may comprise eliminating one silica rod at a center of a cross section of the arrangement of capillary tubes and silica rods.
In the method of producing PBGF according to the seventh aspect of the present invention, forming the air hole core region may comprise eliminating one silica rod at a center of a cross section of the arrangement of capillary tubes and silica rods, and capillary tubes and silica rods in no less than one layer and no more than five layers surrounding the central silica rod.
The method of producing PBGF according to the seventh aspect of the present invention wherein forming the air hole core region may comprise replacing one silica rod at a center of a cross section of the arrangement of capillary tubes and silica rods with a capillary tube.
The method of producing PBGF according to the seventh aspect of the present invention wherein forming the air hole core region may comprise replacing one silica rod at a center of a cross section of the arrangement of capillary tubes and silica rods, and silica rods and capillary tubes surrounding the silica rod at the center, with capillary tubes.
In the method of production of PBGF according to the seventh aspect of the present invention, the arrangement of capillary tubes and silica rods may be provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the air hole core region has three or more layers of silica rods facing the rear and are directed outward.
An eighth exemplary aspect of the present invention offers a PBGF with multiple air holes in silica portions along a longitudinal direction of the PBGF, the fiber comprising: multiple hexagonally-shaped silica portions at a constant pitch Γ in a cross section of the fiber arranged in a triangular lattice configuration; air holes between the silica portions; a cladding having a periodic structure wherein a length ωr between two sides facing each other of the silica portions is smaller than a length Λ which is half of the pitch Γ; and an air hole core or a core with multiple hexagonal air holes arranged in a triangular lattice configuration.
A ninth exemplary aspect of the present invention offers a PBGF having multiple air holes in silica portions extending in a longitudinal direction of the fiber, the fiber comprising: a cladding having an air hole periodic structure in an extended triangular lattice configuration wherein a length ωr between two sides facing each other of the silica portions is smaller than a first pitch Λ, first rows of air holes each comprising multiple hexagonal air holes at the first pitch Λ in a cross section of the fiber arranged through a partition wall, and second rows of air holes each second row comprising multiple hexagonal air holes at a second pitch Γ which is twice the first pitch arranged through the hexagonally-shaped silica portions; and an air hole core or a core with multiple hexagonal air holes arranged in a triangular lattice configuration.
The PBGF of the ninth aspect of the present invention wherein a thickness ωb of a silica partitioning wall surrounding the air holes may be in the range 0.005Λ≦ωb≦0.2Λ.
The PBGF of the ninth aspect of the present invention wherein a thickness ωb of a silica partitioning wall surrounding the air holes may be in the range 0.05Λ≦ωb≦0.5Λ.
The PBGF of the present invention wherein ωr the length between two sides facing each other of the silica portion may be in the range 0.4Λ≦ωr≦Λ.
The PBGF of the ninth aspect of the present invention wherein a diameter D of the air hole core may have the relationship 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ.
The PBGF of the eighth aspect or the ninth aspect of the present invention wherein a diameter D of the air hole core may have the relationship of 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ.
The PBGF of the eighth aspect or the ninth aspect of the present invention wherein a diameter D of the air hole core may have the relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch Λ.
In the PBGF of the eighth aspect or the ninth aspect of the present invention, three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding may be provided outside the core.
The PBGF of the eighth aspect or the ninth aspect of the present invention may have a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and optical characteristics wherein a surface mode is substantially absent.
The PBGF of the present invention may have optical characteristics wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
The PBGF of the fifth and sixth aspects of the present invention may have optical characteristics wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 0.6≦Γ/λ≦1.7.
The PBGF of the eighth aspect or the ninth aspect of the present invention may preferably have optical characteristics wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 1.5≦Γ/λ≦2.4.
The PBGF of the eighth aspect or the ninth aspect of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 2.1≦Γ/λ≦3.5.
The PBGF of the eighth aspect or the ninth aspect of the present invention may have optical characteristics wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦2.4.
A tenth exemplary aspect of the present invention provides a method of producing a PBGF, the method comprising: arranging silica capillary tubes and hollow silica tubes, having wall thicknesses greater than that of the capillary tubes, into first rows of air holes and into second rows of air holes, wherein each first row comprises multiple capillary tubes, and each second row comprises capillary tubes and hollow silica tubes, wherein the first and second rows are disposed such that a capillary arrangement of a cross section of the fiber forms an extended triangular lattice. the method further comprises forming an air hole core region by eliminating a central hollow silica tube or b eliminating the central hollow silica tube together with capillary tubes and hollow silica tubes surrounding the central silica tube, or by forming a capillary tube bundle in the capillary core region by replacing the central silica tube with capillary tubes. the method further comprises forming a preform for fiber spinning by heating the arrangement of capillary tubes and hollow silica tubes and integrating the arrangement while maintaining a pressure in spaces in the capillary tubes at a high level and a pressure in the spaces within the hollow silica tubes at a low level, such that the spaces within the hollow capillary tubes collapse, and the capillary air holes are converted to hexagonal shape. the method further comprises spinning the preform.
In the method of producing PBGF according to the tenth aspect of the present invention, the capillary tubes may have annular cross sections, and the hollow silica tubes may have cross sections with diameters equal to that of the capillary tubes.
In the method of producing PBGF according to the tenth aspect of the present invention, forming the preform for fiber spinning may comprise integrating the arrangement of capillary tubes and silica rods while it is inserted in a hole of a silica tube.
In the method of producing PBGF according to the tenth aspect of the present invention, only the spaces in the capillary tubes in the arrangement of capillary tubes and silica rods inserted in the air hole of the silica tube may be maintained at or above the atmospheric pressure, and the spaces other than the spaces in the capillary tubes, including the spaces in the hollow silica tubes, may be maintained in a low pressure condition when performing the integration.
In the method of producing PBGF according to the tenth aspect of the present invention, forming the air hole core may comprise eliminating one hollow silica tube at a center of a cross section of the arrangement of capillary tubes and silica rods.
In the method of producing PBGF according to the tenth aspect of the present invention, forming the air hole core may comprise eliminating one hollow silica tube at a center of a cross section of the arrangement of capillary tubes and silica rods together with capillary tubes and hollow silica tubes in no less than one layer and no more than five layers surrounding the hollow silica tube.
In the method of producing PBGF according to the tenth aspect of the present invention, forming the air hole core may comprise replacing one hollow silica tube at a center of a cross section of the arrangement of capillary tubes and silica rods with a capillary tube.
In the method of producing PBGF according to the tenth aspect of the present invention, forming the air hole core region may comprise replacing one hollow silica tube at a center of a cross section of the arrangement of capillary tubes and silica rods and hollow silica tubes surrounding the hollow silica tube with capillary tubes.
In the method of production of PBGF according to the tenth aspect of the present invention, the arrangement of capillary tubes and silica rods may be provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the core region has three or more layers of hollow silica tubes facing the rear and directed outward.
The PBGF in the first aspect of the present invention has a cladding containing an air hole periodic structure in an extended triangular lattice configuration. Thus, a core made of air holes in a triangular lattice configuration can be realized without the core edge cutting across the bulk mode; optical characteristics wherein only a core mode is present and a surface mode is not generated, can be obtained; a wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
The PBGF in the third aspect of the present invention has a cladding containing an air hole periodic structure in an extended triangular lattice configuration. Thus, a core made of air holes in triangular lattice configuration can be realized without the core edge cutting across the bulk mode; optical characteristics wherein only a core mode is present and a surface mode is not generated, can be obtained; a wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
Moreover, since the core is disposed with multiple air holes in a triangular lattice configuration in the silica portion, compared to a PBGF with a conventional air hole core in which the silica portions between the air holes of the core act as reinforcing material, the mechanical strength of the fiber can be increased.
