Optical amplifier repeater system using remote pumping

By employing longer pump wavelengths and high-power light sources, the distance and output power of remotely pumped EDFA are enhanced, addressing the limitations of conventional remote pumping methods and enabling long-distance optical fiber transmission.

JP2026043660APending Publication Date: 2026-03-12OCC CORP
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Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2026-03-12

AI Technical Summary

Technical Problem

Conventional remote pumping methods are limited to distances of about 100 km due to insufficient pump light power reaching erbium-doped fibers (EDFs) located far from the pumping source, as the 1.48 μm band experiences significant attenuation, making long-distance optical fiber transmission challenging.

Method used

The use of pump light wavelengths longer than 1.49 μm and shorter than the signal wavelength within the amplification band, specifically in the 1.51 μm and 1.53 μm bands, to reduce attenuation and increase the distance that pump light can travel, combined with high-power, stable light sources like EYDFA and FRL, and multi-stage configurations to enhance gain and output power.

Benefits of technology

This approach extends the distance between the pumping source and EDF, increasing the output power of remotely pumped EDFA, enabling effective optical amplification over distances exceeding 100 km with reduced loss and improved energy conversion efficiency.

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Abstract

An optical amplifier repeater system is provided that extends the distance between the pumping light source of a remotely pumped EDFA and an EDF and increases the output power of the remotely pumped EDFA. [Solution] The optical amplification relay system comprises an optical transmitter that outputs signal light, an optical fiber 40 that transmits the signal light output from the optical transmitter, an optical receiver that receives the return signal light, an optical fiber for optical amplification 51 that is arranged in a portion of the longitudinal direction of the optical fiber and is doped with at least erbium, and pumping light sources 32, 33 that remotely pump the optical fiber for optical amplification 51, wherein the wavelength of the signal light is within the amplification wavelength band of the optical fiber for optical amplification, and the wavelength of the pumping light that remotely pumps the optical fiber for optical amplification is longer than 1.49 μm and shorter than the wavelength of the signal light within the amplification band of the optical fiber for optical amplification.
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Description

[Technical Field]

[0001] The present invention relates to the field of optical fiber, remote pumping. [Background technology]

[0002] <Wavelength dependence of optical fiber transmission loss> The transmission loss of optical fibers, which are widely used today as a communications medium and are primarily made of silica glass, varies depending on the wavelength of the light being transmitted. The wavelength at which loss is minimal is the 1.55 μm band, which is currently used for communications. Research and development trends regarding the reduction of loss in optical fibers are shown, for example, in Figures 2 to 4 of Non-Patent Document 3. The wavelength with the lowest loss and suitable for long-distance transmission continues to be around 1550 nm, and the further away from this wavelength the greater the loss coefficient, making it disadvantageous for long-distance transmission.

[0003] <Erbium-doped optical amplifier> Optical amplifiers that use optical fibers doped with rare-earth elements as their amplification medium are widely used today. In long-distance optical transmission, the 1.55 μm band, which is the wavelength band with the lowest loss for optical fibers made of silica glass, is used as the signal light, and optical fibers doped with erbium (Er), a rare-earth element that can amplify this wavelength band using laser (LASER: Light Amplification by Stimulated Emission of Radiation), are widely used as the amplification medium.

[0004] Light of 0.98 μm or 1.48 μm is used to pump erbium-doped fiber (EDF). This pump light excites the erbium element, and when signal light in the 1.55 μm band is incident on it, stimulated emission causes the output of signal light with increased power. In other words, the power of the pump light is transferred to the signal light via the erbium element, resulting in amplification.

[0005] Semiconductor lasers (laser diodes: LDs) are commonly used as light sources for 0.98 μm and 1.48 μm excitation light. Semiconductor lasers are devices that excite optical semiconductor materials with the energy of an electric current, causing laser oscillation within an optical resonator and outputting the light. Usually, the EDF and pumping light source are packaged together and sold commercially as a single optical amplifier.

[0006] <Remote excitation method> When transmitting optical signals over long distances through optical fiber cables, the optical signal is attenuated due to transmission loss in the optical fiber, limiting the communication distance. For this reason, an optical amplifier repeater is required, which inserts an optical amplifier in the middle to compensate for the loss.

[0007] In a typical optical amplifier configuration, the pump light source for pumping the EDF is placed in close proximity to the EDF. A typical example of a pump light source is a semiconductor laser. This semiconductor laser is driven by commercial power.

[0008] However, it is often necessary to install optical amplifier repeaters in places where commercial power is difficult to obtain, such as in cables laid under the sea, and one solution to this problem is a method called remote pumping, in which pump light is also sent to the repeater through optical fiber. This is a well-known technology that is widely used, as explained in, for example, Non-Patent Documents 1 and 2.

[0009] In the case of remote pumping, the pumping wavelength of EDFA (Er-doped Fiber Amplifier) ​​is 1.48 μm, which enables long-distance transmission in communication optical fiber. 0.98 μm is more susceptible to attenuation than 1.48 μm, making long-distance transmission difficult, and is therefore not used for remote pumping.

[0010] Although 1.48 μm pump light also attenuates over long distances, the remote pumping technique transmits pump light at a high enough power to compensate for this attenuation, allowing it to reach repeaters in remote locations. It is empirically known that a minimum pump light power of 5 to 10 mW (7 to 10 dBm) is required for EDF to achieve practical gain. This is also explained in Non-Patent Document 1 (p. 42, first column). In a typical configuration for conventional remote pumping, pumping light of about 1 W (+30 dBm) is sent out to pump an EDF located about 100 km away. The typical transmission loss of 1.48 μm telecommunications optical fiber is about 20 to 23 dB, so the power that reaches the repeater is +7 to +10 dBm, making pumping possible, but it is difficult to send sufficient pumping light power to an EDF located further away.

