Systems and methods for thermally annealed gratings in coated and related fibers

A controlled annealing process at specific time and temperature conditions addresses coating degradation and hydrogen outgassing issues in optical fibers, ensuring stable refractive index perturbations and minimal backscattering attenuation.

JP7822396B2Active Publication Date: 2026-03-02OFS FITEL LLC
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Patent Information

Application Number
JP2023547041
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-02
Filing Date
2022-02-02
Publication Date
2026-03-02
Estimated Expiration
2042-02-02

AI Technical Summary

Technical Problem

Existing methods for stabilizing refractive index perturbations in optical fibers using actinic radiation face challenges as they require high temperatures that degrade the protective coatings surrounding the fiber, leading to coating degradation and hydrogen outgassing, which affects the fiber's performance.

Method used

A method involving a stabilization anneal at controlled time and temperature regimes to minimize coating degradation and hydrogen outgassing, allowing the fiber to maintain optical backscattering without degrading the coating, by using a 'reel-to-reel' process where the fiber passes through a high-temperature zone briefly and is cooled quickly to prevent adhesion and release hydrogen into the atmosphere.

Benefits of technology

The method effectively stabilizes refractive index perturbations while preserving the coating integrity, reducing backscattering attenuation to less than 3 dB, and preventing mechanical stress and optical loss due to hydrogen penetration.

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Abstract

Described herein are systems, methods, and articles of manufacture for coated fiber modified by actinic radiation to increase backscattering, which results in very little backscattering attenuation at temperatures and times of exposure sufficient to significantly degrade the coating and / or significantly degrade the optical fiber due to outgassing of hydrogen from the coating, the optical fiber includes a fiber length and a coating having a treated coating weight, the treated coating weight being at least 25% less than the original coating weight before an annealing treatment, the optical backscattering along the fiber length is greater than Rayleigh backscattering over the fiber length, and the optical backscattering does not decrease by more than 3 dB along the fiber length after exposure to an annealing treatment.
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Description

[Technical Field]

[0001] [Reference to Related Application] This application claims the benefit of U.S. Provisional Application No. 63 / 144,598 (filed February 2, 2021), which is incorporated herein by reference. Described herein are systems, methods, and articles of manufacture for coated fibers that are actinically coated to increase backscatter. [Background technology]

[0002] It is known that various types of actinic radiation, such as UV radiation or femtosecond IR radiation, can be used to modify the refractive index of an optical fiber, thereby increasing backscattering in the optical fiber, or even inscribing one or more quasi-periodic fiber gratings along the optical fiber's light-guiding core. It is known that such modifications of the refractive index of an optical fiber can decay in intensity over time, thereby reducing reflected power.

[0003] To stabilize index perturbations, which cause backscattering or enhanced Bragg grating reflection, such gratings often undergo stabilization anneals at temperatures above their operating temperature in their applications. These high temperatures typically exceed the temperature tolerance of the protective coatings surrounding the glass portion of the fiber. For example, a typical germanosilicate optical fiber grating is annealed at 150°C for two days to stabilize the fiber grating reflectivity for years of operation at temperatures below 80°C. However, the typical dual acrylate coating surrounding the fiber substantially degrades after two days of exposure to 150°C, thereby limiting the usefulness of fiber gratings inscribed in the fiber. It is possible to reduce the annealing temperature to temperatures compatible with the dual acrylate coating, typically below 100°C. However, such annealing must be performed for a very long time to ensure minimal decay of the grating reflectivity over the 80°C period.

[0004] Therefore, what is needed is a method for stabilizing actinic changes in the refractive index of optical fibers in a relatively short time and without degrading the optical coating. Summary of the Invention

[0005] The present invention addresses a need in the art and is directed to a coated fiber that has been coated with actinic radiation to increase backscatter, but that produces very little backscatter attenuation at temperatures and times of exposure sufficient to significantly degrade the coating and / or significantly degrade the optical fiber due to outgassing of hydrogen from the coating.

