Multicore optical fiber and design method
11762144 · 2023-09-19
Assignee
Inventors
Cpc classification
G02B27/0012
PHYSICS
International classification
Abstract
A multi-core optical fiber includes: four cores arranged in a lattice shape along a longitudinal direction, each of the four cores having a step-index type refractive index distribution with a radius a; and a cladding region having a lower refractive index than that of each core and a diameter of 125±1 μm and provided on an outer peripheral portion of each core, where an absolute value of a relative refractive index difference between each core and the cladding region is Δ. The four cores are arranged so that a relationship between a minimum distance from the center of each core to an outer periphery of the cladding region, a minimum value Λ of spacing between the cores, and the MFD satisfies a formula, and the radius a of each core and the relative refractive index difference Δ between the core and the cladding region are set.
Claims
1. A multi-core optical fiber comprising: four cores arranged in a square lattice shape along a longitudinal direction, each of the four cores having a step-index type refractive index distribution with a core radius a; and a cladding region having a lower refractive index than that of each core, a diameter of 125±1 μm and an absolute value of a relative refractive index difference between each core and the cladding region being Δ, and provided on an outer peripheral portion of each core, wherein a mode field diameter (MFD) at a wavelength of 1310 nm is 8.2 to 9.6 μm, a bending loss at a wavelength of 1625 nm and a bending radius of 30 mm is 0.1 dB/100 turns or less, a cutoff wavelength is 1260 nm or less, and the four cores are arranged, the core radius a of each core is set, and the relative refractive index difference Δ between each core and the cladding region are set so that a relationship between a minimum distance (OCT) from a center of each core to an outer periphery of the cladding region, a minimum value Λ of spacing between the cores, and the MFD at a wavelength of 1310 nm satisfies Formula C1.
[Formula C1]
OCT≥3.73MFD+343
2a<Λ≤−5.28MFD+83.54 (C1)
2. The multi-core optical fiber according to claim 1, wherein a relationship between a total value XT of crosstalk of a unit length at a wavelength of 1625 nm and the MFD at a wavelength of 1310 nm satisfies Formula C2, the crosstalk being received by any core of the cores from other cores.
[Formula C2]
XT≥27.0MFD−251.8 (C2)
3. The multi-core optical fiber according to claim 1, wherein a relationship between a total value XT of crosstalk of a unit length at a wavelength of 1360 nm and the MFD at a wavelength of 1310 nm satisfies Formula C3, the crosstalk being received by any core of the cores from other cores.
[Formula C3]
XT≥33.7MFD−342.3 (C3)
4. A multi-core optical fiber comprising: four cores arranged in a square lattice shape along a longitudinal direction, each of the four cores having a step-index type refractive index distribution with a core radius a; and a cladding region having a lower refractive index than that of each core, a diameter of 125±1 μm and an absolute value of a relative refractive index difference between each core and the cladding region being Δ, and provided on an outer peripheral portion of each core, wherein a mode field diameter MFD at a wavelength of 1550 nm is 9 to 12 μm, a bending loss at a wavelength of 1625 nm and a bending radius of 30 mm is 0.1 dB/100 turns or less, a cutoff wavelength is 1530 nm or less, and the four cores are arranged, the core radius a of each core is set, and the relative refractive index difference Δ between each core and the cladding region are set so that a relationship between a minimum distance (OCT) from a center of each core to an outer periphery of the cladding region, a minimum value Λ of spacing between the cores, and the MFD at a wavelength of 1550 nm satisfies Formula C4.
[Formula C4]
OCT≥2.82MFD+3.7
2a<Λ≤−3.99MFD+83.15 (C4)
5. The multi-core optical fiber according to claim 4, wherein a relationship between a total value XT of crosstalk of a unit length at a wavelength of 1625 nm and the MFD at a wavelength of 1550 nm satisfies Formula C5, the crosstalk being received by any core of the cores from other cores.
[Formula C5]
XT≥24.6MFD−294.8 (C5)
6. The multi-core optical fiber according to claim 4, wherein a relationship between a total value XT of crosstalk of a unit length at a wavelength of 1565 nm and the MFD at a wavelength of 1550 nm satisfies Formula C6, the crosstalk being received by any core of the cores from other cores.