The PBGF in the fifth aspect of the present invention has a cladding containing an air hole periodic structure in an extended triangular lattice configuration. Thus, an air hole core or a capillary core can be configured without the core edge cutting across the bulk mode; optical characteristics wherein only a core mode is present and a surface mode is not generated, can be obtained; a wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
The PBGF in the eighth and ninth aspects of the present invention has a cladding containing an air hole periodic structure in an extended triangular lattice configuration. Thus, a core at the center of the fiber can be configured without the core edge cutting across the bulk mode; optical characteristics wherein only a core mode is present and a surface mode is not generated, can be obtained; a wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
In the periodic structure mentioned above, the hexagonally-shaped silica portion was made smaller than the pitch Λ of the hexagonal air holes. Compared to a periodic structure in which a pitch of the silica portion is equal to the pitch Λ of the air holes, the band gap widens, the position of the band gap becomes higher, the size of the fiber required to realize the same wavelength pass band increases, and production becomes easier.
The first exemplary embodiment of the present invention is described below referring to the drawings.
This air hole periodic structure in an extended triangular lattice configuration is a periodic structure alternately arranged with first rows of air holes 114 each row 114 having multiple air holes 111 at first pitch Λ in the cross section of the fiber, and second rows of air holes 115 each row 115 having multiple air holes 111 at a second pitch Γ, which is twice the first pitch Λ (Γ=2Λ) such that the air holes 111 of the second rows 115 and the air holes 111 of the first air rows 114 form a triangular lattice.
If this air hole periodic structure in an extended triangular lattice configuration is used in the cladding of the PBGF 100, and an appropriate core region is designed, a layer of air holes can be provided between the core and the cladding. The result is that the surface mode can be prevented, and a wide transmission bandwidth can be realized. An air hole periodic structure in an extended triangular lattice configuration can be created by combining capillary tubes and silica rods. Compared to creating a normal triangular lattice periodic structure by combining only capillary tubes, the capillary tube wall does not become extremely thin, and the shape of the air holes can be restricted to a circular shape; therefore, the compression of band gap due to deformation of air holes can be prevented.
A PBGF 100 of the present invention has an air hole periodic structure of an extended triangular lattice mentioned earlier, in the cladding, and also has an air hole core 112 at the center. The material of the silica portion 110, other than the air holes in the PBGF 100, of the present invention can be made the same over the entire fiber. For instance, pure silica (SiO2) may be used, but silica glass including a dopant for adjusting the refractive index, such as fluorine or germanium dioxide may alternately be used.
The air hole core 112 is almost circular in shape in the cross section of the fiber. The diameter D of this air hole core can be made to have the relationship: 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ. By setting the diameter D of the air hole core 112 within the range mentioned above, a PBGF without a surface mode can be provided.
The diameter D of the air hole core 112 may satisfy the relationship: 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ. By setting the diameter D of the air hole core 112 within the range mentioned above, a PBGF without a surface mode can be provided.
The diameter D of the air hole core may satisfy the relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch Λ. By setting the diameter D of the air hole core 112 within the range mentioned above, a PBGF without a surface mode can be provided.
In these examples, the air holes 111 formed in the PBGF 100 have the same diameter, but the present invention is not restricted to air holes with this diameter only; and it may include air holes with different diameters. The diameters of the air holes may be adjusted by setting the wall thickness of the capillary tubes used in the production of the PBGF.
In an exemplary embodiment of the present invention, the diameter d of the air holes 111 of the PBGF 100 may satisfy the relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ, and may have a cross section of circular shape. If the diameter d is less than the range mentioned above, the band gap becomes too narrow; on the other hand, if it exceeds the range mentioned above, the lattice structure is difficult to retain. Moreover, the cross section shape of the air hole 111 need not necessarily be circular; it can be slightly modified and can be of hexagonal shape, or close to circular shape.
The air hole periodic structure of the extended triangular lattice configuration provided in the cladding may be provided in three or more layers outside the core 112. If the number of layers of extended triangular lattice provided in the cladding is 2 or less, the confinement of light may become inadequate and the loss may increase.
A PBGF 100 of the present invention may have a core mode in which 60% or more, 70% or more or 80% or more of the transmitting power is concentrated in the region of the air hole core 112, and may have optical characteristics wherein the surface mode is substantially absent. If the percentage of the transmitting power of the core mode mentioned above is less than 60%, light will be transmitted into the silica, which is not preferable.
As shown in
On the other hand, as shown in
The PBGF of the present invention may have optical characteristics wherein the core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7 ≦Γ/λ≦1.2 (where Γ=2Λ, where Λ is the first pitch). If Γ/λ is less than 0.7, band gap will be no longer present, and light will not be transmitted. Moreover, if Γ/λ exceeds 1.2, the band gap will be no longer present, and light will not be transmitted.
If a PBGF operates in a higher order band gap, then Γ/λ may be within a range of 1.4≦Γ/λ≦1.8. If Γ/λ is less than 1.4, band gap will be no longer present, and light will not be transmitted. Moreover, if Γ/λ exceeds 1.8, the band gap will be no longer present, and light will not be transmitted.
Next, as an example of the method of production of a PBGF of the present invention, an example of production of a PBGF 100 of the present invention shown in
In this production method, first, silica capillary tubes and silica rods are arranged into first rows of air holes and second rows of air holes. Each first row is arranged with multiple capillary tubes at the first pitch, and each second row is arranged with alternating capillary tubes and silica rods. Thus, the capillary tube arrangement of the cross section forms an extended triangular lattice. An air hole core region with silica rods containing capillary tube bundles is made by eliminating the central silica rods, or the central silica rods together with the capillary tubes and silica rods surrounding the central silica rods. The capillary tubes used in the production method of the present invention may be of annular cross section and the silica rods may be of circular cross section with diameters equal to that of the capillary tubes.
In case of the production of a PBGF shown in
In case of the production of a PBGF shown in
Next, the capillary tube bundle containing silica rods is heated and integrated to produce the preform for fiber spinning. This heating and integrating process can be implemented using the same equipment and method as the heating and integrating process in a conventional method of production of a PBGF wherein capillary tube bundles are used. The capillary tube bundle containing silica rods mentioned above may be taken as the preform for fiber spinning after inserting it in the air hole of the silica tube and integrating it. In this way, when the capillary tube bundle containing silica rods is inserted in the air hole of the silica tube and integrated, the pressure and gas composition in the silica tube may be adjusted appropriately such that deformation of the air hole is minimized and the circular shape is retained after integration.
By spinning the preform for fiber spinning produced as mentioned above, the PBGF shown in
The PBGF in the present example has an air hole periodic structure in an extended triangular lattice configuration in the cladding. Thus, a core made of air holes in triangular lattice configuration can be realized without the edge cutting across the bulk mode, optical characteristics wherein only the core mode is present without generating a surface mode can be obtained, wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
The production method of a PBGF according to the present example can be made the same as the conventional method of using capillary tubes, except for replacing some of the capillary tubes with silica rods and combining them, and a PBGF with an air hole periodic structure in an extended triangular lattice configuration can be easily produced. Thus, a PBGF with better optical characteristics than the conventional PBGF can be produced more easily and more economically by using methods similar to those used to produce the conventional PBGF.