[0006] An exemplary embodiment of the present invention has the form of an article of manufacture configured to provide an optical fiber including a fiber length and a coating having an applied coating weight, wherein the applied coating weight is at least 25% less than the original coating weight before the annealing treatment, the optical backscattering along the fiber length is greater than Rayleigh backscattering over the fiber length, and the optical backscattering does not decrease by more than 3 dB along the fiber length after exposure to the annealing treatment.

[0007] A further exemplary embodiment of the present invention takes the form of a method configured to thermally stabilize a fiber grating without removing or degrading the fiber coating and allowing for hydrogen release. More specifically, such a method includes the steps of receiving an optical fiber at the inlet of at least one heat source, the optical fiber including a coating having an original coating weight and optical backscatter along the fiber length, and heating the optical fiber for a predetermined time t a During this time, the temperature T a and applying an annealing treatment to the optical fiber by at least one heat source at a temperature of 1000.degree. C., wherein the original coating weight is reduced by at least 25% to the applied coating weight during the annealing treatment, and the optical backscattering does not decrease by more than 3 dB along the fiber length after the annealing treatment.

[0008] Other and further embodiments and aspects of the present invention will become apparent during the course of the following discussion and by reference to the accompanying drawings. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a graph illustrating exemplary annealing conditions, including time and temperature values ​​for which the coating survives, according to one embodiment of the present invention. [Figure 2] FIG. 1 illustrates an exemplary system for fiber annealing in which the fiber travels through a furnace and returns to a hardened, non-tacky state after exiting the furnace, according to one embodiment of the present invention. [Figure 3]FIG. 1 illustrates an exemplary system for introducing actinic refractive index perturbations, annealing the actinic refractive index perturbations, and restoring the coating to a hardened and non-tacky state, in accordance with one embodiment of the present invention. [Figure 4] FIG. 1 illustrates an exemplary system for introducing actinic radiation for refractive index perturbation, applying a coating, annealing the fiber, and cooling and re-hardening the fiber after annealing, in accordance with one embodiment of the present invention. [Figure 5] 1 illustrates an exemplary system having multiple furnaces or heat sources, each with its own temperature, in accordance with one embodiment of the present invention. [Figure 6] Images of various coatings with corresponding degradation are shown. DETAILED DESCRIPTION OF THE INVENTION

[0010] As described in detail below, the present invention relates to exemplary embodiments described herein that relate to coated fibers that are actinically coated to increase backscattering, and that produce little backscattering attenuation at temperatures and times of exposure sufficient to significantly degrade the coating and / or significantly degrade the optical fiber due to outgassing of hydrogen from the coating. Further described herein are methods for thermally stabilizing fiber gratings that allow for hydrogen release without removing or degrading the fiber coating.

[0011] The exemplary embodiments described herein address the aforementioned limitations by performing a stabilization anneal in a time and temperature regime that allows the coating to survive. Several factors characterize fiber degradation at high temperatures. One factor is thermal and thermo-oxidative degradation of the coating, which leads to radial and axial shrinkage of the coating and changes in its mechanical properties. In addition, coating shrinkage creates mechanical stresses in the fiber, which can lead to microbending and additional optical loss. Second, when the fiber is wound on a spool and adjacent coils are in contact with each other, at high temperatures, diffusion of unreacted coating components can lead to adhesion of adjacent fiber strands. This adhesion can then lead to difficulties in further unwinding the wound fiber, including potential fiber breakage. Furthermore, another failure mode is related to coating decomposition products, which can contain molecular hydrogen. Evolved hydrogen can diffuse into the fiber cladding and core, which is known to cause additional optical loss. When the fiber is tightly wound, hydrogen penetration in the fiber becomes much stronger, which prevents evolved hydrogen from escaping into the atmosphere and traps it within the spool.