[0011] As explained in Figure 2.2-2 of Non-Patent Document 2, the pumping light of remote pumping may be wavelength-multiplexed with the signal light at the terminal station and sent on the same core wire, or the signal light and pumping wavelength may be transmitted on separate core wires from the terminal station to the optical amplifier and then combined just before the EDF in the remote pumping light amplifier device. If the pump light is sent through the same fiber, a phenomenon called stimulated Raman scattering occurs in the optical fiber, and part of the energy of the pump light is transferred to the signal light, i.e., an optical amplification phenomenon occurs. This phenomenon can be actively utilized, but when it is necessary to deliver the pump light over a long distance with as little loss as possible (the problem that this invention aims to solve), it is preferable to send it through separate fibers, since it is not desirable to lose energy.

[0012] <Optical fiber sensing> Optical fibers are widely used as a communications medium, but they are also used as sensors. For example, applying sound waves or vibrations to an optical fiber modulates the light passing through it. By detecting the reflected or transmitted light, environmental information such as sound and vibration can be detected and measured remotely. One representative example of such a measuring instrument is the Distributed Acoustic Sensing (DAS). DAS detects environmental information from backscattered light propagating through the optical fiber. DAS is a type of Optical Time Domain Reflectometry (OTDR). The measuring instrument part of a DAS is called an interrogator. An interrogator is a device that interrogates, and its role is to illuminate each point of the optical fiber (the sensor) with light and obtain environmental information perceived by each point. By analyzing Rayleigh backscattered light, DAS can measure vibrations and strains at each point where a probe pulse passes. Other well-known instruments include BOTDR, which analyzes Brillouin backscattered light. [Prior art documents] [Patent documents]

[0013] [Patent Document 1] U.S. Patent No. 7,595,865 [Patent Document 2] Japanese Patent Application Publication No. 09-113941 [Patent Document 3] Japanese Patent Application Publication No. 09-129956 [Patent Document 4] Japanese Patent Application Publication No. 07-181529 [Non-patent literature]

[0014] [Non-Patent Document 1] Development of a submarine remotely pumped optical amplifier system installed between Okinawa Island and Miyako Island, Tomoyoshi Kataoka et al., NTT Technical Journal, June 2005 [Non-patent document 2] Optical Submarine Cable (Book), 2.2.2 Transmission Distance Extension Technology for Repeaterless Transmission Systems, Optical Submarine Cable Writing Committee (This section was written by Hidenori Taga), May 2010 [Non-patent document 3] Low-loss optical fiber, Yoshinori Yamamoto, Laser Research, Vol. 40, No. 6, June 2012 Summary of the Invention [Problem to be solved by the invention]

[0015] We hope to enable optical fiber sensing and transmission by pumping EDFs located at great distances from terminal stations and optically amplifying and repeating them, which was difficult with conventional remote pumping methods. By great distances, we mean distances far exceeding 100 km, for example.

[0016] Conventional remote pumping uses a pump light source in the 1.48 μm band. In order for EDF to achieve a practical gain of about 15 dB or more, it generally requires a pump light in the 1.48 μm band of at least about 10 mW (10 dBm).

[0017] The output of a semiconductor laser in the 1.48 μm band is about 0.5 W, and even when wavelength multiplexed and polarization combined, it only reaches about 1 to 1.5 W (+30 to 32 dBm). If the distance from the light source to the EDF is 100 km using a typical optical fiber, the attenuation of the 1.48 μm band will be about 22 dB, so the pumping light power reaching the repeater will be about +10 dBm, the minimum pumping power required by the EDF. For this reason, the previous limit for a remote pumping configuration using unidirectional pumping was about 100 km.

[0018] The present invention has been made in consideration of the above circumstances, and aims to enable more pumping power to be sent to a remotely located EDF, thereby increasing the distance between the pumping light source of a remotely pumped EDFA and the EDF, and increasing the output power of the remotely pumped EDFA. [Means for solving the problem]

[0019] The optical amplification relay system using remote pumping of the present invention comprises an optical transmitter that outputs signal light, an optical fiber that transmits the signal light output from the optical transmitter, an optical receiver that receives return signal light, an optical fiber for optical amplification (EDF) that is arranged in a portion of the longitudinal direction of the optical fiber and is doped with at least erbium, and a pumping light source that remotely pumps the optical fiber for optical amplification, wherein the wavelength of the signal light is within the amplification wavelength band of the optical fiber for optical amplification, and the wavelength of the pumping light that remotely pumps the optical fiber for optical amplification is longer than 1.49 μm and shorter than the wavelength of the signal light within the amplification band of the optical fiber for optical amplification. [Effects of the Invention]

[0020] According to the present invention, it is possible to extend the distance from the pumping light source to the EDFA and increase the output power of the remotely pumped EDFA. [Brief explanation of the drawings]

[0021] [Figure 1] FIG. 1 is a configuration diagram of a first embodiment. [Figure 2] 1 is an explanatory diagram of the wavelength dependence of loss in an optical fiber and the wavelength allocation of the present invention. [Figure 3] FIG. 10 is a comparative explanatory diagram of OTDR traces when an optical amplifier repeater is used and when it is not used. [Figure 4] This is an example of the gain wavelength dependence of an EDFA pumped with power after 180 km transmission. [Figure 5] FIG. 10 is a configuration diagram of a second embodiment. [Figure 6] FIG. 10 is a configuration diagram of a third embodiment. [Figure 7] FIG. 11 is a configuration diagram of a modified example of the third embodiment. [Figure 8] FIG. 10 is a configuration diagram of a fourth embodiment. [Figure 9] FIG. 10 is a configuration diagram of a fifth embodiment. [Figure 10] FIG. 1 is an explanatory diagram of wavelength characteristics of absorption and fluorescence of EDF. [Figure 11]FIG. 10 is a diagram illustrating the change in EDFA gain when the pumping wavelength is shifted to the longer wavelength side. [Figure 12] FIG. 1 is an explanatory diagram of an example of a 1.53 μm band excitation light source. [Figure 13] FIG. 1 is an explanatory diagram of an example of a 1.53 μm band excitation light source. DETAILED DESCRIPTION OF THE INVENTION

[0022] The embodiment is characterized in that the wavelength of light for remotely pumping the EDF is longer than 1.49 μm and shorter than the signal wavelength within the amplification band of the EDFA.

