Resin composition, method for manufacturing resin composition, optical fiber, method for manufacturing optical fiber, optical fiber ribbon, and optical fiber cable

A resin composition using bifunctional and monofunctional urethane (meth)acrylates addresses the balance of low Young's modulus and high breaking strength, enhancing microbending resistance and low-temperature properties in optical fiber coatings.

JP7786397B2Active Publication Date: 2025-12-16SUMITOMO ELECTRIC INDUSTRIES LTD
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Patent Information

Application Number
JP2022572082
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-21
Filing Date
2021-12-06
Publication Date
2025-12-16
Estimated Expiration
2041-12-06

AI Technical Summary

Technical Problem

Existing resin compositions for optical fiber primary coatings face challenges in achieving a balance between low Young's modulus and high breaking strength, leading to defects and increased microbending loss, especially at low temperatures, as the packing density of optical fibers increases.

Method used

A resin composition comprising bifunctional and monofunctional urethane (meth)acrylates, synthesized from specific reactants, is used to form a primary coating that combines low Young's modulus with high breaking strength, improving microbending resistance and low-temperature properties.

Benefits of technology

The resin composition forms a primary coating with enhanced microbending resistance and low-temperature properties without defects, suitable for high-density optical fiber applications.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A resin composition for optical-fiber priming which comprises photopolymerizable compounds including a bifunctional urethane (meth)acrylate and a monofunctional urethane (meth)acrylate and a photopolymerization initiator, wherein the bifunctional urethane (meth)acrylate is a product of reaction among a diol, a diisocyanate, and a hydroxylated (meth)acrylate and the monofunctional urethane (meth)acrylate is either a product of reaction among a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxylated (meth)acrylate or a product of reaction between a polyoxyalkylene monoalkyl ether and a (meth)acrylate containing an isocyanate group.
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Description

[Technical Field]

[0001] The present disclosure relates to a resin composition for primary coating of an optical fiber, a method for manufacturing the resin composition, an optical fiber, a method for manufacturing an optical fiber, an optical fiber ribbon, and an optical fiber cable. This application claims priority to Japanese Application No. 2020-211203, filed on December 21, 2020, and incorporates by reference all of the contents of said Japanese application. [Background technology]

[0002] In recent years, there has been an increasing demand for high-density cables with increased optical fiber packing density in data center applications. Optical fibers generally have a coating resin layer to protect the glass fiber, which serves as the optical transmitter. The coating resin layer is composed of two layers: a primary resin layer in contact with the glass fiber and a secondary resin layer formed on the outer surface of the primary resin layer. As the packing density of the optical fiber increases, external forces (lateral pressure) are applied to the optical fiber, which tends to increase microbending loss. It is known that reducing the Young's modulus of the primary resin layer and increasing the Young's modulus of the secondary resin layer can improve the microbending resistance of optical fibers. For example, Patent Documents 1 to 5 describe resin compositions for primary coatings containing urethane (meth)acrylate, which is a reaction product of polyol, diisocyanate, and hydroxyl group-containing (meth)acrylate. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-197163 [Patent Document 2] Japanese Patent Application Laid-Open No. 2012-111674 [Patent Document 3] Japanese Patent Application Laid-Open No. 2013-136783 [Patent Document 4] Special Publication No. 2013-501125 [Patent Document 5] Japanese Patent Application Laid-Open No. 2014-114208 Summary of the Invention

[0004] A resin composition for a primary coating of an optical fiber according to one embodiment of the present disclosure contains a photopolymerizable compound including a bifunctional urethane (meth)acrylate and a monofunctional urethane (meth)acrylate, and a photopolymerization initiator, wherein the bifunctional urethane (meth)acrylate is a reaction product of a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, and the monofunctional urethane (meth)acrylate is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate. [Brief explanation of the drawings]