[0012] One exemplary embodiment of the present invention relates to annealing fiber in a "reel-to-reel" fashion, where the fiber passes through a high-temperature space, such as a thermal oven or furnace. Each section of fiber is exposed to very high temperatures, but for a short period of time. After passing through the high-temperature zone, the fiber is cooled to room temperature before reaching the take-up spool, thus substantially preventing adhesion of adjacent fiber coils. Then, when the annealed fiber section is isolated from the rest of the spooled fiber, the generated hydrogen is primarily released into the surrounding atmosphere and much less penetrates into the fiber.

[0013] As mentioned above, exposing a fiber to high temperatures leads to thermal degradation of the coating. As mentioned above, coating degradation can be characterized by different parameters. For simplicity, a single property of the coating can be considered. However, the analysis described herein can be applied to any of the coating quality parameters. For example, coating degradation can be characterized using thermogravimetric analysis, or "TGA." A coating sample is heated to various temperatures and the mass of the sample is recorded. The coating life is then characterized by the amount of weight loss. For example, at a given temperature T max A typical criterion for useful life at low temperatures is a 25% weight loss. At low temperatures, the lifetime can be exponentially longer than at high temperatures. For example, for a given acrylate-based fiber coating, the set of values ​​t that gives a 25% weight loss is life and T max is shown by the blue (solid) line and arrows in plot 100 of Figure 1. Thus, in this plot, the coating exhibits all Tough and T max This occurs regarding

[0014] As shown in plot 100 of Figure 1, the blue (solid) line 110 and arrows indicate the time and temperature values ​​at which the coating survives. The orange (dashed) line 120 and arrows indicate the time and temperature at which the index perturbation is stable. The green (shaded) region 130 is the desired stabilization anneal region where the coating remains and the index perturbation is thermally stabilized.

[0015] On the other hand, the annealing time t required for the grating to stabilize at a lower temperature a and annealing temperature T a can be characterized by the boundary energy. E d =k B T a ln(v o t a ) [Formula 1]

[0016] where kB is the Boltzmann constant, and v o is the frequency response of a particular system. According to Equation 1, E d Give the desired value of t a and T a Any value of Θ ensures the desired stability of the refractive index perturbation at lower operating temperatures. This means that the attenuation of backscattering of core-guided light into the backpropagating core-guided light resulting from the refractive index perturbation is limited to the desired reduction, e.g., a maximum of 3 dB. Note that other means of relating the dependence of grating attenuation on time and temperature can be used, e.g., stretched exponential curves or even full experimental curves. Note that the refractive index perturbation may be allowed to decrease at lower temperatures during use, and therefore absolute stability is not necessarily required. However, E d A particular value of Λ ensures that any further reduction in refractive index perturbation is kept to an acceptable value.

[0017] Boundary energy of 1.45 eV and v o = 1011.5Hz for the value of t a and T a The set of t is shown by the orange (dashed) line in plot 100 of FIG. 1. To ensure stability of the refractive index perturbation and backscattering, t a and T a The value of should be above this orange (dashed) line 120. In that case, the green (shaded) region 130 is the desired regime for a stabilization anneal, since it is below the blue (solid) line 110 and above the orange (dashed) line 120. Thus, for example, an anneal at 300°C for 100 seconds will stabilize the grating while leaving the coating intact.

[0018] Note that the operating temperature may be much lower. For example, if the temperature is 10 6The temperature may be 100°C for 10 seconds. In this example, both the coating perturbation and the refractive index perturbation survive. One notable aspect of the present invention is the relative interplay between coating degradation and annealing, and therefore, while plot 100 of FIG. 1 shows a specific depiction of coating degradation and boundary maps, other parameters characterizing coating degradation or annealing of defects resulting from exposure to actinic radiation may be used based on the specifics and requirements of the fiber application, composition, design, etc.