Example 1-1In
As shown in
As shown in
In this way, it can be seen that as the air hole diameter decreases, the band gap becomes narrower but it is present. Similar to Examples 1-1 and 1-2, by eliminating the silica rod at the center of the extended triangular lattice together with the six capillary tubes in one layer surrounding the silica rod, or by eliminating one silica rod together with the thirty-six capillary tubes and rods (30 capillary tubes and 6 silica rods) in three layers surrounding the silica rod, if an air hole core is formed and a PBGF is produced, then similar to the Examples 1-1 and 1-2, it was confirmed that only a core mode is present while no surface mode is generated.
Second EmbodimentThe second exemplary embodiment of the present invention is described here referring to the drawings.
This air hole periodic structure in an extended triangular lattice configuration is a periodic structure alternately arranged with first rows of air holes 214, each row 214 having multiple air holes 211 at first pitch Λ in the cross section of the fiber, and multiple second rows of air holes 215, each second row 215 having multiple air holes 211 at the second pitch Γ, which is twice the first pitch Λ (Γ=2Λ) such that the air holes 211 of the second rows 215 and the air holes of the first rows 214 form a triangular lattice.
The fundamental vectors a1 and a2 indicating the periodicity of the lattice are inclined at 30 degrees and −30 degrees with respect to the x axis respectively, while the second pitch Γ is 2Λ.
If this air hole periodic structure in an extended triangular lattice configuration is used in the cladding of a PBGF 200, and an appropriate core region is designed, a layer of air holes can be provided between the core and the cladding. The result is that the surface mode can be prevented, and a wide transmission bandwidth can be realized. An air hole periodic structure in an extended triangular lattice configuration can be created by combining capillary tubes and silica rods. Compared to creating a normal triangular lattice periodic structure by combining only capillary tubes, the capillary tube wall does not become extremely thin, and the shape of the air holes can be restricted to a circular shape; therefore, the compression of band gap due to deformation of air holes can be prevented.
The PBGF 200 of the present invention has an air hole periodic structure in an extended triangular lattice configuration, mentioned above, in the cladding, and also has a core 216 formed by multiple air holes 211 arranged at a constant pitch in a triangular lattice configuration. The material of the silica portion 210 other than the air holes in the PBGF of the present invention can be made the same over the entire fiber. For instance, pure silica (SiO2) may be used, but silica glass including a dopant for adjusting the refractive index, such as fluorine or germanium dioxide may be alternately used.
In these examples, the air holes 211 that form the PBGF have the same diameter in the cladding part as well as the core part, but this not a restriction, and the diameters of the air holes in the cladding part and the core part may be different. The diameter of the air holes may be adjusted by setting the wall thickness of the capillary tubes used in the production of the PBGF.
In an exemplary embodiment of the present invention, the diameter d of the air holes 211 of the PBGF 200 may satisfy the relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ, and have a cross section of circular shape. If the diameter d is less than the range mentioned above, the band gap becomes too narrow; on the other hand, if it exceeds the range mentioned above, the lattice structure is difficult to retain. Moreover, the cross section shape of the air holes 211 need not necessarily be circular; it can be slightly modified and can be of hexagonal shape, or close to circular shape.
The air hole periodic structure of the extended triangular lattice configuration provided in the cladding may be provided in three or more layers outside the core 216. If the number of layers of extended triangular lattice provided in the cladding is 2 or less, the confinement of light may become inadequate and the loss may increase.
The PBGF 200 of the present invention may have a core mode in which 60% or more, 70% or more or 80% or more of a transmitting power is concentrated in the core region, and may have optical characteristics wherein the surface mode is absent substantially. If the percentage of the transmitting power of the core mode mentioned above is less than 60%, light will be transmitted into the silica, which is not preferable.
As shown in
On the other hand, as shown in
The PBGF of the second embodiment of the present invention may have optical characteristics wherein the core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦1.2 (where Γ=2Λ, where Λ is the first pitch). If Γ/λ is less than 0.7, band gap will be no longer present, and light will not be transmitted. Moreover, if Γ/λ exceeds 1.2, the band gap will be no longer present, and light will not be transmitted.
If the PBGF operates in a high-order band gap, the ratio Γ/λ mentioned above may be in a range of 1.4≦Γ/λ≦1.8. If the ratio Γ/λ is less than 1.4, the PBGF is outside the high order band gap and does not operate. Also, if Γ/λ exceeds 1.8, the PBGF is again outside the high order band gap, and it does not operate.
Next, as an example of the production method of the PBGF of the second embodiment of the present invention, the production of the PBGF of the second embodiment of the present invention shown in
In this production method, first, silica capillary tubes and silica rods are arranged into first rows of air holes and second rows of air holes. In each first row, a number of capillary tubes are arranged at a first pitch, and in each second row, capillary tubes and silica rods are alternately arranged. Thus, the capillary tube arrangement of the cross section forms an extended triangular lattice. An air hole core region with silica rods containing capillary tube bundles is made by eliminating the central silica rods, or the central silica rod together with the capillary tubes and silica rods in one or more layers surrounding the central silica rod. The silica capillary tubes used in the production method of the present invention may be of annular cross section and the silica rods may be of circular cross section with diameters equal to that of the capillary tubes.
As shown in
As shown in
Next, the capillary tube bundle containing silica rods is heated and integrated to produce the preform for fiber spinning. This heating and integrating process can be implemented using the same equipment and method as the heating and integrating process in the conventional method of production of a PBGF wherein capillary tube bundles were used. The capillary tube bundle containing silica rods mentioned above may be taken as the preform for fiber spinning after inserting it in an air hole of a silica tube and integrating it. When the capillary tube bundle containing silica rods is integrated with the bundle while they are inserted in the hole of the silica tube, and if the pressure and gas composition in the silica tube is appropriately adjusted, the capillary tube bundle may be integrated with the air hole maintained in a circular shape without deformation.
Next, by spinning the manufactured preform for fiber spinning as mentioned above, the PBGF shown in
The PBGF in the present example, is an air hole periodic structure in an extended triangular lattice configuration in the cladding. Thus, a core made of air holes in a triangular lattice configuration can be realized without the edge cutting across the bulk mode, optical characteristics wherein only the core mode is present without generating a surface mode can be obtained, a wide wave guide bandwidth can be obtained, and transmission loss can be reduced.
Moreover, since the core is disposed with a multiple air holes triangular lattice configuration in the silica portion, compared to the PBGF with a conventional air hole core wherein the silica portions between the air holes of the core act as reinforcing material, the mechanical strength of the fiber can be increased.
The production method of a PBGF according to the present example can be made the same as the conventional method of using capillary tubes, except for replacing some of the capillary tubes with silica rods and combining them, and a PBGF with an air hole periodic structure in an extended triangular lattice configuration can be easily produced. Thus, a PBGF with better optical characteristics than the conventional PBGF can be produced more easily and more economically by using methods similar to those used for a conventional PBGF.
Example 2-1In
As shown in
As shown in the figures, the power of the core mode in the PBGF of the present embodiment is distributed only slightly over the silica rod just near the core, while most of it is distributed within the core.
As shown in
In this way, it can be seen that as the air hole diameter decreases, the band gap becomes narrower but it is present. Similar to Examples 2-1 and 2-2, it was confirmed that only a core mode was present and a surface mode was not generated.
Third EmbodimentThe third exemplary embodiment of the present invention is described here referring to the drawings.