[0005] [Figure 1] FIG. 1 is a schematic cross-sectional view showing an example of an optical fiber according to this embodiment. [Figure 2] FIG. 2 is a schematic cross-sectional view showing an optical fiber ribbon according to an embodiment. [Figure 3] FIG. 3 is a schematic cross-sectional view showing an optical fiber ribbon according to an embodiment. [Figure 4] FIG. 4 is a plan view showing the appearance of an optical fiber ribbon according to an embodiment. [Figure 5] FIG. 5 is a schematic cross-sectional view showing an optical fiber cable according to one embodiment. [Figure 6] FIG. 6 is a schematic cross-sectional view showing an optical fiber cable according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0006] [Problem to be solved by this disclosure] As the Young's modulus of the resin composition for the primary coating is reduced, the breaking strength also tends to decrease, which can lead to defects (voids) in the primary resin layer and an increase in transmission loss, especially at low temperatures.

[0007] The present disclosure aims to provide a resin composition that can form a resin layer that combines a low Young's modulus and high breaking strength and is suitable for the primary coating of an optical fiber, and an optical fiber that has excellent microbending resistance and low-temperature properties.

[0008] [Effects of this disclosure] According to the present disclosure, it is possible to provide a resin composition capable of forming a resin layer that is suitable for the primary coating of an optical fiber, which has both a low Young's modulus and high breaking strength, and an optical fiber that has excellent microbending resistance and low-temperature properties.

[0009] [Description of the embodiments of the present disclosure] First, the contents of the embodiments of the present disclosure will be listed and described. A resin composition for a primary coating of an optical fiber according to one aspect of the present disclosure contains a photopolymerizable compound including a bifunctional urethane (meth)acrylate and a monofunctional urethane (meth)acrylate, and a photopolymerization initiator, wherein the bifunctional urethane (meth)acrylate is a reaction product of a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, and the monofunctional urethane (meth)acrylate is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate.

[0010] Such a resin composition can achieve both a low Young's modulus and high breaking strength, and does not cause defects in the primary resin layer, so it can form a resin layer that is suitable for the primary coating of an optical fiber, and can improve the microbending resistance and low-temperature properties of the optical fiber.

[0011] In order to adjust the Young's modulus to a value suitable for the primary resin layer, the number average molecular weight of the diol may be 2,500 or more and 20,000 or less.

[0012] In order to further increase the breaking strength of the primary resin layer, the number average molecular weight of the diol may be 6,000 or more and 20,000 or less.

[0013] The diol may be polypropylene glycol, since this allows for easy adjustment of the Young's modulus of the primary resin composition.

[0014] In order to further reduce the primary resin layer, the number average molecular weight of the polyoxyalkylene monoalkyl ether may be 2,000 or more and 10,000 or less.

[0015] In order to improve compatibility with other components, the polyoxyalkylene monoalkyl ether may be polyoxypropylene monobutyl ether.

[0016] In order to adjust the Young's modulus to a value suitable for the primary resin layer, the content of the monofunctional urethane (meth)acrylate may be 10 parts by mass or more and 70 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0017] In order to improve the curing speed of the resin composition, the photopolymerizable compound may further contain an N-vinyl compound.

[0018] A method for producing a resin composition according to one embodiment of the present disclosure includes the steps of: synthesizing a bifunctional urethane (meth)acrylate by reacting a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate; synthesizing a monofunctional urethane (meth)acrylate by reacting a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate or a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate; and mixing a photopolymerizable compound containing the bifunctional urethane (meth)acrylate and the monofunctional urethane (meth)acrylate with a photopolymerization initiator to prepare a resin composition. This allows for the production of a resin composition that has both a low Young's modulus and high breaking strength and is suitable for primary coating of optical fibers.

[0019] An optical fiber according to one aspect of the present disclosure includes a glass fiber including a core and a cladding, a primary resin layer that contacts and coats the glass fiber, and a secondary resin layer that coats the primary resin layer, the primary resin layer containing a cured product of the resin composition. Such an optical fiber has excellent microbending resistance and low-temperature properties without causing defects in the primary resin layer.

[0020] A method for producing an optical fiber according to one aspect of the present disclosure includes a coating step of coating the resin composition on the outer periphery of a glass fiber including a core and a cladding, and a curing step of curing the resin composition by irradiating it with ultraviolet light after the coating step, thereby producing an optical fiber with excellent microbending resistance and low-temperature properties.

