The present invention relates to an optical transmission medium used for an optical wiring system in a device or for optical wiring in a device.
There are two methods for transmitting signals in a device, i.e., an electrical transmission system and an optical interconnection (optical wiring) system. With the recent increase of a CPU clock frequency, a crosstalk occurs due to high-density wiring and a need for waveshaping technique and the like arise in the electrical transmission system, limiting the transmission rate to about 1 Gbps over 1 m. On the other hand, the optical interconnection system can transmit signals in a far broader bandwidth with a compact size and a low power consumption compared with the electrical transmission system. Therefore, in recent years, an attention has been directed to the optical interconnection system as an alternative technique for the electrical transmission system. The optical interconnection includes a system using an optical waveguide circuit and a system using an optical fiber. All optical parts used in a device are desirably stored in a small space as much as possible. Therefore, optical fibers that can be used for flexible wiring, and that realizes optical communication with low loss, are considered as one of the optical parts suitable for the optical interconnection.
A multimode optical fiber (MMF) is often used as an optical fiber for short-distance optical transmission. Normally, the MMF has a diameter about 10 times larger the diameter of a singlemode optical fiber (SMF). The MMF has a large numerical aperture. Thus, high precision alignment is not needed for connecting the MMF to optical parts such as a light source with low loss unlike the SMF, enabling easy connection. Particularly, many research reports have been made for the optical communication method in which an LED or a vertical cavity surface emitting laser (VCSEL) having an oscillation wavelength of 850 nm is used as a light source, and a graded-index optical fiber (hereinafter, “silica GI optical fiber”), which is a type of the multimode optical fiber, is used as an optical transmission medium. The silica GI optical fiber is optimized in terms of refractive index profile so that influence of mode dispersion is suppressed, and is often used for short-distance optical communication.
A core diameter of the silica GI optical fiber is defined to be 50±3 μm by the ITU-T (International Telecommunication Union Telecommunication Standard Sector) G.651. The silica GI optical fiber with its refractive index profile precisely controlled can realize high speed optical communication with a transmission rate of 10 Gbps over a distance equal to or longer than 100 m (e.g., see Non-Patent Document 1).
Non-Patent Document 1: Hatakeyama Ichiro, et al., “High-speed optical interconnections using system LSI module with optical I/O interfaces”, Optical and Electro-Optical Engineering Contact, Vol. 42, No. 8 (2004)
When an optical fiber is used for wiring in a device, bending portions with extremely small curvature radiuses are considered to be formed at many places in the device. When an optical wiring system in a device is designed, a small bending of up to about 1 turn with a curvature radius of about 5 mm is considered to be formed (In the specification, “turn” is used for counting a degree of bending at a portion (bending portion) where a bending is formed. For example, 1 turn refers to a state where an optical fiber is turned by 1 rotation with a certain bending radius, ¼ turn refers to a state where an optical fiber changes the direction by 90 degrees at one bending portion, and ½ turn refers to a state where an optical fiber changes the direction by 180 degrees at one bending portion). Thus, it is necessary to consider an influence of the bending on the transmission rate and the mechanical reliability.
The present invention has been made in consideration of the above aspect. A first object of the present invention is to provide an optical transmission medium including a GI optical fiber that is capable of making wiring in a narrow space, such as wiring in a device, easy, and capable of improving an optical communication bandwidth. A second object of the present invention is to provide an optical transmission medium including an optical fiber ribbon formed with the GI optical fiber. A third object of the present invention is to provide an optical interconnection system employing the above optical transmission media.
To solve the above problems and to achieve the object, an optical transmission medium according to the present invention includes a GI optical fiber that is made of silica glass, and includes a core having a GI refractive index profile and a cladding formed around the core. The GI optical fiber is bent by equal to or more than a quarter turn with a curvature radius equal to or larger than 4 mm and equal to or smaller than 10 mm.
Furthermore, according to the present invention, the GI optical fiber has a core diameter equal to or larger than 47 μm and equal to or smaller than 53 μm and a cladding outer diameter equal to or larger than 70 μm and equal to or smaller than 100 μm.