This air hole periodic structure in an extended triangular lattice configuration is a periodic structure (hereinafter referred to as “hexagonal air hole extended triangular lattice” or “hexagonal air hole extended triangular lattice structure”) alternately arranged with first rows of air holes 322 each having multiple hexagonal air holes 321 at first pitch Λ in the cross section of the fiber through a partition wall 325, and multiple second rows of air holes 323 each having multiple hexagonal air holes 321 at the second pitch Γ, which is twice the first pitch Λ (Γ=2Λ) through hexagonally-shaped silica portion 320, such that the air holes 321 of the second rows 323 and the air holes 321 of the first rows 322 form a triangular lattice.
If this hexagonal air hole extended triangular lattice structure is used in the cladding of the PBGF 300, and if the core region is appropriately designed, a layer of air holes can be provided between the core and the cladding. The result is that the surface mode can be prevented, and a wide transmission bandwidth can be realized (refer to H. K. Kim, J. Shin, S. Fan, M. J. F. Digonnet, and G. S. Kino, “Designing air-core photonic-bandgap fibers free of surface modes,” IEEE J. Quant. Electron., vol. 40, no. 5, pp. 551-556, 2004).
Moreover, if a hexagonal air hole extended triangular lattice structure is adopted in combination with the hexagonally-shaped silica portion 320 and the hexagonal air holes 321 in the present invention, optical characteristics can be obtained that are different from those of the air hole periodic structure in an extended triangular lattice configuration (hereinafter referred to as “circular air hole extended triangular lattice structure”) using the circular air holes 310 as shown in
In
On the other hand,
In this case, as shown in
Also,
The PBGF of the third embodiment of the present invention has the hexagonal air hole extended triangular lattice structure mentioned above in the cladding, and also has the core 324 containing an air hole core at the center, and multiple hexagonal air holes arranged in a triangular lattice configuration. The material of the silica portion 320, other than the air holes, in the PBGF of the present invention can be made the same over the entire fiber. For instance, pure silica (SiO2) may be used, but silica glass including a dopant for adjusting the refractive index, such as fluorine or germanium dioxide may alternately be used.
In an exemplary embodiment of the present invention, the diameter D of the core 324 may have the following relationships: 0.7Λ≦D≦3.3Λ, 4.7Λ≦D≦7.3Λ, or 8.7Λ≦D≦11.3Λ with respect to the pitch Λ. By setting the diameter D of the core 324 within the range mentioned above, a PBGF with no surface mode can be offered.
As shown in
Also, if the thickness of the partition wall exceeds the range mentioned above, the band gap becomes narrower.
The hexagonal air hole extended triangular lattice structure provided in the cladding may be provided in three or more layers outside the core 324. If the number of layers of the hexagonal air hole extended triangular lattice provided in the cladding is 2 or less, the confinement of light may become inadequate and the loss may increase.
The PBGF of the present invention may have a core mode in which 60% or more, 70% or more or 80% or more of a transmitting power is concentrated in the core region, and may have optical characteristics wherein the surface mode is absent substantially. If the percentage of transmitting power of the core mode mentioned above is less than 60%, light will be transmitted into the silica, which is not preferable.
The PBGF of the third embodiment of the present invention, may have optical characteristics wherein the core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies of 0.6≦Γ/λ≦1.5. If Γ/λ is less than 0.6, band gap will be no longer present, and light will not be transmitted. Moreover, if Γ/λ exceeds 1.5, the band gap will be no longer present, and light will not be transmitted.
If PBGF operates in a high order band gap, then the ratio Γ/λ may be in the range 1.4≦Γ/λ≦2.3. If the ratio Γ/λ is less than 1.4, the PBGF is outside the high order band gap and does not operate. Also, if Γ/λ exceeds 2.3, the PBGF is again outside the high order band gap, and it does not operate.
Furthermore, the PBGF may have optical characteristics wherein the core mode is present when the wavelength λ, transmitted in the fiber, satisfies a range of 2.2≦Γ/λ≦3.2.
Next, an example of the production method of a PBGF of the third embodiment of the present invention is described here. In this example, the PBGF shown in
In this production method, first, silica capillary tubes and silica rods are arranged into first rows of air holes and second rows of air holes. In each first row multiple capillary tubes are arranged, and in each second row capillary tubes and silica rods are alternately arranged. Thus, the capillary tube arrangement of the cross section forms an extended triangular lattice. A capillary tube bundle containing silica rods is made with the capillary core region having central silica rods replaced by capillary tubes. The capillary tubes used in the production method of the present invention may have annular cross sections and the silica rods may have circular cross sections with diameters equal to that of the capillary tubes.
The production method of the PBGF of the third embodiment of the present invention is not restricted to the example of the method of formation of core region mentioned above and the core structure of the PBGF to be produced may be changed appropriately. For instance, in the production of the PBGF shown in
Next, the capillary tube bundle containing silica rods is heated and integrated to produce the preform for fiber spinning. This heating and integrating process can be implemented using the same apparatus and methods as the heating and integrating process in the conventional method of production of a PBGF wherein capillary tube bundles are used.
The capillary tube bundle containing silica rods mentioned above may be taken as the preform for fiber spinning after inserting it in an air hole of a silica tube and integrating it. When the capillary tube bundle containing silica rods is integrated with the bundle inserted in the silica tube as-is, the pressure and gas composition within the capillary tubes spaces and the spaces surrounding the capillary tubes can be separately adjusted, the pressure within the capillary tubes can be maintained at a higher level than the pressure in the spaces surrounding the capillary tubes, and the spaces between the capillary tubes or the space betweens the capillary tubes and the silica rods can be filled up. By increasing the pressure within the capillary tubes spaces during this integration, the cross section shape of the capillary tubes' air holes can be brought close to the hexagonal shape.
When the capillary tube bundle containing silica rods in the air holes of the silica tubes is integrated after insertion, only the spaces within the capillary tubes in the capillary tube bundle containing the inserted silica rods may be maintained at a pressure equal to or greater than the atmospheric pressure, and the spaces other than the spaces within the capillary tubes may be maintained at a reduced pressure condition before performing the integration mentioned above.
By spinning the preform for fiber spinning produced as mentioned above, the PBGF shown in
The PBGF according to this example has a hexagonal air hole extended triangular lattice structure in the cladding. Thus, if a core is formed at its center, an air hole core or a capillary core can be configured without the core edge cutting across the bulk mode, and optical characteristics can be obtained wherein only the core mode is present and no surface mode is generated; moreover, a wide wave guide bandwidth can be obtained, and the transmission loss can be reduced.
The production method of a PBGF according to the present example can be made the same as the conventional method of using capillary tubes, except for replacing some of the capillary tubes with silica rods and combining them, and a PBGF with an air hole periodic structure in an extended triangular lattice configuration can be easily produced. Thus, a PBGF with better optical characteristics than the conventional PBGF can be produced more easily and more economically by using methods similar to the conventional PBGF.
Example 3-1As shown in
As shown in
In this case, the wave guide region is present in a range of Γ/λ=0.81 to 1.00.
In this way, it can be seen that as the thickness of the partition wall 325 increases, the band gap becomes narrower but it is present. It has been verified that similar to Examples 3-1 and 3-2, if the capillary core is formed and a PBGF is produced, only the core mode is present and the surface mode is not generated, similar to the Examples 3-1 and 3-2.
Fourth EmbodimentThe fourth embodiment of the present invention is described here referring to the drawings.