[0021] An optical fiber ribbon according to one aspect of the present disclosure includes a plurality of the optical fibers arranged in parallel and coated with a ribbon resin. Such an optical fiber ribbon has excellent microbending resistance and low-temperature properties, and can be packed densely in an optical fiber cable.

[0022] In an optical fiber cable according to one aspect of the present disclosure, the optical fiber ribbon is housed within the cable. The optical fiber cable according to the present disclosure may have a configuration in which a plurality of the optical fibers are housed within the cable. An optical fiber cable including the optical fiber or optical fiber ribbon according to this embodiment has excellent microbending resistance and low-temperature properties.

[0023] [Details of the embodiments of the present disclosure] Specific examples of the resin composition and optical fiber according to the present embodiment will be described with reference to the drawings as necessary. The present disclosure is not limited to these examples, but is defined by the claims, and is intended to include all modifications within the meaning and scope of the claims. In the following description, the same elements in the drawings will be denoted by the same reference numerals, and redundant explanations will be omitted. In this specification, (meth)acrylate means acrylate or the corresponding methacrylate, and the same applies to other similar expressions such as (meth)acryloyl.

[0024] (Resin composition) The resin composition according to this embodiment contains a photopolymerizable compound containing a bifunctional urethane (meth)acrylate and a monofunctional urethane (meth)acrylate, and a photopolymerization initiator.

[0025] The bifunctional urethane (meth)acrylate according to this embodiment is a reaction product of a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate. The bifunctional urethane (meth)acrylate is a component having two (meth)acryloyl groups. Hereinafter, a urethane (meth)acrylate containing a bifunctional urethane (meth)acrylate as a main component may be referred to as "urethane (meth)acrylate (A)."

[0026] The bifunctional urethane (meth)acrylate can be represented by the following formula (1): In formula (1), A represents a residue of a hydroxyl group-containing (meth)acrylate, U represents a urethane bond, I represents a residue of a diisocyanate, P2 represents a residue of a diol, and n is an integer of 1 or more. A-(UIU-P2)nUIUA (1)

[0027] Examples of diols include polyether diols, polyester diols, polycaprolactone diols, polycarbonate diols, polybutadiene diols, and bisphenol A-ethylene oxide addition diols. Examples of polyether diols include polytetramethylene glycol (PTMG), polyethylene glycol (PEG), polypropylene glycol (PPG), PTMG-PPG-PTMG block copolymers, PEG-PPG-PEG block copolymers, PTMG-PEG random copolymers, and PTMG-PPG random copolymers. Polypropylene glycol is preferred as the diol because it allows for easy adjustment of the Young's modulus and breaking strength of the resin layer.

[0028] From the viewpoint of obtaining a Young's modulus suitable for the primary resin layer, the number average molecular weight (Mn) of the diol may be 2,500 or more and 20,000 or less, 4,000 or more and 20,000 or less, or 5,000 or more and 20,000 or less. From the viewpoint of further increasing the breaking strength of the primary resin layer, the Mn of the diol may be 6,000 or more and 20,000 or less, 8,000 or more and 19,000 or less, or 10,000 or more and 18,500 or less.

[0029] Examples of diisocyanates include 2,4-tolylene diisocyanate, 2,6-tolylene diisocyanate, isophorone diisocyanate, dicyclohexylmethane diisocyanate, diphenylmethane diisocyanate, hexamethylene diisocyanate, xylylene diisocyanate, hydrogenated xylylene diisocyanate, 1,5-naphthalene diisocyanate, norbornene diisocyanate, 1,5-pentamethylene diisocyanate, tetramethylxylylene diisocyanate, and trimethylhexamethylene diisocyanate.