[0023] For example, the wavelength of the signal light is 1560 nm, and the pump light wavelength is 1529 to 1532 nm. Hereinafter, pump light in this wavelength band will be referred to as 1.53 μm band pump light. Also, for example, the wavelength of the signal light is 1550 nm, and the pump light wavelength is 1510 nm. Hereinafter, pump light in this wavelength band will be referred to as 1.51 μm band pump light. In the present invention, these 1.51 μm band and 1.53 μm band pump light are applied to the remote pumping system.

[0024] An example of the absorption and fluorescence spectra of EDF is shown in Figure 10. The solid line shows the absorption spectrum, and the dashed line shows the fluorescence spectrum. As shown, 1.48 μm band excitation is an excitation method that utilizes the spread of levels within the same level, and amplification can be achieved if the wavelength of the excitation light is on the shorter wave side (higher energy side) than the wavelength of the signal light (light that is amplified). The 1.48 μm band was selected as the optimal excitation wavelength at this level, and the 1.51 μm and 1.53 μm bands have not been used for the following reasons.

[0025] Reason 1): Reduced signal bandwidth. EDFAs are often used to simultaneously amplify wavelength-multiplexed optical signals, particularly in backbone optical communication networks. These wavelength-multiplexed signals typically range from 1530 to 1562 nm, and EDFAs must have sufficient gain across this broad wavelength range. To achieve this, 1.48 μm pumping is required. Figure 11 shows the gain profile of a certain EDF pumped at a relatively low pump power of +8 dBm. While 1.48 μm pumping provides sufficient gain near 1532 nm, the gain drops sharply as the pump wavelength increases beyond 1.49 μm. This makes EDFAs unsuitable for amplifying the wide signal bandwidth mentioned above. Furthermore, since the 1.53 μm band is part of the EDFA's amplification wavelength range, using it as the pumping wavelength reduces the available signal bandwidth. However, in applications that do not require a wide amplification band, the reduction in the amplifiable band is not an immediate drawback.

[0026] Reason 2) Energy conversion efficiency is poor. This is because as the pumping wavelength approaches the 1.53 μm band, which is the absorption peak wavelength of EDF, from the 1.48 μm band, not only absorption but also stimulated emission becomes active. If pumping is possible at the 1.48 μm or 0.98 μm band, there is no advantage to pumping at wavelengths longer than the 1.49 μm band.

[0027] However, in cases where remote pumping of an EDF over a very long distance is required, pumping light wavelengths shorter than the 1.49 μm band have lower optical fiber loss than the 1.48 μm band, so they have the advantage of being able to pump EDFs located farther away than the 1.48 μm band due to attenuation. Over such long distances, the benefits outweigh the drawbacks.

[0028] A high-power, stable, and economical light source in such a wavelength band is also important for practical use. Such an excitation light source will be described in the embodiments.

[0029] First Embodiment A first embodiment of an optical fiber sensing system will be described with reference to FIG. The first embodiment is an example in which the signal light is probe pulse light and backscattered light of OTDR-type optical fiber sensing, and its wavelength is 1.56 μm. There are several known OTDR-type optical fiber sensing methods, a representative one being DAS. DAS can measure environmental information such as vibration, strain, and temperature at each point through which the probe pulse light passes by analyzing Rayleigh backscattered light. Other known methods include BOTDR, which analyzes Brillouin backscattered light.

[0030] 1 shows a terminal station 10, optical amplifier repeaters 11 and 12, and cables 21, 22, and 23 connected to these. These cables contain optical fiber cores 40 to 43 and are laid in the cables. The terminal station 10 includes a DAS interrogator 30 that outputs a signal light to the optical fiber 40 and receives the return signal light. The optical fiber 40 transmits a probe pulse light L1 and backscattered light L2 returning from various locations. As the probe pulse light L1 passes through various locations on the optical fiber 40 and the backscattered light L2 is generated and begins to propagate in the reverse direction, the backscattered light L2 is affected by environmental information, such as sound and vibration, sensed by the optical fiber 40. The DAS interrogator 30 receives and analyzes the backscattered light L2 to detect and measure environmental information at various locations on the optical fiber 40. In other words, the optical fiber 40 serves both as a transmission path and a sensor. The optical fiber 40 is housed within a structure of cables 21, 22, and 23, which can be said to act as sensor elements. The cables 21, 22, and 23 are laid to optimally capture the environmental information the user desires to collect. FIG. 1 shows how the cables 21 to 23 sense vibration as an example of environmental information they sense.