Moreover, an optical transmission medium according to the present invention includes a GI optical fiber that is made of silica glass, and includes a core having a GI refractive index profile and a cladding formed around the core. The GI optical fiber is bent by equal to or more than one turn with a curvature radius equal to or larger than 4 mm and equal to or smaller than 10 mm.
Furthermore, according to the present invention, the GI optical fiber has a core diameter equal to or larger than 47 μm and equal to or smaller than 53 μm and a cladding outer diameter equal to or larger than 80 μm and equal to or smaller than 90 μm.
Moreover, according to the present invention, the GI optical fiber includes a coating thereon made of at least one of an ultraviolet curing resin and a thermal curing resin, a difference between an outer diameter of the coating and a cladding outer diameter is equal to or larger than 20 μm, and the outer diameter of the coating is equal to or smaller than 150 μm.
Furthermore, according to the present invention, the ultraviolet curing resin and the thermal curing resin have flame resistance.
Moreover, an optical transmission medium according to the present invention includes an optical fiber ribbon formed by joining a plurality of GI optical fibers arranged in parallel. The GI optical fibers are made of silica glass, and include a core having a GI refractive index profile and a cladding formed around the core. The GI optical fibers are bent by equal to or more than a quarter turn with a curvature radius equal to or larger than 4 mm and equal to or smaller than 10 mm.
Furthermore, according to the present invention, the optical fiber ribbon is formed by joining the GI optical fibers arranged in parallel at pitches equal to or larger than 100 μm and equal to or smaller than 150 μm.
Moreover, according to the present invention, the optical fiber ribbon includes a ribbon coating thereon made of at least one of an ultraviolet curing resin and a thermal curing resin.
Furthermore, an optical interconnection system according to the present invention includes a GI optical fiber that is made of silica glass, and includes a core having a GI refractive index profile and a cladding formed around the core. The GI optical fiber is bent by equal to or more than a quarter turn with a curvature radius equal to or larger than 4 mm and equal to or smaller than 10 mm. An optical signal with a communication wavelength of 850 nm propagates through the GI optical fiber.
Moreover, an optical interconnection system according to the present invention includes an optical fiber ribbon formed by joining a plurality of GI optical fibers arranged in parallel. The GI optical fibers are made of silica glass, and include a core having a GI refractive index profile and a cladding formed around the core. The GI optical fibers are bent by equal to or more than a quarter turn with a curvature radius equal to or larger than 4 mm and equal to or smaller than 10 mm. An optical signal with a communication wavelength of 850 nm propagates through the GI optical fiber.
According to the present invention, an optical transmission medium including a GI optical fiber that is capable of making a wiring in a narrow space, such as a wiring in a device, easy, and capable of improving an optical communication bandwidth can be provided. Furthermore, an optical transmission medium including an optical fiber ribbon formed with the GI optical fiber can be provided. Moreover, an optical interconnection system employing the above optical transmission media can be provided. Therefore, it is possible to realize a high-speed optical interconnection.
Exemplary embodiments of an optical transmission medium according to the present invention are explained in detail below with reference to the accompanying drawings. Note that the present invention is not limited to the embodiments. Hereinafter, an outline and features of an optical fiber used in the optical transmission medium of the present invention are explained in the embodiments, and then examples related to an optical interconnection system using the optical transmission medium of the present invention are explained.
In the optical transmission medium of the embodiments, a silica GI optical fiber is bent by a predetermined amount so that higher-order modes are eliminated, thereby decreasing an influence of the mode dispersion and improving a communication bandwidth. In addition, the silica GI optical fiber is reduced in cladding diameter, so that probability of breaking of the silica GI optical fiber upon application of bending stress is lowered, whereby wiring flexibility is improved.
When an optical fiber is used in an optical interconnection, the optical fiber is bent with extremely small curvature radiuses at many places in a device. Disturbances such as bending in the silica GI optical fiber cause a macro-bending loss or mode conversion.
The 0.85-μm band silica GI optical fiber has more than 200 modes. Many higher-order modes have electric field distributions even near a cladding region, and have low effective indexes. Therefore, when the optical fiber is bent, light cannot be confined to a waveguide, which causes the macro-bending loss.