[0030] Examples of hydroxyl group-containing (meth)acrylates include 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 2-hydroxybutyl (meth)acrylate, caprolactone (meth)acrylate, 2-hydroxy-3-phenoxypropyl (meth)acrylate, 2-(meth)acryloyloxyethyl-2-hydroxyethyl phthalate, 2-hydroxy-O-phenylphenolpropyl (meth)acrylate, 2-hydroxy-3-methacrylpropyl acrylate, trimethylolpropane di(meth)acrylate, and pentaerythritol tri(meth)acrylate. From the viewpoint of reactivity, 2-hydroxyethyl acrylate is preferred.

[0031] The urethane (meth)acrylate (A) may further contain a reaction product of a diol, a diisocyanate, a hydroxyl group-containing (meth)acrylate, and an active hydrogen-containing silane compound. By introducing a group based on the active hydrogen-containing silane compound into the urethane (meth)acrylate, the proportion of (meth)acryloyl groups, which are photopolymerizable groups, can be reduced, the Young's modulus of the primary resin layer can be reduced, and the adhesion to the glass fiber can be improved.

[0032] Examples of active hydrogen-containing silane compounds include N-2-(aminoethyl)-3-aminopropylmethyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyltrimethoxysilane, 3-aminopropyltrimethoxysilane, 3-aminopropyltriethoxysilane, 3-triethoxysilyl-N-(1,3-dimethyl-butylidene)propylamine, N-phenyl-3-aminopropyltrimethoxysilane, 3-mercaptopropylmethyldimethoxysilane, and 3-mercaptopropyltrimethoxysilane.

[0033] From the viewpoint of adjusting the Young's modulus of the primary resin layer, the urethane (meth)acrylate (A) may further contain a reaction product of a diol, a diisocyanate, a hydroxyl group-containing (meth)acrylate, and a monohydric alcohol.

[0034] Examples of monohydric alcohols include methanol, ethanol, 1-propanol, 2-propanol, 1-butanol, 2-butanol, 2-methyl-2-propanol, 1-pentanol, 2-pentanol, 3-pentanol, 2-methyl-1-butanol, 3-methyl-1-butanol, 2-methyl-2-butanol, and 3-methyl-2-butanol.

[0035] Examples of methods for preparing the urethane (meth)acrylate (A) include a method of reacting a diol with a diisocyanate to synthesize an isocyanate group (NCO)-terminated prepolymer, followed by reaction with a hydroxyl group (OH)-containing (meth)acrylate; a method of reacting a diisocyanate with a hydroxyl group-containing (meth)acrylate, followed by reaction with a diol; and a method of simultaneously reacting a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate. When preparing the urethane (meth)acrylate (A), the hydroxyl group-containing (meth)acrylate may be mixed with an active hydrogen-containing silane compound or a monohydric alcohol, if necessary.

[0036] The molar ratio of NCO to OH (NCO / OH) when reacting a diol with a diisocyanate is preferably 1.1 to 4.0, more preferably 1.2 to 3.5, and even more preferably 1.4 to 3.0. The molar ratio of the total of the OH group-containing (meth)acrylate, active hydrogen-containing silane compound, and monohydric alcohol to the NCO of the NCO-terminated prepolymer is preferably 1.00 to 1.15, more preferably 1.03 to 1.10. The molar ratio of the total of the active hydrogen-containing silane compound and monohydric alcohol to the NCO of the NCO-terminated prepolymer is preferably 0 to 0.5.

[0037] The monofunctional urethane (meth)acrylate according to this embodiment is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate. The monofunctional urethane (meth)acrylate is a component having one (meth)acryloyl group. Hereinafter, a urethane (meth)acrylate containing a monofunctional urethane (meth)acrylate as a main component may be referred to as "urethane (meth)acrylate (B)."