[0031] The terminal station 10 is equipped with a first pumping light source 31 that outputs pumping light to an optical fiber core 41, a second pumping light source 32 that outputs pumping light to an optical fiber core 42, and a third pumping light source 33 that outputs pumping light to an optical fiber core 43. The first pumping light source 31 serves as a pumping light source for the optical amplifier repeater 11. The second pumping light source 32 and the third pumping light source 33 serve as pumping light sources for the optical amplifier repeater 12. The optical amplifier repeater 12 includes an EDF 51, WDM (Wavelength Division Multiplexing) filters 52 and 53, and BPFs (Band Pass Filters) 54 and 55. The BPFs 54 and 55 pass the signal light and remove ASE (Amplified Spontaneous Emission), and a BPF with a signal light wavelength of 1.56 μm is abbreviated as a "1.56 μm BPF." The WDM filter is a three-port filter element that multiplexes or demultiplexes wavelength bands A and B with low loss, and a WDM filter that multiplexes or demultiplexes the 1.53 μm and 1.56 μm bands is abbreviated as a "1.53 / 1.56 WDM."

[0032] In FIG. 1, two optical amplifier repeaters 11 and 12 driven by remote pumping are installed, and the interval between them is, for example, 90 km. The optical amplifier repeater 11 is located 90 km away from the terminal station 10, and the pumping light output from the first pumping light source 31 is transmitted 90 km to the optical amplifier repeater 11, where it obtains energy for optical amplification. This optical amplifier repeater 11 is located within 100 km of the terminal station 10 and can be realized using known remote pumping technology, so a detailed description of this technology will be omitted. A typical pumping wavelength is in the 1.48 μm band. While Figure 1 shows an example in which the optical fiber core 40 that transmits the optical fiber sensing signal light and the optical fiber core 41 that transmits the pumping light from the first pumping light source 31 are separate, they may be wavelength-multiplexed and transmitted on the same core, and the effect of distributed Raman amplification may also be utilized.

[0033] On the other hand, the optical amplifier repeater 12 is located 180 km away from the terminal station 10, and the pumping light output from the second pumping light source 32 and the third pumping light source 33 is transmitted 180 km through optical fiber cores 42 and 43 to the optical amplifier repeater 12, where it obtains energy for optical amplification. Conventional pumping light in the 1.48 μm band has large transmission loss and does not allow sufficient pumping power to reach the EDF. For this reason, this embodiment uses pumping light in the 1.53 μm band.

[0034] The first embodiment is an example in which the optical amplifier repeater 12 is configured as a single-core bidirectional type. In the case of OTDR-type optical fiber sensing, the probe pulse light L1 and the backscattered light L2 propagate in opposite directions through a single optical fiber, so the optical amplifier repeater 12 also has good compatibility with a single-core bidirectional type. However, a single-core bidirectional type optical amplifier cannot differentiate the amplification degree between the light traveling to the right and the light traveling to the left in the figure, and the output levels cannot be adjusted independently of each other.

[0035] Here, the output power of the second pumping light source 32 and the third pumping light source 33 is +37 dBm each, the distance from the terminal station 10 to the optical amplifier repeater 12 is 180 km, and the transmission loss in the 1.53 μm band is 30 dB. The power reaching the optical amplifier repeater 12 is attenuated to +7 dBm. This pumping light is transmitted through two optical fiber cores 42 and 43, and input to the EDF 51 from the front and rear of the EDF 51 via WDM filters 52 and 53, respectively, to amplify the 1.56 μm band signal light. The EDFA output light also contains ASE light, which can cause various problems. Therefore, BPFs 54 and 55, which extract only the signal light band, are placed at the output of the EDFA to remove the ASE light, and the signal light is then output to cables 22 and 23, which serve as the next transmission path and sensor.

[0036] Using FIG. 2, the wavelength arrangement and the improvement effect by 1.53 μm remote excitation will be described. Currently, in low-loss optical fibers commercially available for long-distance transmission, the loss in the 1.55 μm band, which is the signal wavelength band, is realized to be about 0.16 dB / km. On the other hand, the transmission loss in the 1.48 μm band, which is the general excitation wavelength of EDFA and a wavelength band capable of long-distance transmission in a single-mode optical fiber, is about 0.19 dB / km even for a relatively low-loss optical fiber. In contrast, the transmission loss in the 1.53 μm band used as the excitation light in this embodiment is about 0.165 dB / km, which is not much different from that in the 1.55 μm band. The excitation light power after 180 km of transmission is about 4.5 dB higher in the 1.53 μm band than in the 1.48 μm band. In addition, the 1.53 μm band can be amplified by an EYDFA (Er / Yb co-doped Fiber amplifier) that can output high power, which is difficult to achieve with semiconductor lasers for single-mode optical fiber output by exciting with a multimode LD. Therefore, a stable and high-power excitation light source can be prepared economically. The EYDFA is a type of EDFA, and details will be described later.

[0037] <Explanation of the effect of the amplified relay of the OTDR measuring instrument> Using FIG. 3, the effect of loss compensation of the optical fiber transmission line by optical amplification relay in optical fiber sensing will be described. FIG. 3 is an OTDR trace obtained using the OTDR function of DAS. The horizontal axis represents the distance, and the vertical axis represents the attenuation amount of the reflected return light. When optical amplification relay is not used, the detection limit of the return light for this measuring instrument is up to slightly over 20 dB, and about 100 km is the upper limit of the measurement range when using this optical fiber.

[0038] When the optical amplification relays 11 and 12 of this embodiment are installed at the 90 km and 180 km points, it can be seen that the loss for 90 km is compensated by the optical amplifier and the next transmission section is being transmitted. Thus, it can be seen that the measurement range of 270 km has become possible. This figure simply shows that the measurement range of a typical OTDR, which measures the loss of optical fiber transmission lines, has been extended, and does not directly mean that the measurement range of a DAS has been expanded. However, in reality, if the DAS has sufficient processing performance, there is a strong correlation between the distance at which the returned light becomes so weak that it is difficult to detect in OTDR measurements and the measurement data becomes dominated by noise, and the similar distance in DAS measurements. In fact, in this case, vibrations applied to the optical fiber cable could be detected up to 270 km away.