[Formula C6]
XT≥26.0MFD−315.8 (C6)
7. A design method of a multi-core optical fiber, the multi-core optical fiber including: four cores arranged in a square lattice shape along a longitudinal direction, each of the four cores having a step-index type refractive index distribution with a core radius a; and a cladding region having a lower refractive index than that of each core, a diameter of 125±1 μm and an absolute value of a relative refractive index difference between each core and the cladding region being Δ, and provided on an outer peripheral portion of each core, the method comprising: determining specifications which are a cutoff wavelength required for the multi-core optical fiber and a total value XT of crosstalk of a unit length, the crosstalk being received by any core of the cores from other cores; calculating a first mode field diameter (MFD) at a wavelength of 1310 nm by using Formula C2 when the cutoff wavelength is 1260 nm or less and the total value XT of the crosstalk of the unit length is a value at a wavelength of 1625 nm, or by using Formula C3 when the cutoff wavelength is 1260 nm or less and the total value XT of the crosstalk of the unit length is a value at a wavelength of 1360 nm; calculating a first structure which are a minimum distance (OCT) from a center of each core to an outer periphery of the cladding region and a minimum value Λ of spacing between the cores by substituting the first MFD into Formula C1; calculating a second mode field diameter (MFD) at a wavelength of 1550 nm by using Formula C5 when the cutoff wavelength is 1530 nm or less and the total value XT of the crosstalk of the unit length is a value at a wavelength of 1625 nm, or by using Formula C6 when the cutoff wavelength is 1530 nm or less and the total value XT of the crosstalk of the unit length is a value at a wavelength of 1565 nm; and calculating a second structure which are a minimum distance (OCT) from the center of each core to the outer periphery of the cladding region and a minimum value Λ of the spacing between the cores by substituting the second MFD into Formula C4.
[Formula C1]
OCT≥3.73MFD+343
2a<Λ≤−5.28MFD+83.54 (C1)
[Formula C2]
XT≥27.0MFD−251.8 (C2)
[Formula C3]
XT≥33.7MFD−342.3 (C3)
[Formula C4]
OCT≥2.82MFD+3.7
2a<Λ≤−3.99MFD+83.15 (C4)
[Formula C5]
XT≥24.6MFD−294.8 (C5)
[Formula C6]
XT≥26.0MFD−315.8 (C6)
8. The multi-core optical fiber according to claim 1, wherein units of the core radius a, the minimum distance OCT, the mode field diameter MFD, and the minimum value Λ of spacing between the cores are measured in μm.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DESCRIPTION OF EMBODIMENTS
(8) Embodiments of the present disclosure will be described with reference to the accompanying drawings. The embodiments described below are examples of the present disclosure and the present disclosure is not limited to the embodiments described below. In the present specification and the drawings, components with the same reference signs indicate the same components.
(9)
(10)
(11) The dashed line and dotted line in the drawing represent relationships between the core radius and the relative refractive index difference, where cutoff wavelengths are 1260 nm and 1530 nm, respectively. Here, cutoff wavelengths of 1260 nm or less and 1530 nm or less can be obtained on the left sides of the dashed line and the dotted line, respectively. Furthermore, the dot-dash line in the drawing represents a relationship between the core radius and the relative refractive index difference in which an MFD at a wavelength of 1550 nm is 10 μm. An MFD of 10 μm or greater can be obtained in a region below the dot-dash line.
(12) Thus, by setting the core radius and the relative refractive index difference in the region surrounded by the solid line, the dotted line (or dashed line), and the dot-dash line in the drawing, it is possible to simultaneously satisfy the desired bending loss, cutoff wavelength, and MFD characteristics. Here,
(Expression 1)
MFD/2a≈0.65+1.619V.sup.−1.5+2.879V.sup.−6 (1)
Here, V is a normalized frequency, and is defined by V≡2πa/λ(n.sub.1.sup.2−n.sub.2.sup.2).sup.0.5 using the core radius a, the refractive index n.sub.1 of the core, the refractive index n.sub.2 of the cladding, and the wavelength λ.
(13) Accordingly,
(14) Although the cutoff wavelengths described here are 1260 nm and 1530 nm, these indicate the lower limits of a single mode transmission wavelength band defined by multiple International Standards (for example, ITU-T Recommendation G.652 and G.654, respectively). Moreover, the bending loss and the MFD represent loss characteristics and mutual connectivity after formation of a cable, and are specified in the International Standard, such as ITU-T.
First Embodiment
(15) A first multi-core optical fiber will be described as a first embodiment.
(16) In the MCF, it is necessary to appropriately set a minimum distance (OCT) from the center of a core to an outer periphery of a cladding to sufficiently suppress an excess loss αc. The αc tends to increase on the long wavelength region, and generally it is preferable that the αc be 0.01 dB/km or less at the upper limit wavelength used.
(17) At this time, as illustrated in
(Expression 2)
OCT≥3.73MFD+3.43 (2)
(18) Here, the dashed line in
(Expression 3)
Λ≤−5.28MFD+83.54 (3)
(19) Thus, in the MCF of the present application, when the lower limit of the wavelength band used is 1260 nm, the prescribed wavelength of the MFD is 1310 nm, and the αc at a wavelength of 1625 nm is 0.01 dB/km or less, it can be found that setting conditions of the OCT and Λ can be determined from the design center value of the MFD by Expressions (2) and (3).