[0038] The monofunctional urethane (meth)acrylate (B1), which is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, can be represented by the following formula (2): In formula (2), A represents a residue of a hydroxyl group-containing (meth)acrylate, U represents a urethane bond, I represents a residue of a diisocyanate, and P1 represents a residue of a polyoxyalkylene monoalkyl ether. The monofunctional urethane (meth)acrylate (B1) has a (meth)acryloyl group derived from the hydroxyl group-containing (meth)acrylate and an alkoxy group derived from the polyoxyalkylene monoalkyl ether. AUIU-P1 (2)

[0039] Examples of methods for synthesizing the monofunctional urethane (meth)acrylate (B1) include a method of reacting a polyoxyalkylene monoalkyl ether with a diisocyanate, followed by a reaction with a hydroxyl group-containing (meth)acrylate; a method of reacting a diisocyanate with a hydroxyl group-containing (meth)acrylate, followed by a reaction with a polyoxyalkylene monoalkyl ether; and a method of simultaneously reacting a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate.

[0040] The monofunctional urethane (meth)acrylate (B2), which is a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate, can be represented by the following formula (3): In formula (3), AI represents a residue of the isocyanate group-containing (meth)acrylate, U represents a urethane bond, and P1 represents a residue of the polyoxyalkylene monoalkyl ether. The monofunctional urethane (meth)acrylate (B2) has a (meth)acryloyl group derived from the isocyanate group-containing (meth)acrylate and an alkoxy group derived from the polyoxyalkylene monoalkyl ether. AI-U-P1 (3)

[0041] The polyoxyalkylene monoalkyl ether is a compound having an oxyalkylene group, an alkoxy group, and a hydroxyl group. Examples of the polyoxyalkylene monoalkyl ether according to this embodiment include polyoxyethylene oleyl ether, polyoxyethylene lauryl ether, polyoxyethylene cetyl ether, polyoxyethylene stearyl ether, polyoxyethylene alkyl (C 12 ~C 14 ) ether, polyoxyethylene tridecyl ether, polyoxyethylene myristyl ether, polyoxyethylene isostearyl ether, polyoxyethylene octyldodecyl ether, polyoxyethylene cholesteryl ether, polyoxypropylene butyl ether, polyoxypropylene myristyl ether, polyoxypropylene cetyl ether, polyoxypropylene stearyl ether, polyoxypropylene lanolin alcohol ether, polyoxyethylene polyoxypropylene butyl ether, polyoxyethylene polyoxypropylene lauryl ether, polyoxyethylene polyoxypropylene cetyl ether, polyoxyethylene polyoxypropylene stearyl ether, and polyoxyethylene polyoxypropylene decyltetradecyl ether.

[0042] From the viewpoint of compatibility with the primary resin composition, the polyoxyalkylene monoalkyl ether is preferably polyoxypropylene monobutyl ether.

[0043] From the viewpoint of obtaining a Young's modulus suitable for the primary resin layer, the Mn of the polyoxyalkylene monoalkyl ether is preferably 2000 or more and 10000 or less, and may be 2100 or more or 2200 or more, and may be 8000 or less or 7000 or less.

[0044] The Mn of the diol and polyoxyalkylene monoalkyl ether can be calculated from the following formula by measuring the hydroxyl value in accordance with JIS K 0070. The diol has two functional groups, and the polyoxyalkylene monoalkyl ether has one functional group. Mn = 56.1 x number of functional groups x 1000 / hydroxyl value

[0045] Since this easily improves the breaking strength of the primary resin layer, the polyoxyalkylene monoalkyl ether may contain a high-molecular-weight component having a molecular weight of 50,000 or more and have an asymmetric molecular weight distribution with a tail on the high-molecular-weight side. Examples of such polyoxyalkylene monoalkyl ethers include "Acrobut MB-90" and "Acrobut MB-52" manufactured by NOF Corporation. The presence or absence of a high-molecular-weight component having a molecular weight of 50,000 or more can be confirmed by measurement using gel permeation chromatography (GPC). The molecular weight of the high-molecular-weight component may be 100,000 or more and 1,000,000 or less.

[0046] Examples of isocyanate group-containing (meth)acrylates include 2-acryloyloxyethyl isocyanate, 2-methacryloyloxyethyl isocyanate, 2-(2-isocyanatoethoxy)ethyl methacrylate, 1,1-(bisacryloyloxymethyl)ethyl isocyanate, and 1,1-(bismethacryloyloxymethyl)ethyl isocyanate. From the viewpoint of reactivity, 2-acryloyloxyethyl isocyanate is preferred.