[0039] In OTDR-type measuring instruments, the interval between light pulses is limited by the round-trip time of light, i.e., the distance to the far end. The longer the measurement distance, the longer the interval between light pulses must be. In this embodiment, the far end is 270 km away, so the repetition frequency of the light pulses is limited to approximately 370 Hz or less.

[0040] In an optical amplifier using remote pumping, the output level of a repeater amplifier at a remote location can be adjusted within a small range by increasing or decreasing the pumping light power sent from the terminal station 10. However, since the optical amplifier in this embodiment is a single-fiber bidirectional type, it is difficult to adjust the output power independently for each direction of light propagation. However, by changing the ratio between the forward pumping light power and the backward pumping light power, it is possible to adjust the saturated output power slightly differently depending on the direction.

[0041] Figure 4 shows an example of the wavelength dependence of gain when pumping an EDF using 1.53 μm pump light transmitted over 180 km in the first embodiment. The pump light transmission power from the terminal station 10 was +37 dBm, and after 180 km transmission it was +7.3 dBm. The EDF length was set so that the gain in the 1.56 μm band was maximized at this pump light power. As shown above, with 1.53 μm pumping, the wavelength range in which gain can be obtained narrows toward the longer wavelength side, so it is desirable to set the signal light wavelength toward the longer wavelength side of the general EDFA amplification wavelength band. This is because the pump wavelength of 1.53 μm is close to the signal wavelength, resulting in poorer energy conversion efficiency with 1.53 μm pumping compared to 1.48 μm pumping.

[0042] In this embodiment, an example is shown in which 1.56 μm is used as the signal light wavelength, but it can be set anywhere within the EDFA amplification wavelength band other than the 1.53 μm pumping wavelength band. However, as shown in an example in Figure 4, 1.56 μm tends to be the wavelength at which gain is easiest to obtain. Setting the signal light in the 1.56 μm band has the advantage that this wavelength has almost the minimum transmission loss in optical fiber, as shown in Figure 2.

[0043] <Modification of Wavelength Band of Second Embodiment> The second embodiment will be described with reference to Fig. 5. This is a modified example of the first embodiment, which uses a different wavelength band, and uses a pumping light wavelength of 1.51 µm and a signal light wavelength of 1.55 µm. In the configuration example of the first embodiment shown in Figure 1, it was difficult to set the signal light wavelength shorter than 1.56 μm. This was because the pump wavelength was 1.53 μm, which resulted in a decrease in amplification efficiency and a deterioration in the noise figure for a signal wavelength of 1.55 μm. The 1.53 μm band is an excellent pump wavelength with lower transmission loss than the 1.48 μm pump wavelength used in conventional remote pumping. However, because it is a pump wavelength within the same EDFA amplification wavelength band, it has the disadvantage of restricting the signal wavelength band to longer wavelengths than 1.56 μm.

[0044] The second embodiment shown in Figure 5 makes it possible to amplify signal light in the 1.55 μm band by eliminating the restriction of using an EDFA as a pumping light source. To achieve this, a pumping wavelength in the 1.51 μm band, which has rarely been used in the past, is used. One candidate for a high-power pumping light source in this pumping wavelength band is the cascaded fiber Raman laser, which has recently become commercially available as a high-power light source. Hereinafter, this will be abbreviated as FRL. The details of fiber Raman lasers will be described later, but their features include high-power output and the ability to design the oscillation wavelength almost freely.

[0045] The configuration of the second embodiment shown in FIG. 5 is the same as the configuration example of the first embodiment shown in FIG. 1 except for the pumping light source, pumping wavelength, and signal light wavelength, and therefore a description thereof will be omitted. Using Figure 2, we will explain the wavelength allocation and the improvement effect achieved by 1.51 μm remote pumping. The transmission loss of the conventional 1.48 μm pumping wavelength band is about 0.19 dB / km, even in optical fibers that are considered to have relatively low loss. In contrast, the transmission loss of the 1.51 μm band used as pump light in the configuration example in Figure 5 is low at about 0.173 dB / km. After 180 km transmission, the pump light power in the 1.51 μm band is about 3.1 dB higher than that in the 1.48 μm band.

[0046] Figure 4 shows an example of the wavelength dependence of gain when pumping an EDF using 1.51 μm pump light transmitted over 180 km in the second embodiment. The pump light transmission power from the terminal station 10 was +37 dBm, and after 180 km transmission it was +5.9 dBm. The EDF length was set so that the gain in the 1.55 μm band was the highest at this pump light power. Compared to 1.53 μm pumping, 1.51 μm pumping has a higher gain on the short wavelength side, and despite the lower pump light power, it can be seen that a higher gain can be obtained in the 1.55 μm band than 1.53 μm pumping.

[0047] In the second embodiment, an example of a pump wavelength of 1.51 μm was described. However, the pump wavelength may be selected to have smaller transmission loss in the optical fiber on the longer wavelength side than the 1.49 μm band. Figure 4 also shows an example of the wavelength dependence of gain when pumping EDF with commonly used 1.48 μm band pump light transmitted 180 km. The pump light transmission power from the terminal station 10 was +37 dBm, and after 180 km transmission it was +2.8 dBm. The EDF length was set so that the gain in the 1.55 μm band was the highest at this pump light power, but it can be seen that the pump power was too weak and almost no gain was obtained. As such, as the pumping wavelength approaches the commonly used 1.48 μm, the transmission loss of the optical fiber increases, the delivered pumping power decreases, and EDFA gain cannot be obtained. Figure 4 shows that in situations where long-distance remote pumping is required, pumping in a wavelength band with low optical fiber transmission loss is advantageous.