On the other hand, there are concerns that the mode dispersion becomes large and an effective bandwidth decreases when the mode conversion occurs.
On the other hand, when the cladding diameter is made small, the influence of side pressure imposed on the core region becomes large, which increases the influence of disturbance due to the bending.
Assuming that the silica GI optical fiber is bent by ¼ turn with a curvature radius of 5 mm, the macro-bending loss is not large compared with the case of 1-turn bending. However, when the cladding diameter is smaller than 70 μm, the macro-bending loss exceeds 5 dB. Thus, assuming the system in which the optical fiber is bent by ¼ turn with a curvature radius of 5 mm, the cladding diameter needs to be equal to or larger than 70 μm.
It is known that a silica optical fiber with a larger cladding diameter causes larger distortion when the optical fiber is bent, thus increasing the probability of breaking of the optical fiber. The probability of breaking is calculated by simulation for each of the cases of bending the optical fiber by ¼ turn, ½ turn, and 1 turn, with a curvature radius of 5 mm. The relation between the probability of breaking and the cladding diameter is shown in
When optical fibers are used for the optical interconnection, the optical fibers can be bundled to form an optical fiber ribbon, whereby a multi-channel optical transmission medium is obtained for performing high-speed optical communication. The specification of the typical silica GI optical fiber is as follows: the cladding diameter is 125 μm, and the coating outer diameter is 250 μm. Generally, an optical fiber ribbon is formed by connecting a plurality of the optical fibers arranged in parallel with pitches of 250 μm. In the thinned optical fiber with the cladding diameter of 80 μm, the coating diameter is also reduced, so that it is possible to manufacture an optical fiber ribbon including the optical fibers arranged at pitches narrower than those of the conventional optical fiber ribbons. The optical fiber ribbon, which includes the thinned optical fibers arranged at narrow pitches, is an optical part suitable for the optical interconnection because the optical fiber ribbon has higher interconnection flexibility and thus can be stored in a small space.
However, when the coating layer of the optical fiber is thinned, the influence of the lateral pressure to the optical fiber becomes large, which can increase the macro-bending loss. In addition, when the coating layer of the silica GI optical fiber is thinned, the communication bandwidth is likely to degrade because of the presence of the many higher-order modes, which are easily influenced by disturbances. When the length of the optical fiber to be used is short, the influence of the degradation on these optical properties is small. Thus, the degradation of these optical properties can be acceptable depending upon the length of the optical fiber to be used determined by the system design.
A silica GI optical fiber 10 shown in
As shown in
The pitch P can be reduced to 100 μm if the silica GI optical fibers 10 each have the diameter D1 of the core 11 of 50 μm, the diameter D2 of the cladding 12 of 80 μm, and the difference between the coating outer diameter and the cladding diameter of 20 μm. On the other hand, in view of storing the optical fiber ribbon in a small space, the pitch P is preferably equal to or smaller than 150 μm.
The finished dimension of the optical fiber ribbon 20 was as follows: a width W is 1.55 mm, and the thickness H is 0.17 mm. The VCSELs as light sources to be connected to the optical fiber ribbon are arrayed in 12 channels at pitches of 125 μm, so that it is possible to collectively connect the VCSELs to the optical fiber ribbon 20 manufactured. With this configuration, the VCSELs are directly modulated, so that ultrahigh-speed optical communication at over 100 Gbps can be realized.
In Example 3, a flame-retardant ultraviolet curing urethane acrylate resin was used as the ultraviolet curing resin for a material of the coating resin 5 to manufacture a flame-retardant fiber ribbon. The flame-retardant ultraviolet curing urethane acrylate resin used in Example 3 was manufactured by adding, to the resin, a halogen additive such as bromine and chlorine and an antimony compound such as antimonous oxide and triphenylantimony; a metal hydride such as aluminum hydroxide and magnesium hydroxide; or a phosphorus compound such as phosphate ester, or by halogenating a prepolymer or an acrylic polymer composing the ultraviolet curing resin with bromine or chlorine and adding phosphorus. Flame resistance of the ultraviolet curing resin was examined. Specially, the method of adding a brominated flame-resistant agent was effective in view of the flame resistance.