This air hole periodic structure in an extended triangular lattice configuration is a periodic structure (hereinafter referred to as “hexagonal air hole extended triangular lattice” or “hexagonal air hole extended triangular lattice structure”) alternately arranged with first rows of air holes 422 each having a row of multiple hexagonal air holes 321 at first pitch Λ in the cross section of the fiber through partition walls 425, and multiple second rows of air holes 423 each having multiple hexagonal air holes 421 at the second pitch Γ, which is twice the first pitch Λ (Γ=2Λ) through hexagonally-shaped silica portions 420 as shown in
The silica portions 420 in the fourth embodiment of the present invention may be smaller than the air holes 421 including the partition walls 425. The length ωr between the two sides facing each other of the silica portions 420 and the first pitch Λ may satisfy the relationship 0.4Λ≦ωr≦Λ, and may further satisfy the relationship 0.5Λ≦ωr≦Λ.
If this air hole periodic structure in an extended triangular lattice configuration is used in the cladding of the PBGF, and an appropriate core region is designed, a layer of air holes can be provided between the core and the cladding. The result is that the surface mode can be prevented, and a wide transmission bandwidth can be realized s(refer to H. K. Kim, J. Shin, S. Fan, M. J. F. Digonnet, and G. S. Kino, “Designing air-core photonic-bandgap fibers free of surface modes,” IEEE J. Quant. Electron., vol. 40, no. 5, pp. 551-556, 2004).
Moreover, if the silica portions 420 in the hexagonal air hole extended triangular lattice of the present example is made smaller than the air holes 421, that is, if the relationship ωr≦Λ is maintained, then optical characteristics different from those of hexagonal air hole extended triangular lattice with ωr=Λ can be obtained.
Here, λ is the wavelength of light transmitted in the fiber.
On the other hand,
In this case, the first wave guide region is present in a range of Γ/λ between 0.85 and 1.45 and the second wave guide region is present in the range between 1.82 and 2.38. Compared to the band structure of hexagonal air hole extended triangular lattice structure wherein ωr=Λ (ωr/Λ=1), the hexagonal air hole extended triangular lattice structure of the present example has a wider band gap, and moreover, the position of the band gap is higher. This suggests that the fiber dimensions required for realizing the same wavelength pass band are large, and this is advantageous from the production aspects.
Also,
The same trend is observed in actual fibers wherein partition wall 425 surrounding the air holes 421 is present.
On the other hand,
In this case, the first wave guide region is present in a range of Γ/λ=0.86 to 1.25 and the second wave guide region is present in a range of 1.82 to 1.94. Similar to the ideal fiber with ωb=0 as shown in
The PBGF of the fourth embodiment of the present invention has an air hole periodic structure in an extended triangular lattice configuration mentioned earlier, in the cladding, and also has an air hole core at the center, and a core 424 with multiple hexagonal air holes arranged in triangular lattice configuration. The material of the silica portion 420 other than the air holes in the PBGF of the present invention can be made the same over the entire fiber. For instance, the use of pure silica (SiO2) may be used, but silica glass including a dopant for adjusting the refractive index, such as fluorine or germanium dioxide may alternately be used.
In an exemplary embodiment of the present invention, if a configuration with partition walls 425 is adopted, then the thickness ωb of these partition walls may be in the range of 0.05Λ≦ωb≦0.2Λ, or ωb may further be in the range of 0.05Λ≦ωb≦0.5Λ.
If thin partition walls 425 are formed, optical characteristics similar to a PBGF with no partition walls, as shown in
On the other hand, if comparatively thicker partition walls 425 are formed, an extremely wide transmission bandwidth can be ensured, and the transmission bandwidth can also be shifted to the short wavelength side. If comparatively thicker partition walls 425 are formed, the advantage is that the PBGF production becomes easier.
In an exemplary embodiment of the present invention, the length ωr between the two sides facing each other of the silica portions 420 may be in the range 0.4Λ≦ωr≦Λ. If the length ωr is less than the range mentioned above, the band gap becomes narrower, and the operating range of the fiber is reduced; thus, this length is not preferable.
In an exemplary embodiment of the present invention, the diameter D of the core 424 may be set so that it lies in the ranges (A) to (C) below.
(A) Range of 0.7Λ≦D≦3.3Λ
(B) Range of 4.7Λ≦D≦7.3Λ
(C) Range of 8.7Λ≦D≦11.3Λ
By setting the diameter D of core 324 within any of the ranges mentioned above, a PBGF with no surface mode can be offered. By making the diameter D of the core smaller, the core mode can be made a single mode. On the other hand, by increasing the diameter D of the core 424, multiple modes can be achieved.
The air hole periodic structure of the extended triangular lattice configuration provided in the cladding may be provided in three or more layers outside the core 424. If the number of layers of extended triangular lattice provided in the cladding is 2 or less, the confinement of light may become inadequate and the loss may increase.
The PBGF of the fourth embodiment of the present invention may have a core mode in which 60% or more, 70% or more or 80% or more of the transmitting power is concentrated in the core region, and may have optical characteristics wherein the surface mode is absent substantially. If the percentage of the transmitting power of the core mode mentioned above is less than 60%, light will be transmitted into the silica, which is not preferable.
The PBGF of the fourth embodiment of the present invention may have optical characteristics wherein the core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies of 0.6≦Γ/λ≦1.7. If Γ/λ is less than 0.6, band gap will be no longer present, and light will not be transmitted. Moreover, if Γ/λ exceeds 1.7, the band gap will be no longer present, and light will not be transmitted.
If a PBGF operates in high level band gaps, the Γ/λ mentioned above, may be in a range of 1.5≦Γ/λ≦2.4. If the ratio Γ/λ is less than 1.5, the PBGF is outside the high order band gap and does not operate. Also, if Γ/λ exceeds 2.4, the PBGF is again outside the high order band gap, and it does not operate.
Moreover, the PBGF may have optical characteristics wherein the core mode is present when the wavelength λ, transmitted in the fiber, satisfies a range of 2.1≦Γ/λ≦3.5. Also, the PBGF may have optical characteristics wherein the core mode is present when the wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦2.4.
Next, an example of the production method of a PBGF of the fourth embodiment of the present invention is described here. In this example, the PBGF shown in
In this production method, first, silica capillary tubes, silica rods and hollow silica tubes thicker than the capillary tubes and rods are kept ready. First rows of air holes and second rows of air holes are arranged. In each first row multiple capillary tubes are arranged, and in each second row capillary tubes and hollow silica tubes are alternately arranged. Thus, the capillary tube arrangement of the cross section forms an extended triangular lattice. A capillary tube bundle is made with a capillary core region having central hollow silica tubes replaced by capillary tubes. The capillary tubes used in the production method of the present invention may be of annular cross section and the hollow silica tubes may be of annular cross section with thicknesses equal to the diameter of other capillary tubes. This central silica tube is taken as the silica portion through the hollow part, and its thickness can be appropriately selected according to the ωr/Λ value in the PBGF to be produced.
The production method of a PBGF of the fourth embodiment of the present invention is not restricted to the example of method of formation of core region mentioned above, and the core structure of the PBGF to be produced may be changed appropriately. For instance, during production of the PBGF shown in
Next, the capillary tube bundle mentioned above is heated and integrated to produce the preform for fiber spinning. This heating and integrating process may be one wherein the capillary tube bundle mentioned above is integrated in the inserted condition in the silica tube to produce the preform for fiber spinning. When the capillary tube bundle containing silica rods is integrated with the bundle inserted in the air hole of the silica tube as-is, the pressure and gas composition within the capillary tubes' spaces and in the spaces surrounding the capillary tubes, including the internal parts of the hollow silica tubes, can be separately adjusted.