[0048] <Third embodiment> The third embodiment will be described with reference to Fig. 6. The third embodiment is a modification of the first embodiment. The optical amplifier repeater 11 shown schematically in Fig. 1 can be realized using conventional technology, so its illustration will be omitted in the following explanatory drawings. In other words, it can be thought of as if the cable 21 and optical amplifier repeater 11 in Fig. 1 have been omitted in Fig. 6. The optical amplifier repeater 12 in FIG. 6 is located, for example, 180 km away from the terminal station 10 .

[0049] The terminal station 10 is provided with a second pumping light source 32, a third pumping light source 33, a fourth pumping light source 34, and a fifth pumping light source 35 as pumping light sources for the optical amplifier repeater 12. Pumping light from these second, third, fourth, and fifth pumping light sources (32, 33, 34, 35) is output to optical fiber cores 42, 43, 44, 45.

[0050] 6, the optical amplifier repeater 12 of the first embodiment has a two-stage serial configuration. That is, the optical amplifier repeater 12 has a first-stage configuration consisting of an EDF 51 and WDM filters 52 and 53, and a second-stage configuration consisting of an EDF 61 and WDM filters 62 and 63, connected in series. Also, BPFs 54, 55, and 56 are provided at the input and output stages, respectively. The pumping light from the second pumping light source 32 and the third pumping light source 33 is supplied to the EDF via WDM filters 52 and 53, and the pumping light from the fourth pumping light source 34 and the fifth pumping light source 35 is supplied to the EDF via WDM filters 62 and 63.

[0051] Even when the gain or output power is insufficient with a single stage, this can be compensated for by using multiple stages in this way. The only way to supply multiple transverse single-mode pumping lights transmitted through separate cores to an EDFA is to input them into the forward pumping and backward pumping ports. Therefore, even if the pumping light power per core becomes insufficient due to transmission attenuation, there is no way to combine them to add up the pumping power. Therefore, a multi-stage configuration is used to increase the gain and output power that would be insufficient in a single stage.

[0052] Generally, if multiple pump lights have different wavelengths or orthogonal polarizations, they can be supplied to a single EDF using wavelength multiplexing or polarization synthesis. However, if this is difficult, a conceivable method is to configure the EDFA in multiple stages, as shown in Figure 6, to increase the number of input ports for forward and backward pumping.

[0053] In order to polarize two lights at a remote location, the transmission path between them would need to be constructed using polarization-maintaining optical fiber, which is difficult. Wavelength multiplexing is possible in remote locations, and this is also a modification. However, the pumping light wavelength range in which the effects of the present invention can be obtained is not very wide, so careful selection is required. For example, 1528 to 1530 nm and 1531 to 1533 nm.

[0054] <One-way level adjustment method for single-fiber bidirectional optical amplifier> In the single-fiber bidirectional optical amplifying repeater 12 described in the first and second embodiments, it is not possible to make the amplification degree different for the light traveling to the right and the light traveling to the left in the figure, but by adding the components enclosed by the dotted line in Fig. 7, it is possible to attenuate the light in only one direction or pass it through a BPF. In the example of Fig. 7, the optical attenuator 65 attenuates only the probe pulse light L1.

[0055] The circulator 64 is a device that rotates the output direction in the direction of the arrow in the symbol, so that light entering through port a is output to port b, light entering through port b is output to port c, and light entering through port c is output to port a. The probe pulse light L1 entering through port a is output to port b by the circulator 64, attenuated by the optical attenuator 65, reflected by the FRM (Faraday Rotate Mirror) 66, attenuated again by the optical attenuator 65, enters the circulator 64 from port b, and is output from port c. Because the light passes through the optical attenuator 65 twice in this way, it is necessary to use an attenuator with an attenuation amount half the desired value. On the other hand, the backscattered light L2 entering the circulator 64 from port c is output from port a, does not pass through the optical attenuator 65, and is not attenuated.

[0056] The FRM66 is a mirror element that rotates the polarization state of incident light by 90 degrees before outputting it. This has the effect of canceling out the polarization dependency of elements on the path that the light passes through twice, on the way there and back, preventing any adverse effects. This embodiment can be realized using a normal mirror, but it is preferable to use the FRM66. Because this level adjustment section has loss, it is desirable to place it in the section sandwiched between the preceding and following EDFAs. If a section with loss is placed on the input side of the EDFA, it will directly degrade the NF (noise figure), so it is desirable to amplify the signal once and then place the section with loss.

[0057] <Fourth embodiment> The fourth embodiment will be described with reference to Fig. 8. The fourth embodiment is also a modification of the first embodiment, and illustration and description of the configuration related to the optical amplifier repeater 11 will be omitted. The distance between the terminal station 10 and the optical amplifier repeater 12 is, for example, 180 km.

[0058] In the optical amplifier repeater 12, the optical signal is divided into directions using circulators 75 and 76, and each is amplified, and then the signals are combined by circulators 76 and 75 and sent out to cables 23 and 22. That is, the optical amplifier repeater 12 has a configuration in which light travels to the right in the figure using EDF 71, WDM filter 72, and BPF 57, and a configuration in which light travels to the left in the figure using EDF 81, WDM filter 82, and BPF 58.

[0059] The terminal station 10 is provided with a second pumping light source 32 and a third pumping light source 33 as pumping light sources for the optical amplifier repeater 12. The pumping light from the second pumping light source 32 is output to an optical fiber core 42 and supplied to an EDF 81 via a WDM filter 82. The pumping light from the third pumping light source 33 is output to an optical fiber core 43 and supplied to an EDF 71 via a WDM filter 72.