(20) In other words, the first multi-core optical fiber includes four cores arranged in a square lattice shape along a longitudinal direction and each having a step-index type refractive index distribution with a radius a. Further, the first multi-core optical fiber is a multi-core optical fiber including a cladding region on an outer peripheral portion of the cores. The cladding region has a lower refractive index than that of the core and a diameter of 125±1 μm, where an absolute value of a relative refractive index difference between the core and the cladding region is Δ. In the first multi-core optical fiber, a mode field diameter (MFD) at a wavelength of 1310 nm is 8.2 to 9.6 μm. In the first multi-core optical fiber, a bending loss at a wavelength of 1625 nm and a bending radius of 30 mm is 0.1 dB/100 turns or less. In the first multi-core optical fiber, a cutoff wavelength is 1260 nm or less. In the first multi-core optical fiber, the four cores are arranged so that a relationship between a minimum distance (OCT) from the center of each core to the outer periphery of the cladding region, a minimum value Λ of spacing of the cores, and the MFD at a wavelength of 1310 nm satisfies Number (2) and Expression (3). In the first multi-core optical fiber, the radius a of the core and the relative refractive index difference Δ between the core and the cladding region are set.
(21)
(22) The solid line in the drawing indicates a calculation result when the upper limit wavelength of the wavelength band used is set to 1625 nm. It can be seen from
(Expression 4)
XT≥27.0MFD−251.8 (4)
(23) Here, the special deterioration of transmission due to the XT in the MCF depends on a transmission method. According to Non Patent Literature 7, crosstalk of −16 dB, −24 dB, and −32 dB or less is required for the transmission methods of QPSK, 16QAM, and 64QAM, respectively. In the case of a multi-core optical fiber, inter-core crosstalk is the sum of crosstalk components to any core from the other cores, and crosstalk at any distance can be calculated by XT+10 log(L) based on crosstalk per unit distance (dB/km) and a distance L (km).
(24) For example, in order to perform 1000 to 10000 km transmission using a 16QAM signal format, the crosstalk of the multi-core fiber needs to be −54 to −64 dB/km or less. In other words, it can be seen from
(25) On the other hand, it can be seen from
(26) Furthermore, when it is desired to achieve transmission using a QPSK signal with an MFD of 9 μm at a wavelength of 1310 nm, XT at a wavelength of 1625 nm of this MFD is −9 dB/km. Thus, it can be found that the maximum transmission distance should be 0.2 km or less in order to achieve an XT characteristic of −16 dB/km required for the transmission using the QPSK signal.
(27) Furthermore, the dashed line in
(Expression 5)
XT≥33.7MFD−342.3 (5)
(28) As described above, it can be seen from
(29) As described above, it is possible to define, using the relational expressions (2), (3), and (4), the relationship between the OCT, A, and MFD in the MCF that has a cutoff wavelength, a bending loss, and MFD characteristics equivalent to those of the existing SMF, and that achieves the desired XT characteristics in the wavelength range of 1260 nm to 1625 nm with the excess loss at a wavelength of 1625 nm being 0.01 dB/km or less.
(30) Similarly, it is possible to define, using the relational expressions (2), (3), and (5), the relationship between the OCT, A, and MFD in the MCF of the present application that has a cutoff wavelength, a bending loss, and MFD characteristics equivalent to those of the existing SMF, and that achieves the desired XT characteristics in the wavelength range of 1260 nm to 1360 nm with the excess loss at a wavelength of 1625 nm being 0.01 dB/km or less.
Second Embodiment
(31) A second multi-core optical fiber will be described as a second embodiment.
(32) The MCF of the present embodiment has a cutoff wavelength set to 1530 nm.
(33) At this time, as illustrated in
(Expression 6)
OCT≥2.82MFD+3.7 (6)
(34) Here, the dashed line in
(Expression 7)
Λ≤−3.99MFD+83.15 (7)
(35) Thus, in the MCF of the present application, when the lower limit of the wavelength band used is 1530 nm, the prescribed wavelength of the MFD is 1550 nm, and the αc at a wavelength of 1625 nm is 0.01 dB/km or less, it can be found that setting conditions of the OCT and Λ can be determined from the design center value of the MFD by Expressions (6) and (7).