[0019] Note that exemplary embodiments are detectable for a given fiber with a refractive index perturbation. The fiber is placed in an oven for a set period of time to observe degradation of the coating and fiber. The measurement is repeated for a higher temperature. An exemplary embodiment of the present invention will be evident if, for a given temperature, the coating exhibits failure but the refractive index perturbation remains stable. For example, the coating exhibits a TGA weight loss of more than 25%, but the backscatter from the refractive index perturbation decreases by less than 3 dB. For example, a fiber annealed at 300°C for 100 seconds is annealed at 150°C for 10 seconds. 5.5 If placed for 2 seconds, the coating will fail because this point is above the blue (solid) line 110 in Figure 1. On the other hand, the refractive index perturbation will remain stable because this point is below the orange (dashed) line 120.

[0020] It should be further noted that if annealing is performed at very high temperatures, it may only be performed for a very short time. Therefore, the fiber may be annealed in a container that allows for the removal of any undesired outgassing from the coating or fiber. In particular, if the coating outgases hydrogen during annealing, the hydrogen can be removed from the vicinity of the fiber by flowing another gas or gas mixture through the fiber. Furthermore, the annealing time should be short enough that the hydrogen evolving from the coating has enough time to penetrate the glass fiber and react with the core material used to guide light within the fiber. It should be noted that the diffusion coefficient and saturation level of hydrogen in silica, as well as the reaction rate of hydrogen with the core, are temperature dependent and can therefore be controlled by varying the local fiber temperature after the annealing step.

[0021] In yet another embodiment, such as the system 200 shown in FIG. 2, the fiber 220 is annealed at an annealing temperature inside an unsealed furnace 230. According to the embodiment of the system 200 of FIG. 2, the fiber 220 travels through the furnace 230 and returns to a hardened, non-tacky state after exiting the furnace 230. Hydrogen or other volatiles evolved from the fiber 220 are released at the entrance 232 and exit 234 of the furnace 230, or immediately after the fiber 220 exits the furnace 230 and before the fiber 220 is taken up by the take-up device 240. Thus, the fiber 220 can be spooled from the delivery spool 210 into the tube furnace 230 and then spooled from the exit 234 of the tube furnace 230 onto the take-up spool 240. In this embodiment, hydrogen outgassing from fiber 220 occurs within furnace 230 or shortly after fiber 220 exits furnace 230 and is emitted through openings in inlet 232 and / or outlet 234 of furnace 230 .

[0022] FIG. 3 illustrates an alternative system 300 for introducing actinic refractive index perturbations, annealing the actinic refractive index perturbations, and restoring the coating to a hardened, non-tacky state. As shown in FIG. 3, the refractive index perturbations can be introduced into the system 300 in a section of the fiber 320 from the delivery spool 310 (e.g., entrance opening 342) before the oven 340. Additionally, the area after the oven 340 (e.g., exit opening 344) can have a system 350 for re-curing and repairing the coating before the take-up spool 360. Such a system 350 may simply cool through exposure to ambient air. However, it could also be a UV curing lamp, a second low-temperature oven, a fiber cooling device, or a system that flows a repair gas over the fiber coating. The purpose of this system 350 is to re-harden the coating and restore it to a quality within the specifications required by the fiber's designated application.

[0023] In another embodiment, such as system 400 shown in FIG. 4 , annealing is performed directly on the draw tower during fiber production as fiber 460 is drawn from preform 410 in preform furnace 420. System 400 allows for introducing actinic radiation for the refractive index perturbation into fiber 460, applying a coating to fiber 460, annealing fiber 460, and allowing fiber 460 to cool and re-harden after annealing as fiber 460 moves to take-up spool 470. Specifically, exemplary system 400 includes an actinic radiation system 430 for introducing the refractive index perturbation, a coating system 440 for applying the coating, and an annealing furnace 450 (having an entrance opening 452) for enabling annealing. After exit opening 454 of furnace 450, fiber 460 will be brought to a cooler temperature and re-hardened so that it is no longer tacky or damaged by the high-temperature anneal. It should be noted that while FIG. 4 shows the annealing furnace after the coating application 450, the furnace 450 may be located before the coating application system 440.