[0060] In the single-fiber bidirectional optical amplifier repeater 12 described in the first embodiment, it is not possible to make the amplification factor different for light traveling to the right and light traveling to the left in the figure, but if the optical amplifier repeater 12 has separate optical amplifiers for each direction as shown in the fourth embodiment in Fig. 8, it has the advantage of being able to make the gain different for each direction or to make the characteristics of the BPFs (57, 58) different for each direction. In addition to being able to make the amplification factor different for each direction from the time of manufacture, there is also the advantage that the output power for each direction can be adjusted independently by adjusting the pumping light power sent from the terminal station 10 even after installation.

[0061] However, in the configuration of the optical amplifier repeater 12 in FIG. 8, the number of optical amplifiers is doubled, so that the pumping light power is also required to be roughly doubled, and the scale of the remote pumping light source in the terminal station 10 is nearly doubled.

[0062] Fifth Embodiment The fifth embodiment will be described with reference to Fig. 9. The fifth embodiment is a modification of the fourth embodiment.

[0063] The terminal station 10 is equipped with an optical transceiver 39. The signal transmitted is the signal of the optical transceiver 39 that transmits information. In optical fiber communications, single-core bidirectional transmission has no advantage other than reducing the number of cores required, and is not often used because it is cumbersome to handle. It is common to use one core for each direction, so optical fiber cores 40A and 40B are used. The optical amplifier repeater 12 differs from that shown in Figure 8 in that it does not have circulators 75 and 76, and is equipped with an amplification configuration for light traveling to the right of the figure using EDF 71, WDM filter 72, and BPF 57, and an amplification configuration for light traveling to the left of the figure using EDF 81, WDM filter 82, and BPF 58.

[0064] In this case, a one-way type optical amplifier is used, and an optical isolator is provided to prevent the influence of reflected light, which can cause various problems in communication. This configuration is a common configuration for optical transmission systems using remote pumping, but the feature of this embodiment is that it uses the 1.51 μm band as the pump wavelength, which allows for lower loss and longer distance transmission than the 1.48 μm band, making it possible to send pump power to amplifiers that are further away.

[0065] As described above, the optical fiber amplifier may be configured in any suitable combination of forward pumping, backward pumping, forward and backward pumping, unidirectional amplification, bidirectional amplification, etc., as an embodiment of the present invention.

[0066] <About the excitation light source> The present invention relates to remote pumping, and uses a pumping wavelength different from conventional ones, so the availability of pumping light sources is important for practical use. A light source that has high power of several watts to 10 watts, yet is stable, reliable for the long term, and economical is required. Here, a specific configuration example will be described.

[0067] The most widely used pumping light source for EDFA today is a semiconductor laser module that outputs light of 0.98 μm or 1.48 μm through a transverse single-mode optical fiber. However, the output power of these is limited to about 0.5 W per module, which is insufficient for use as a remote pumping light source, which requires higher power.

[0068] Therefore, it is possible to obtain light of a desired wavelength as seed light, even if its power is weak, and amplify it with an optical amplifier to use it as a pump light source. There are only a limited number of types of optical amplifiers that can amplify the 1.49 to 1.53 μm wavelength band used in the embodiments of the present invention to high power. One is the EYDFA (EDFA), and the other is the FRL (cascade fiber Raman laser).

[0069] Figure 12 shows an example of a 1.53 μm pump light source using an EDFA. First, the ASE (Amplified Spontaneous Emission) light from the EDFA 91 is filtered by the BPF 92 to a wavelength range of 1529 to 1532 nm, and this light is used as seed light, which is then amplified by the EDFA 93. The light is then split into four by the 4-way coupler 94, and each split is input to four EYDFAs 95, resulting in four high-power pump lights of 5 W (+37 dBm) each.

[0070] The reason why ASE light is used as the seed light for the pump light is that, as explained on page 56 of Non-Patent Document 2, light with low coherency and spectral purity is desirable to minimize nonlinear phenomena in optical fibers, particularly Stimulated Brillouin Scattering (SBS). Similarly, the wavelength width is set to approximately 3 nm, to prevent undesired nonlinear phenomena in optical fibers from increasing spectral purity by narrowing the wavelength width too much. Incidentally, a configuration in which ASE light from an optical amplifier is used as pump light for an optical amplifier is well known, as disclosed in Patent Document 3, for example.

[0071] The features of EYDFA95 are explained below. Today, the fundamental pump light source in most optical amplifiers is a semiconductor laser. The output of a single semiconductor laser is about 0.5 W in the case of a transverse single-mode output that can be transmitted through an optical fiber transmission line. Therefore, in order to bundle the light from multiple semiconductor lasers and input it into a single optical fiber, an output of about 1 to 1.5 W has been achieved by wavelength multiplexing with a slight wavelength shift or polarization multiplexing, but it has been difficult to achieve a light source with a higher power than this.

[0072] In contrast, today it is possible to obtain high-power transverse single-mode light by using multiple high-power semiconductor lasers of several watts, even though they are transverse multimode, and combining their output light with a technology called double-clad pumping. By adding ytterbium (Yb, Ytterbium) to the EDF, the ytterbium can absorb the pump light in the 900 to 1100 nm band, which is easy to obtain from high-power light sources, and then transfer that energy to the erbium, enabling efficient pumping. High-power EDFAs (EYDFAs) with output powers of several tens of watts have become commercially available. By inputting seed light in the 1.53 μm band into this high-power optical amplifier, high-power 1.53 μm band pump light can be obtained.

[0073] 13 shows a configuration in which, contrary to FIG. 12, when one EYDFA 96 is capable of outputting two optical powers, the optical signal is split into two and transmitted separately. The ASE light from the EDFA 91 is filtered by the BPF 92 to a wavelength range of 1528 to 1532 nm, and the resulting light is used as seed light, which is amplified by the EDFA 93. The EYDFA 96 then splits the optical power into two, and the two-branch coupler 97 splits it into two.