When the capillary tube bundle is integrated with the capillary tube bundle inserted in air hole of the silica tube, only the spaces within the capillary tubes of the inserted capillary tube bundle is maintained at or above the atmospheric pressure. On the other hand, the clearance between the hollow parts of the hollow silica tubes and the capillary tubes may be maintained in a reduced pressure condition and heated; integration may be attained by eliminating the clearance between the capillary tubes while penetrating the hollow part of the hollow silica tubes.
By spinning the preform for fiber spinning produced as mentioned above, the PBGF shown in
The PBGF according to this example has a hexagonal air hole extended triangular lattice structure in the cladding. Thus, if an air hole core or a capillary core is formed at its center, an air hole core or a capillary core can be configured without the core edge cutting across the bulk mode, and optical characteristics can be obtained wherein only the core mode is present and no surface mode is generated; moreover, a wide wave guide bandwidth can be obtained, and the transmission loss can be reduced.
In the structure above, the hexagonally-shaped silica portion was made smaller than the pitch Λ of the hexagonal air holes. Compared to the periodic structure wherein the pitch Λ of the silica portions was equal to the pitch Λ of the air holes, the band gap widens, the position of the band gap becomes higher, the size of the fiber required to realize the same wavelength pass band increases, and production becomes easier.
The production method of a PBGF according to the present example can be made the same as the conventional method of using capillary tubes, except for replacing some of the capillary tubes with thicker hollow silica tubes and combining them, and a PBGF with air hole periodic structure in an extended triangular lattice configuration can be easily produced. Thus, a PBGF with better optical characteristics than the conventional PBGF can be produced more easily and more economically by using methods similar to the conventional PBGF.
Example 4-1As shown in
As shown in
As shown in
As shown in
Also,
When this periodic structure is used in the fiber cladding, and air hole used in the core, the band wherein light in the fiber core becomes the wave guide is adjacent to the n=1 light line above which the band gap is present. In this case, the wave guide region is present in a range of Γ/λ (ωΓ/2πc)=0.93 to 1.16. Here, λ is the wavelength of light transmitted in the fiber. However, if a capillary core is used, the permittivity refractive index of the core increases; therefore, light line that transmits within the dielectric is used instead of the light line that transmits within the vacuum medium mentioned above. In this case, the average refractive index of the core can be approximated by equation (1).
However, neff, nair, nsilica are respectively the average refractive index of core, the refractive index of air, and the refractive index of silica respectively, while Sair and Ssilica are the areas occupied by air the core and the area occupied by silica in the core respectively. The capillary core is shown in
In this example, neff becomes 1.09. As shown by the light line (n=1.09) in
The inventors of the present invention produced a PBGF hexagonal air hole extended triangular lattice configuration having a capillary core, as shown by the end faces in
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
While embodiments of the invention have been described and illustrated above, it may be understood that these are exemplary of the invention and are not to be considered as limiting. Additions, omissions, substitutions, and other modifications can be made without departing from the spirit or scope of the present invention. Accordingly, the invention is not to be considered as being limited by the foregoing description, and is only limited by the scope of the appended claims.
Claims
1. A photonic band gap fiber comprising:
- silica portions;
- multiple air holes, provided in the silica portions, extending in a longitudinal direction of the fiber; and
- a cladding having an air hole periodic structure in an extended triangular lattice configuration in the cross section of the fiber;
- wherein first rows each having a number of air holes at a first pitch, and second rows each having a plurality of air holes at a second pitch which is twice the first pitch, are arranged such that the air holes of the first rows are disposed alternately with the air holes of the second rows, and wherein the first rows and the second rows are arranged so as to form the extended triangular lattice configuration in the cross section of the fiber; and
- the fiber further comprises an air hole core.
2. The photonic band gap fiber according to claim 1, wherein the air hole core has a substantially circular shape in the cross section of the fibers, and a diameter D of the air hole core has a relationship of 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ.
3. The photonic band gap fiber according to claim 1, wherein the air hole core has a substantially circular shape in the cross section of the fiber and a diameter D of the air hole core has a relationship of 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ.
4. The photonic band gap fiber according to claim 1, wherein the air hole core has a substantially circular shape in the cross section of the fiber and a diameter D of the air hole core has a relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch Λ.
5. The photonic band gap fiber according to claim 1, wherein the air holes each have a circular cross section and a diameter d circular shape that satisfies a relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ.
6. The photonic band gap fiber according to claim 1, wherein three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding are provided outside the air hole core.
7. The photonic band gap fiber according to claim 1, having a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and having optical characteristics wherein a surface mode is substantially absent.
8. The photonic band gap fiber according to claim 1, having an optical characteristic wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
9. The photonic band gap fiber according to claim 1, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦1.2 (where Γ=2Λ, and Λ is the first pitch).
10. The photonic band gap fiber according to claim 1, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 1.4≦Γ/λ≦1.8 (where Γ=2Λ, and Λ is the first pitch).
11. A method of producing a photonic band gap fiber, the method comprising:
- arranging silica capillary tubes and silica rods into first rows of air holes and into second rows of air holes, wherein in each first row, a number of capillary tubes are arranged at a first pitch, and in each second row capillary tubes and silica rods are alternately arranged, such that a capillary tube arrangement of a cross section forms an extended triangular lattice;
- forming an air hole core region with capillary tube bundles containing silica rods by eliminating a central silica rod or by eliminating a central silica rod together with capillary tubes and silica rods surrounding the central silica rod;
- heating the capillary tube bundles containing the silica rods and making them integrated thus forming a preform for fiber spinning; and
- spinning the preform.
12. The method of producing a photonic band gap fiber according to claim 11, wherein
- the capillary tubes have annular cross sections;
- the silica rods have circular cross sections with diameters equal to diameters of the capillary tubes.
13. The method of producing a photonic band gap fiber according to claim 11, wherein spinning the preform comprises making the capillary tube bundle containing silica rods integrated while it is inserted in a hole of a silica tube.
14. The method of producing a photonic band gap fiber according to claim 11, wherein forming an air hole core region comprises eliminating only one silica rod at a center of the cross section of the capillary tube bundle containing silica rods.
15. The method of producing a photonic band gap fiber according to claim 11, wherein forming an air hole core region comprises eliminating one silica rod at a center of the cross section of the capillary tube bundle containing silica rods, and capillary tubes and silica rods in no less than one layer and no more than five layers surrounding the central silica rod.
16. The photonic band gap fiber according to claim 10, wherein the capillary tube bundle containing silica rods is provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the air hole core region has three or more layers of silica rods.
17. A photonic band gap fiber having multiple air holes provided in silica portions extending in a longitudinal direction of the fiber, the fiber comprising:
- a cladding having an air hole periodic structure in an extended triangular lattice configuration in a cross section of the fiber wherein first rows each having a number of air holes at a first pitch, and second rows each having a plurality of air holes at a second pitch which is twice the first pitch, are arranged such that the air holes of the first rows alternate with the air holes of the second rows so as to form a triangular lattice in the cross section of the fiber; and
- an air hole core comprising multiple air holes arranged at a constant pitch in a triangular lattice configuration.
18. The photonic band gap fiber according to claim 17, wherein the core comprises an air hole at a center of the fiber cross section and a first layer of air holes surrounding the air hole at the center of the fiber.