(36) In other words, the second multi-core optical fiber includes four cores arranged in a square lattice shape along a longitudinal direction and each having a step-index type refractive index distribution with a radius a. Further, the second multi-core optical fiber is a multi-core optical fiber provided on an outer peripheral portion of the cores. The second multi-core optical fiber includes a cladding region having a lower refractive index than that of the core and a diameter of 125±1 μm, where an absolute value of a relative refractive index difference between the core and the cladding region is Δ. In the second multi-core optical fiber, a mode field diameter MFD at a wavelength of 1550 nm is 9 to 12 μm. In the second multi-core optical fiber, a bending loss at a wavelength of 1625 nm and a bending radius of 30 mm is 0.1 dB/100 turns or less. In the second multi-core optical fiber, a cutoff wavelength is 1530 nm or less. In the second multi-core optical fiber, the four cores are arranged so that a relationship between a minimum distance (OCT) from the center of the core to an outer periphery of the cladding region, a minimum value Λ of spacing of the cores, and the MFD at a wavelength of 1550 nm satisfies Number (6) and Expression (7). In the second multi-core optical fiber, the radius a of the core and the relative refractive index difference Δ between the core and the cladding region are set.
(37)
(38) The solid line in the drawing indicates a calculation result when the upper limit wavelength of the wavelength band used is set to 1625 nm. It can be seen from
(Expression 8)
XT≥24.6MFD−294.4 (8)
(39) In addition, the dashed line in
(Expression 9)
XT≥26.0MFD−315.8 (9)
(40) Similar to the MCF described in the first embodiment, it can be seen from
(41) As described above, it is possible to define, using the relational expressions (6), (7), and (8), the relationship between the OCT, Λ, and MFD in the MCF that has a cutoff wavelength, a bending loss, and MFD characteristics equivalent to those of the existing SMF for high speed transmission, and that achieves the desired XT characteristics in the wavelength range of 1530 nm to 1625 nm with the excess loss at a wavelength of 1625 nm being 0.01 dB/km or less.
(42) Similarly, it is possible to define, using the relational expressions (6), (7), and (9), the relationship between the OCT, Λ, and MFD in the MCF that has a cutoff wavelength, a bending loss, and MFD characteristics equivalent to those of the existing SMF, and that achieves the desired XT characteristics in the wavelength range of 1530 nm to 1565 nm with the excess loss at a wavelength of 1625 nm being 0.01 dB/km or less.
Design Method of Optical Fiber
(43)
(44) Step S01 is a specification determination step of determining a cutoff wavelength and a total value XT of crosstalk of a unit length which are required for the multi-core optical fiber, the crosstalk being received any core of the cores from the other cores.
In step S02, the process is assigned to step S03 or step S06 according to the cutoff wavelength determined in the specification determination step S01.
Step S03 is a process performed when it is determined in step S02 that the cutoff wavelength determined in the specification determination step S01 is 1260 nm or less. Step S03 is a first MFD calculation step of calculating a mode field diameter (MFD) at a wavelength of 1310 nm by using an expression selected according to the following selection condition. This selection condition is a condition in which, when the total value XT of the crosstalk of the unit length is a value at a wavelength of 1625 nm, Expression (4) is selected, and when the total value XT of the crosstalk of the unit length is a value at a wavelength of 1360 nm, Expression (5) is selected.
Step S04 is a first structure calculation step of calculating a minimum distance (OCT) from the center of the core to an outer periphery of the cladding region and a minimum value Λ of spacing of the cores by substituting the MFD calculated in the first MFD calculation step S03 into Expressions (2) and (3).
Step S06 is a process performed when it is determined in step S02 that the cutoff wavelength determined in the specification determination step S01 is 1530 nm or less. Step S06 is a second MFD calculation step of calculating a mode field diameter (MFD) at a wavelength of 1550 nm using an expression selected according to the following selection condition. This selection condition is a condition in which, when the total value XT of the crosstalk of the unit length is a value at a wavelength of 1625 nm, Expression (8) is used, and when the total value XT of the crosstalk of the unit length is a value at a wavelength of 1565 nm, Expression (9) is used.
Step S07 is a second structure calculation step of calculating a minimum distance (OCT) from the center of the core to the outer periphery of the cladding region and a minimum value Λ of the spacing of the cores by substituting the MFD calculated in the second MFD calculation step S06 into Expressions (6) and (7).
The design method further includes calculating the core radius a and the relative refractive index difference Δ by substituting the MFD calculated in the first MFD calculation step S03 or the second MFD calculation step S06 into Expression (1) (steps S05 and S08).
(45) By arranging cores based on the core radius a, the relative refractive index difference Δ, the minimum value Λ of the spacing of the cores, and the OCT calculated by the design method, it is possible to achieve an MCF including four step-index type cores with a standard cladding diameter and having excellent mass productivity, quality, and yield while meeting the desired specifications.
INDUSTRIAL APPLICABILITY
(46) The multi-core optical fiber according to the present disclosure can be used for optical fibers in an optical communication system.
REFERENCE SIGNS LIST
(47) 11: Core 12: Cladding region