[0024] In the embodiment of system 400 of FIG. 4, a heat source may also cure the coating material on fiber 460. For example, some acrylate coatings require UV exposure to fully cure. The coating and fiber 460 may increase in temperature during this curing process. It may then be possible to adjust the power of the UV radiation in such a curing lamp so that the coating is fully cured and the refractive index perturbation is stabilized.

[0025] In another example, the coating may require thermal curing. For example, polyimides often require thermal curing. Such a process can also be tailored to ensure that the polyimide is fully cured and the refractive index perturbation is thermally stabilized. The exemplary embodiments of the invention described herein can be applied to many different types of fiber coatings. These include acrylates, silicones, polyimides, carbon, ceramics, metals, and any combination thereof. Any of these materials may be transparent at the wavelength of actinic radiation. Note that the oven can be any heat source or multiple heat sources operating at either the same or different temperatures. For example, it can be one or more conventional ovens, microwaves, laser energy sources, and / or any combination thereof.

[0026] 5 shows an additional embodiment of a system 500 having multiple ovens or heat sources (e.g., ovens 530, 540, 550), each with its own temperature. The line speed indicates the rate at which fiber 520 moves from the payout spool 510 through the ovens (530, 540, 550) to the take-up spool 560. The ovens (530, 540, 550) are open at both ends and may be purged with a gas such as nitrogen, argon, or helium.

[0027] In another embodiment, a fiber having refractive index perturbations due to actinic radiation exposure is annealed while passing through a series of thermal furnaces (530, 540, 550), as shown in Figure 5. The capabilities of this approach were tested using drawn fiber with a coating similar to that described in the following patent, "UV-Curable Silsesquioxane-Containing Write-Through Optical Fiber Coating," filed July 28, 2015, and issued as U.S. Patent 10,655,034 ("UV-Curable Silsesquioxane-Containing Write-Through Optical Fiber Coating," which is incorporated herein by reference).

[0028] In the first example, a refractive index perturbation was inscribed into the fiber such that the backscattering of the core guided mode was 25.88 dB greater than the Rayleigh scattering measured immediately after actinic radiation exposure. This backscattering measurement was performed using optical frequency-time domain reflectometry (OFDR) using a commercially available OBR OFDR measurement system. This increase in core mode backreflection can also be referred to as backscattering enhancement over Rayleigh scattering, or equivalently, reflectivity enhancement. The actinic radiation exposure in this example was a pulsed 248 nm excimer laser. The annealing setup used a nitrogen-purged, 65 cm long, seven-tube thermal furnace. The temperature T a,1 ~T a,7 The furnace temperature was set at 350°C, and the line speeds attempted for annealing were 5, 10, 20, and 40 m / min. At all line speeds, the heat exposure did not cause significant damage to the coating, but the 1550 nm reflectance enhancement was found to decrease to magnitudes of 21.87, 23.15, 23.61, and 25.84 dB for line speeds of 5, 10, 20, and 40 m / min, respectively. The line speed is the speed at which the fiber travels through the furnace.

[0029] In a second example, a fiber was drawn with the same coating and an FBG was inscribed with an enhanced reflectivity of 26.26 dB. The FBG-inscribed fiber was annealed using seven nitrogen-purged thermal furnaces set at 450 °C using the system 500 shown in Figure 5. The line speeds used for annealing were 7.5, 10, 15, and 20 m / min. Under these conditions, the thermal exposure did not cause significant damage to the coating, yet the measured reflectivity enhancements after annealing were 15.66, 16.34, 18.47, and 20.37 dB, respectively.