19. The photonic band gap fiber according to claim 17, wherein the core comprises an air hole at a center of the fiber cross section and two or more layers of air holes surrounding the air hole at the center of the fiber.
20. The photonic band gap fiber according to claim 17, wherein a cross section of each of the air holes is circular and a diameter d of each of the air holes satisfies a relationship 0.85Λ≦d≦Λ with respect to the first pitch Λ.
21. The photonic band gap fiber according to claim 17, wherein three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding are provided outside the core.
22. The photonic band gap fiber according to claim 17 having a core mode in which 60% or more of a transmitting power is concentrated in the core region, and optical characteristics wherein a surface mode is substantially absent.
23. The photonic band gap fiber according to claim 17, having an optical characteristic wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
24. The photonic band gap fiber according to claim 17, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦1.2 (where Γ=2Λ, and Λ is a first pitch).
25. The photonic band gap fiber according to claim 17, having an optical characteristic wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 1.4≦Γ/λ≦1.8 (where Γ=2Λ, and Λ is a first pitch).
26. A method of producing a photonic band gap fiber, the method comprising:
- arranging silica capillary tubes and silica rods into first rows of air holes and into second rows of air holes, wherein each first row comprises a number of capillary tubes arranged at a first pitch, and each second row comprises capillary tubes and silica rods alternately arranged, such that a capillary tube arrangement of a cross section of the fiber forms an extended triangular lattice;
- forming an air hole core region with capillary tube bundles containing silica rods by eliminating a central silica rod, or by eliminating the central silica rod together with capillary tubes and silica rods surrounding the central silica rod;
- heating the capillary tube bundles containing the silica rods and making them integrated thus forming a preform for fiber spinning; and
- spinning the preform.
27. The method of producing a photonic band gap fiber according to claim 26, wherein
- the capillary tubes each have an annular cross section;
- the silica rode each have a circular cross section with a diameter equal to diameters of the capillary tubes.
28. The method of producing a photonic band gap fiber according to claim 26, wherein making the capillary tube bundles containing the silica rods integrated comprises making the capillary tube bundles containing silica rods integrated while they are inserted in a hole of a silica tube.
29. The method of producing a photonic band gap fiber according to claim 26, wherein forming an air hole core region comprises replacing only one silica rod at a center of the capillary tube bundle containing silica rods with a capillary tube.
30. The method of producing a photonic band gap fiber according to claim 26, wherein forming an air hole core region comprises replacing one silica rod at a center of the capillary tube bundle containing silica rods and one layer of silica rods surrounding the silica rod at the center of the capillary tube bundle, with capillary tubes.
31. The method of producing a photonic band gap fiber according to claim 26, wherein forming an air hole core region comprises replacing one silica rod at a center of the capillary tube bundle containing silica rods and two layers of silica rods surrounding the silica rod at the center of the capillary tube bundle, with capillary tubes.
32. The method of producing the photonic band gap fiber according to claim 26, wherein the capillary tube bundle containing silica rods is provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the air hole core region has three or more layers of silica rods.
33. A photonic band gap fiber with multiple air holes provided in silica portions along a longitudinal direction of the fiber, the fiber comprising:
- multiple hexagonally-shaped silica portions at constant pitch Γ in a cross section of the fiber arranged in a triangular lattice configuration;
- air holes disposed between the silica portions;
- a cladding having a periodic structure wherein a length ωr between two sides facing each other of the silica portion is equal to a length Λ which is half of the pitch Γ; and
- an air hole core or a core with multiple hexagonal air holes arranged in triangular lattice configuration.
34. A photonic band gap fiber with multiple air holes provided in silica portions extending in a longitudinal direction of the fiber, the fiber comprising:
- a cladding having an air hole periodic structure in an extended triangular lattice configuration wherein a length ωr between two sides facing each other of the silica portion is substantially equal to a first pitch Λ, wherein first rows of air holes each comprising multiple hexagonal air holes at the first pitch Λ is arranged through a silica partition wall in a cross section of the fiber, and second rows of air holes each comprising multiple hexagonal air holes at a second pitch Γ, which is twice the first pitch, are arranged through hexagonally-shaped silica portions such that the air holes of the first rows are disposed alternately with the air holes of the second rows, so as to form a triangular lattice in a cross section of the fiber; and
- an air hole core or core comprising multiple hexagonal air holes arranged in a triangular lattice configuration.
35. The photonic band gap fiber according to claim 34, wherein a thickness ωb of the silica partitioning wall is in a range of 0.005Λ≦ωb≦0.2Λ.
36. The photonic band gap fiber according to claim 33 or 34, wherein a diameter D of the air hole core has a relationship of 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ.
37. The photonic band gap fiber according to claim 33 or 34, wherein a diameter D of the air hole core has a relationship of 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ.
38. The photonic band gap fiber according to claim 33 or 34, wherein a diameter D of the air hole core has a relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch Λ.
39. The photonic band gap fiber according to claim 33 or 34, wherein three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding are provided outside the core.
40. The photonic band gap fiber according to claim 33 or 34, having a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and optical characteristics wherein a surface mode is substantially absent.
41. The photonic band gap fiber according to claim 33 or 34, having an optical characteristic wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
42. The photonic band gap fiber according to claim 33 or 34, having an optical characteristic wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 0.6≦Γ/λ≦1.5.
43. The photonic band gap fiber according to claim 33 or 34, having an optical characteristic wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 1.4≦Γ/λ≦2.3.
44. The photonic band gap fiber according to claim 33 or 34, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 2.2≦Γ/λ≦3.2.
45. A method of producing a photonic band gap fiber, the method comprising:
- arranging silica capillary tubes and silica rods into first rows of air holes and into second rows of air holes, wherein each first row comprises multiple capillary tubes, and each second row comprises capillary tubes and the silica rods alternately arranged, such that the capillary tube arrangement of a cross section of the fiber forms an extended triangular lattice;
- forming an air hole core region by eliminating a central silica rod or eliminating the central silica rod together with capillary tubes and silica rods surrounding the central silica rod, or forming a capillary tube bundle containing silica rods creating a capillary core region by replacing the central silica rod with capillary tubes;
- heating the arrangement of capillary tubes and silica rods and making it integrated thus forming a preform for fiber spinning while maintaining a pressure in the spaces in the capillary tubes at a higher level than a pressure in spaces surrounding the capillary tubes; and
- spinning the preform.
46. The method of producing a photonic band gap fiber according to claim 45, wherein
- the capillary tubes have annular cross sections;
- the silica rods have circular cross sections with diameters equal to those of the capillary tubes.
47. The method of producing a photonic band gap fiber according to claim 45, wherein making the arrangement of capillary tubes and silica rods integrated comprises making the arrangement integrated while it is inserted in a hole of a silica tube.
48. The method of producing a photonic band gap fiber according to claim 47, wherein only a pressure in the spaces in the capillary tubes in the arrangement inserted in the air hole of the silica tube is maintained at or above the atmospheric pressure, and spaces other than the spaces in the capillary tubes are maintained in a low pressure condition when performing the integration.
49. The method of producing a photonic band gap fiber according to claim 45, wherein forming the air hole core region comprises eliminating one silica rod at a center of a cross section of the arrangement of capillary tubes and silica rods.
50. The method of producing a photonic band gap fiber according to claim 45, wherein forming the air hole core region comprises eliminating one silica rod at the center of a cross section of the arrangement of capillary tubes and silica rods and capillary tubes and silica rods in no less than one layer and no more than five layers surrounding the central silica rod.