[0074] Since transmitting power of more than a few watts with ordinary optical fibers for communications poses a risk, it is preferable to split the power into multiple fibers and transmit it in parallel if possible. In this case, as shown in Figure 13, branching the output of a single high-power EYDFA96 to generate pump light output reduces the number of components, which can be more economical.

[0075] Another high-power light source for wavelengths longer than 1.49 μm and shorter than 1.53 μm is the cascade fiber Raman laser (FRL), as disclosed in Patent Document 4. When strong pump light is injected into an optical fiber, stimulated Raman scattering within the optical fiber creates an optical amplifier (fiber Raman amplifier). By attaching a mirror (fiber bragg grating: FBG) that selectively reflects a specific wavelength band within the Raman amplification gain band to the input / output section of this amplification optical fiber, an optical resonator is formed, providing a laser light source of the relevant wavelength. The peak of stimulated Raman scattering gain in a quartz fiber occurs at an optical frequency on the low-frequency side of approximately 13 THz. In other words, it becomes a laser light source approximately 13 THz longer than the pump light. By performing this frequency conversion in multiple stages, wavelength conversion to almost any wavelength band can be achieved. In this case as well, a light source in the 900 to 1100 nm band, which is a high-power light source that can be easily obtained, is used as the initial pumping light source for Raman amplification.

[0076] In the case of an FRL light source, if one unit can output the pumping light power equivalent to the input of multiple cores, it may be possible to configure it more economically by branching the output into multiple parts as shown in Figure 13, rather than arranging multiple FRLs with medium output power.

[0077] Variations in the configuration of the excitation light source are possible, and they may be combined as appropriate as elements of the present invention.

[0078] <Modifications not shown> The aforementioned Patent Document 2 also raises the same problem as the present invention and discloses a solution in which a multimode fiber (transverse multimode fiber) is used as the transmission fiber for pumping light. This has the effect of increasing the cross-sectional area of ​​the optical fiber and reducing the power density in order to avoid some undesirable phenomena that occur when high-power pumping light is input into a transverse single-mode fiber. In fact, transverse multimode fibers are commonly used for transmitting very high-power light, such as for laser welding.

[0079] However, transverse multimode fiber has the disadvantage of having a larger transmission loss per distance than transverse single-mode fiber, and there is no technology available to connect transverse multimode fiber to transverse single-mode fiber with low loss. For these reasons, transverse multimode fiber is not currently used as a long-distance transmission medium for pump light. However, if these obstacles are removed in the future, the present invention may be combined with transverse multimode fiber.

[0080] <Examples of other excitation light sources> For signal light in the 1.55 μm band, the absorption wavelength band of this level of EDF continues from around 1.45 μm to 1.53 μm, as shown in Figure 10, so excitation can be performed anywhere in that band. However, the transmission loss of the optical fiber must be small as it approaches 1.55 μm, and a high-output light source must be economically available.

[0081] Currently, there are no rare-earth doped optical fiber amplifiers capable of high-power output that can be used as remote pump light sources in the 1.49 μm to 1.53 μm wavelength range, and the only ones that can be found are fiber Raman lasers. For example, gain-shifted TDFAs (Thulium-doped Fiber Amplifiers) using thulium (Tm) are a future candidate. Because silica glass cannot be used as the glass base material and a fluoride fiber base material is required, commercial use has been limited due to reliability and other factors. However, if it becomes possible to increase the output power, they may be used. [Explanation of symbols]

[0082] 10 Terminal 11,12 Optical amplifier repeater 21, 22, 23 Cable 30 DAS Interrogator 31 First excitation light source 32 Second excitation light source 33 Third excitation light source 34 Fourth excitation light source 35 5th excitation light source 39 Optical Transmitter / Receiver 51,61,71,81 EDF 52, 53, 62, 63, 72, 82 WDM filters 54, 55, 56, 57, 58 BPF 75,76 Circulator

Claims

1. an optical transmitter that outputs a signal light; an optical fiber for transmitting signal light output from an optical transmitter; an optical receiver for receiving the return signal light; an optical fiber for optical amplification, which is disposed in a portion of the optical fiber in the longitudinal direction and is doped with at least erbium; a pumping light source that remotely pumps the optical fiber for optical amplification; Equipped with the wavelength of the signal light is within the amplification wavelength band of the optical fiber for optical amplification, the wavelength of the pumping light for remotely pumping the optical fiber for optical amplification is longer than 1.49 μm and shorter than the wavelength of the signal light within the amplification band of the optical fiber for optical amplification; Optical amplifier repeater system using remote pumping.

2. The signal light wavelength is set in the 1.55 to 1.56 μm band, and the pump light wavelength is set to 1.53 μm.

2. An optical amplifier repeater system using remote pumping according to claim 1.

3. The signal light wavelength is set in the 1.53 to 1.56 μm band, and the pump light wavelength is set in the 1.49 to 1.52 μm band.

2. An optical amplifier repeater system using remote pumping according to claim 1.

4. the optical fiber for optical amplification that is remotely pumped by the pumping light source is a single-core bidirectional optical amplifier in which signal light and return signal light are transmitted in opposite directions and amplified, the remotely pumped optical amplifiers are connected in two stages in series, Between the stages of the optical amplifier, An optical circulator that splits and combines light according to the direction of travel, a functional element which is an optical attenuation element or an optical filter; mirrors that reflect light back onto its original path.

2. An optical amplifier repeater system using remote pumping according to claim 1.

5. the optical transmitter is an optical transmitter that outputs sensing probe light, the optical receiver is an optical receiver that receives backscattered return light of the sensing probe light propagating through the optical fiber to detect distant environmental information; 5. An optical amplifier repeater system using remote pumping according to claim 1.

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