The flame resistance was obtained by changing the compositions of the ultraviolet curing resin. The reason thereof is that products produced by decomposition reaction cover the surface of the resin, or cracked gas produced when the ultraviolet curing resin is burned forms a shield layer between the ultraviolet curing resin and air. In addition, it is also considered that radicals generated from a halogen-containing compound prevent continuous burning, or the resin is cross-linked and forms a three-dimensional structure.
A 60-degree inclination flame test according to the JIS Standard C3005 was conducted for evaluation of the optical fiber ribbon obtained by using the ultraviolet curing urethane acrylate resin containing the brominated flame retardants as the ultraviolet curing resin for an optical fiber ribbon. As a result, flame ignited on the optical fiber was naturally extinguished in about 3.2 seconds on average, which satisfies the JIS Standard.
It was confirmed that high flame resistance can be obtained by using the flame-retardant ultraviolet curing resin for both of the optical fiber coating resin and the ribbon coating resin. As a result, the optical fiber ribbon, which is obtained by using the ultraviolet curing urethane acrylate resin containing the brominated flame-resistant agent for the optical fiber coating resin and the ribbon coating resin, exhibited the highest flame resistance. In the 60 degree inclination flame test according to JIS Standard C3005, flame ignited on the optical fiber was spontaneously extinguished in about 2.6 seconds on average, which satisfies the JIS Standard.
As a result of a vertical flame test according to UL1581 Standard, flame was spontaneously extinguished in 5.7 seconds on average, and there was no dropping occurred during burning of the optical fiber, which satisfies the UL Standard. As a result of the vertical flame test according to UL1581 Standard on an optical fiber, flame was spontaneously extinguished in 7.6 seconds on average. Thus, even the optical fiber only exhibited sufficient flame resistance.
A 0.85-μm band optical interconnection system 30 shown in
A silica GI optical fiber ribbon having a cladding diameter of 80 μm and a coating outer diameter of 125 μm was used for the optical fiber ribbon 20.
Examination was made of a change of a transmission rate due to the provision of the bending portion A in the optical fiber ribbon 20, using the device shown in
This system realizes high-speed signal processing utilizing the optical communication technique, and realizes an optical transmission rate equal to or larger than 10 Gbps, which is difficult to be realized by electrical signals at present. Gigabit-scale optical transmission can be performed even in a state where the optical fiber is not bent. However, the communication bandwidth can be further improved by using the optical transmission medium, in which the silica GI optical fiber is bent, such as the optical transmission medium in the embodiments, which can realize a high-speed optical interconnection. In addition, the cladding diameter is made small, so that the probability of breaking of the optical fiber due to bending is reduced.
A 0.85-μm band optical interconnection system was constructed with the same components as those of Example 5 shown in
Similarly to Example 5, experiments were made of the optical fiber ribbon 20 for both cases of with and without the bending portion A for comparison. When the bending portion A was not provided, modulation at the maximum speed of 5.1 Gbps was possible. On the other hand, when the bending portion A was provided, high-speed transmission at the maximum speed of 7.5 Gbps was realized. This system realizes high-speed signal processing utilizing the optical communication technique, and realizes an optical transmission rate equal to or larger than 10 Gbps, which is difficult to be realized by electrical signals at present. Gigabit-scale optical transmission can be performed even in a state where the optical fiber is not bent. However, the communication bandwidth can be further improved by using the optical transmission medium, in which the silica GI optical fiber is bent, such as the optical transmission medium in the embodiments, which can realize a high-speed optical interconnection.
As described above, the optical transmission medium including the GI optical fiber and the optical fiber ribbon according to the present invention is suitable for drawing an optical fiber in a limited space, for example, for the optical interconnection, and particularly, suitable for an optical fiber for optical wiring in a device.
Number | Date | Country | Kind |
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2005-085857 | Mar 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2006/306008 | 3/24/2006 | WO | 00 | 9/20/2007 |