51. The method of producing a photonic band gap fiber according to claim 45, wherein forming the air hole core region comprises replacing one silica rod at the center of a cross section of the arrangement of capillary tubes and silica rods with a capillary tube.
52. The method of producing a photonic band gap fiber according to claim 45, wherein forming the air hole core regions comprises replacing one silica rod at the center of a cross section of the arrangement of capillary tubes and silica rods, and silica rods and capillary tubes surrounding the silica rod at the center, with a capillary tube.
53. The method of producing the photonic band gap fiber according to claim 45, wherein the arrangement of capillary tubes and silica rods is provided such that the air hole periodic structure in the extended triangular lattice configuration surrounding the core region has three or more layers of silica rods.
54. A photonic band gap fiber with multiple air holes in silica portions extending in a longitudinal direction of the fiber, the fiber comprising:
- multiple hexagonally-shaped silica portions at a constant pitch Γ in a cross section of the fiber arranged in a triangular lattice configuration;
- air holes between the silica portions;
- a cladding having a periodic structure wherein a length ωr between two sides facing each other of the silica portion is smaller than a length Λ which is half of the pitch Γ; and
- an air hole core or a core with multiple hexagonal air holes arranged in a triangular lattice configuration.
55. A photonic band gap fiber with multiple air holes in silica portions extending in a longitudinal direction of the fiber, the fiber comprising:
- a cladding having an air hole periodic structure in an extended triangular lattice configuration with a length ωr between two sides facing each other of the silica portions is smaller than a first pitch Λ, first rows of air holes, each first row comprising multiple hexagonal air holes at the first pitch Λ in a cross section of the fiber arranged through a silica partition wall, and second rows of air holes, each second row comprising multiple hexagonal air holes at a second pitch Γ which is twice the first pitch arranged through hexagonally-shaped silica portions; and
- an air hole core or a core with multiple hexagonal air holes arranged in a triangular lattice configuration.
56. The photonic band gap fiber according to claim 55, wherein a thickness ωb of the silica partitioning wall is in a range of 0005Λ≦ωb≦0.2Λ.
57. The photonic band gap fiber according to claim 55, wherein a thickness ωb of the silica partitioning wall is in a range of 0.05Λ≦ωb≦0.5Λ.
58. The photonic band gap fiber according to claim 55, wherein ωr, the length between two sides facing each other of the silica portions is in a range 0.4Λ≦ωr≦Λ.
59. The photonic band gap fiber according to claim 54 or 55, wherein a diameter D of the air hole core has a relationship of 0.7Λ≦D≦3.3Λ with respect to the first pitch Λ.
60. The photonic band gap fiber according to claim 54 or 55, wherein a diameter D of the air hole core has a relationship of 4.7Λ≦D≦7.3Λ with respect to the first pitch Λ.
61. The photonic band gap fiber according to claim 54 or 55, wherein a diameter D of the air hole core has a relationship of 8.7Λ≦D≦11.3Λ with respect to the first pitch Λ.
62. The photonic band gap fiber according to claim 54 or 55, wherein three or more layers of the air hole periodic structure in the extended triangular lattice configuration in the cladding are provided outside the core.
63. The photonic band gap fiber according to claim 54 or 55, having a core mode in which 60% or more of a transmitting power is concentrated in the air hole core region, and optical characteristics wherein a surface mode is substantially absent.
64. The photonic band gap fiber according to claim 54 or 55, having an optical characteristic wherein only a single core mode (where the number of modes in case of all degraded modes is taken as 1) is present.
65. The photonic band gap fiber according to claim 54 or 55, having an optical characteristic wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 0.6≦Γ/λ≦1.7.
66. The photonic band gap fiber according to claim 54 or 55, having an optical characteristic wherein a core mode is present within a range in which a wavelength λ, transmitted in the fiber, satisfies a range of 1.5≦Γ/λ≦2.4.
67. The photonic band gap fiber according to claim 54 or 55, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 2.1≦Γ/λ≦3.5.
68. The photonic band gap fiber according to claim 54 or 55, having an optical characteristic wherein a core mode is present when a wavelength λ, transmitted in the fiber, satisfies a range of 0.7≦Γ/λ≦2.4.
69. A method of producing a photonic band gap fiber to obtain the photonic band gap fiber, the method comprising:
- arranging a silica capillary tubes and hollow silica tubes, having wall thicknesses greater than that of the capillary tubes, into first rows of air holes and second rows of air holes, wherein each first row comprises multiple capillary tubes and each second row comprises capillary tubes and hollow silica tubes alternately arranged and disposed such that a capillary arrangement of a cross section of the fiber forms an extended triangular lattice;
- forming an air hole core region by eliminating a central hollow silica tubes or eliminating the central hollow silica tube together with capillary tubes and hollow silica tubes surrounding the central silica tube, or forming a capillary tube bundle in the capillary core region by replacing the central silica tube with capillary tubes;
- forming a preform for fiber spinning by heating the arrangement of capillary tubes and hollow silica tubes and integrating the arrangement while maintaining a pressure in spaces in the capillary tubes at a high level and pressure in spaces within the hollow silica tubes at a low level, such that the spaces within the hollow capillary tubes collapse, and air holes in the capillary tubes are converted to hexagonal shapes; and
- spinning the preform.
70. The method of producing a photonic band gap fiber according to claim 69, wherein
- the capillary tubes have annular cross sections;
- the hollow silica tubes have annular cross sections and thick walls having a thickness equal to a diameter of the capillary tubes.
71. The method of producing a photonic band gap fiber according to claim 69, wherein forming the preform for fiber spinning comprises integrating the arrangement of capillary tubes and silica rods while it is inserted in a hole of a silica tube.
72. The method of producing a photonic band gap fiber according to claim 71, wherein only the spaces in the capillary tubes in the arrangement inserted in the air hole of the silica tube is maintained at or above the atmospheric pressure, and the spaces other than the spaces in the capillary tubes, including the spaces in the hollow silica tubes, are maintained in a low pressure condition when performing the integration.
73. The method of producing a photonic band gap fiber according to claim 69, wherein forming the air hole core region comprises eliminating the central hollow silica tube.
74. The method of producing a photonic band gap fiber according to claim 69, wherein forming the air hole core region comprises eliminating the central hollow silica tube together with the capillary tubes and hollow silica tubes surrounding the central silica tube in no less than one layer and no more than five layers.
75. The method of producing a photonic band gap fiber according to claim 69, wherein forming the air hole core region comprises replacing the central hollow silica tube with capillary tubes.
76. The method of producing a photonic band gap fiber according to claim 69, wherein forming the air hole core comprises replacing the central hollow silica tube together with hollow silica tubes surrounding the central hollow silica tube with capillary tubes.
77. The method of producing the photonic band gap fiber according to claim 69, wherein the arrangement of capillary tubes and hollow silica tubes is provided such that the air hole periodic structure in an extended triangular lattice configuration surrounding the core region has three or more layers of hollow silica tubes.
Type: Application
Filed: Jan 16, 2007
Publication Date: Jul 17, 2008
Applicant: FUJIKURA LTD (Tokyo)
Inventors: Ning Guan (Sakura-shi), Katsuhiro Takenaga (Sakura-shi), Kuniharu Himeno (Sakura-shi)
Application Number: 11/623,644
International Classification: G02B 6/032 (20060101); C03B 37/022 (20060101);