This application claims priority to an application entitled “optical fiber for long-distance optical communication network,” filed with the Korean Intellectual Property Office on May 13, 2004 and assigned Serial No. 2004-33748, the contents of which are hereby incorporated by reference.
1. Field of the Invention
The present invention relates to an optical fiber and, more particularly, to an optical fiber applicable in long-distance optical communication networks.
2. Description of the Related Art
In an effort to cope with an ever-increasing demand for higher capacity and speed, optical communication systems—namely, a WDM (wavelength division multiplex) technique that can perform a large-capacity transmission at high speed—are being deployed. The WDM systems may be classified into DWDM (dense wavelength division multiplex) systems and CWDM (coarse wavelength division multiplex) systems.
The optical communication networks utilizing the WDM mode are classified into access networks, metro-access networks, metro-core networks, long-haul networks, and ultra long-haul networks depending on the transmission distance. The access networks represent short-distance optical communication networks, while the metro and long-haul networks are long-distance optical communication networks. Specifically, the access networks are used for a distance range of 1-5 km; the metro-access networks for 20-100 km; the metro-core networks for 100-300 km; the long-haul networks for 300-1000 km; and the ultra long-haul networks for 1000 km or more.
Optical fibers used in long-distance optical communication networks in the range of hundreds of kilometers, such as metro and long-haul networks, include a core having a high refractive index, a clad having a low refractive index, and an optional ring region positioned between the core and the clad with a lower refractive index than that of the core. For economic reasons, the conventional long-distance optical communication networks use optical fibers having a dispersion value of −7 to −8 ps/nm/km at a wavelength of 1550 nm.
However, the optical fibers having a dispersion value of −7 to −8 ps/nm/km at a wavelength of 1550 nm tend to experience a degraded transmission efficiency due to dispersion at a transmission rate of 2.5 Gbps. Furthermore, they are not suitable for use in metro networks, which have a transmission distance of 100 km or more and a transmission rate of 10 Gbps, due to this excessively negative dispersion value.
In an effort to solve the above problem, it is proposed to use optical fibers having a large dispersion gradient in the long-distance optical communication networks with a transmission distance of 100 km or more. However, this proposal has a problem in that, although the dispersion characteristics are suitable for metro networks for 200 km or less, it has a limited transmission distance due to a dispersion phenomenon in the case of long-haul networks for long-distance transmission of 200 km or more. Moreover, a nonlinear phenomenon, such as FWM (four-wave mixing), occurs when the optical fibers have a small dispersion-gradient value at a wavelength of 1550 nm, and have a limited transmission distance due to an increased dispersion, which occurs when the dispersion gradient value is large.
Accordingly, the present invention has been made to solve the above-mentioned problems occurring in the prior art and provides additional advantages, by providing an optical fiber used in long-distance optical communication networks for high-speed communication, such as metro networks and long-haul networks.
One aspect of the present invention is to provide an optical fiber capable of using a wavelength band of both the C-band and the L-band.
Another aspect of the present invention is to provide an optical fiber used in long-distance optical communication networks having a zero-dispersion wavelength value in the range of 1560 to 1570 nm and a dispersion gradient value, at a wavelength band of 1550 nm, in the range of 0.055 to 0.075 ps/nm2/km.
The above features and advantages of the present invention will be more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:
a shows the construction of an optical fiber for long-distance communication networks according to an embodiment of the present invention;
b shows the refractive index profile of the optical fiber shown in
a illustrates a direct modulation mode; and,
b illustrates an external modulation mode.
Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings. For the purposes of clarity and simplicity, a detailed description of known functions and configurations incorporated herein will be omitted as it may make the subject matter of the present invention unclear.
Referring to
The core region 120 has a radius R1 about the center of the optical fiber 100 and a refractive index N1, which is the maximum refractive index of the optical fiber 100.
The depressed region 130 surrounds the core region 120. The inner periphery of the depressed region 130 corresponds to the outer periphery of the core region 120. The outer periphery of the depressed region 130 has a radius R2 about the center of the optical fiber 100. The depressed region 130 has a refractive index N2, which is the minimum refractive index of the optical fiber 100.
The ring region 140 surrounds the depressed region 130. The inner periphery of the ring region 140 corresponds to the outer periphery of the depressed region 130. The outer periphery of the ring region 140 has a radius R3 about the center of the optical fiber 100. The ring region 140 has a refractive index N3, which is larger than N2 but smaller than N1.
The clad 150 surrounds the ring region 140. The inner periphery of the clad 150 corresponds to the outer periphery of the ring region 140. The outer periphery of the clad 150 has a radius R4 about the center of the optical fiber 100. The clad 150 has a refractive index N4, which is larger than N2 but smaller than N3.
b illustrates the refractive-index profile of the optical fiber shown in
Now, the characteristics of an inventive optical fiber for long-distance optical communication networks shown in
The loss region due to FWM (four-wave mixing) shown in
Referring to
As shown in
The second dispersion curve 230 has a negative dispersion value of maximum −10 ps/nm/km in the wavelength band of 1550 nm. Therefore, the second dispersion curve 230 cannot be applied to an optical fiber for use in long-distance optical communication networks having a transmission distance of 200 km or more, due to this excessively negative dispersion value. The third dispersion curve 220 has large positive dispersion values in the wavelength band of the C-band and L-band, and thus cannot be applied to an optical fiber for use in long-distance optical communication networks. The fourth dispersion curve 240, which shows the characteristics of a single-mode optical fiber usable in the wavelength band of 1250 to 1450 nm, has a dispersion value of about 10 ps/nm/km or more in wavelength bands including at least the S-band, and thus cannot be applied easily to an optical fiber for use in long-distance optical communication networks.
Referring to
Referring to
Referring to
Accordingly, the optical fiber 100 can exhibit optimal channel efficiency when it has a zero dispersion wavelength value of 1560 to 1570 nm and a dispersion gradient value of 0.055 to 0.075 ps/nm2/km so that it has suitable dispersion values in the C-band and the L-band. Since the optical fiber 100 has a simple refractive index profile and a small depressed region, it can have an increased effective sectional area to accommodate more wavelength bands. When the effective sectional area is 55 μm2 or more, the optical fiber exhibits an excellent transmission efficiency at 10 Gbps.
Although the optical fiber 100 has negative dispersion characteristics in the wavelength band of 1550 nm, preferably it can use the wavelength band of both the C-band and the L-band by adjusting the zero dispersion wavelength value to be in the range of 1560 to 1570 nm and the dispersion gradient value to be in the range of 0.055 to 0.075 ps/nm2/km. In other words, the optical fiber can be used in long-distance optical communication networks by minimizing the wavelength band, which overlaps the dispersion value of FWM (four-wave mixing), as well as the dispersion value of the optical fiber itself.
As mentioned above, the optical fiber according to the present invention is advantageous because it is possible to use the wavelength band of both the C-band and the L-band, by causing the dead zone of the optical fiber amplifier to coincide with the zero dispersion location of the optical fiber. Also, it is possible to easily increase the number of usable channels and the communication capacity, and thus the optical fiber can be used for long-distance optical communication networks.
While the invention has been shown and described with reference to certain preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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2004-33748 | May 2004 | KR | national |