[0030] In a third example, a fiber was drawn with the same coating, and the refractive index perturbation gave an enhanced reflectivity of 27.24 dB. The fiber was then heated to a temperature T set at 450°C. a,1 ~T a,7 The fiber was annealed in the same manner as described in the previous example, at a line speed of 10 m / min and a temperature of 160°C. The observed reflectivity enhancement after annealing was 16.30 dB. The annealed fiber was then subjected to a high-temperature anneal in a thermal furnace in air for 89 hours at 160°C. A length of fiber with the same actinic radiation exposure and reflectivity enhancement, but not annealed in the system 500 of FIG. 5, was subjected to the same annealing conditions. After this annealing, the reflectivity enhancement was found to be 15.92 dB and 17.81 dB for the annealed and unannealed fibers, respectively. The lack of significant reflectivity decay (16.30 - 15.92 = 0.38 dB) observed after aging the annealed fiber confirmed that the inscribed FBG was sufficiently stabilized by the annealing process achieved through use of the system 500 of FIG. 5 with the parameters of this example.

[0031] In this example, coating degradation was measured after two different anneals. The degradation is evident in the discoloration of the coating in the microscopic images discussed below. The more yellow the coating appears, the more the coating has degraded from its initial state, which is evident in the visible spectrum. Figures 6A-6C show the following coating images: Figure 6A shows an image after annealing in the system 500 of Figure 5 with the parameters of the third example (annealed at 450°C, line speed = 10 meters / min); Figure 6B shows an image after annealing in the system 500 of Figure 5 with the parameters of the third example (annealed at 450°C, line speed = 10 meters / min) and then annealing at 160°C for 89 hours; Figure 6C shows an image of the same fiber with only an anneal at 160°C for 89 hours. Figure 6A shows that the coating shows minimal degradation after annealing in the system 500 of Figure 5. 6B and 6C show that the coating has significant degradation after annealing at 160°C for 89 hours.

[0032] The present disclosure has been described with reference to exemplary embodiments thereof. All exemplary embodiments and conditional descriptions disclosed in this disclosure have been set forth with the intention of helping those skilled in the art to understand the principles and concepts of the present disclosure. Therefore, those skilled in the art will understand that the present invention can be modified and implemented without departing from the spirit and scope of the present invention. Although numerous embodiments having various features have been described herein, combinations of such various features in other combinations not discussed herein are contemplated to be within the scope of the embodiments of the present disclosure.

Claims

1. receiving an optical fiber at an inlet of at least one heat source, the optical fiber including a coating having an original coating weight and light backscattering along the fiber length; A predetermined time t a During this time, a predetermined temperature T a and annealing the optical fiber with the at least one heat source. The temperature T a and the time t a is the boundary energy E d Determine E d =k B T a ln(v o t a )≧1.45 Here, k B is the Boltzmann constant, v o is the frequency response of the system, a weight loss of at least 25% relative to the original coating weight during the annealing treatment; The method wherein the optical backscattering does not decrease by more than 3 dB along the fiber length after the annealing treatment.

2. The method of claim 1 further comprising using a cooling system to recover and re-harden the coating after the annealing process.

3. 10. The method of claim 1, wherein the optical backscattering is inscribed onto the optical fiber prior to the annealing process.

4. The at least one heat source is heated to a variety of predetermined temperatures T a and a predetermined duration t a 10. The method of claim 1, further comprising a plurality of furnaces using a plurality of furnaces.

5. 10. The method of claim 1, wherein one or both of the coating and the optical fiber undergo outgassing of molecular hydrogen after the annealing process.

6. 10. The method of claim 1, wherein the at least one heat source is a tube furnace having an inlet and an outlet, and wherein hydrogen is degassed through the inlet and outlet of the tube furnace.

7. 10. The method of claim 1, wherein the coating is transparent at the wavelength of actinic radiation used to apply the optical backscattering.

8. The method of claim 1 , wherein the coating comprises one or more of an acrylate, a silicone, a polyimide, a carbon, a ceramic, and a metal.

Citation Information

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