[0047] An organic tin compound or an amine compound is used as a catalyst when synthesizing urethane (meth)acrylate. Examples of organic tin compounds include dibutyltin dilaurate, dibutyltin diacetate, dibutyltin maleate, dibutyltin bis(2-ethylhexyl mercaptoacetate), dibutyltin bis(isooctyl mercaptoacetate), and dibutyltin oxide. In terms of easy availability and catalytic performance, it is preferable to use dibutyltin dilaurate or dibutyltin diacetate as the catalyst.

[0048] From the viewpoint of obtaining a Young's modulus suitable for the primary resin layer, the Mn of the urethane (meth)acrylate (A) may be 6,000 or more and 50,000 or less, 8,000 or more and 45,000 or less, or 10,000 or more and 40,000 or less. The Mn of the urethane (meth)acrylate (B) may be 4,000 or more and 20,000 or less, 5,000 or more and 18,000 or less, or 6,000 or more and 15,000 or less. The Mn of the urethane (meth)acrylate can be measured by GPC.

[0049] From the viewpoint of adjusting the Young's modulus of the primary resin layer, the content of the urethane (meth)acrylate (A) is preferably 10 parts by mass or more and 70 parts by mass or less, more preferably 15 parts by mass or more and 65 parts by mass or less, and even more preferably 20 parts by mass or more and 60 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0050] From the viewpoint of adjusting the balance between Young's modulus and breaking strength of the primary resin layer, the content of the urethane (meth)acrylate (B) is preferably 10 parts by mass or more and 70 parts by mass or less, more preferably 15 parts by mass or more and 65 parts by mass or less, and even more preferably 20 parts by mass or more and 60 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0051] The total content of the urethane (meth)acrylate (A) and the urethane (meth)acrylate (B) may be 50 parts by mass or more and 90 parts by mass or less, 60 parts by mass or more and 90 parts by mass or less, or 65 parts by mass or more and 85 parts by mass or less, based on the total amount of the resin composition.

[0052] The photopolymerizable compound according to this embodiment may further contain a photopolymerizable compound (hereinafter referred to as "monomer") that does not have a urethane bond. Examples of the monomer include (meth)acrylic acid esters, N-vinyl compounds, and (meth)acrylamide compounds. The monomer may be a monofunctional monomer having one photopolymerizable ethylenically unsaturated group, or a polyfunctional monomer having two or more ethylenically unsaturated groups. Two or more types of monomers may be mixed and used.

[0053] Examples of monofunctional (meth)acrylic acid esters include methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, n-butyl (meth)acrylate, s-butyl (meth)acrylate, t-butyl (meth)acrylate, isobutyl (meth)acrylate, n-pentyl (meth)acrylate, isopentyl (meth)acrylate, hexyl (meth)acrylate, heptyl (meth)acrylate, isoamyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, n-octyl (meth)acrylate, isooctyl (meth)acrylate, isodecyl (meth)acrylate, lauryl (meth)acrylate, phenoxyethyl (meth)acrylate, tetrahydrofurfuryl (meth)acrylate, benzyl (meth)acrylate, cyclic trimethylolpropane formal acrylate, dicyclopentaerythritol, methylpropane ... thenyl (meth)acrylate, dicyclopentenyloxyethyl (meth)acrylate, dicyclopentanyl (meth)acrylate, nonylphenol polyethylene glycol (meth)acrylate, nonylphenoxy polyethylene glycol (meth)acrylate, isobornyl (meth)acrylate, 3-phenoxybenzyl (meth)acrylate, methylphenoxyethyl (meth)acrylate, phenoxydiethylene glycol (meth)acrylate, phenoxypolyethylene glycol (meth)acrylate, m-phenoxybenzyl (meth)acrylate, 2-(2-ethoxyethoxy)ethyl (meth)acrylate, 2-hydroxy-3-phenoxypropyl acrylate, carboxyethyl (meth)acrylate, carboxypentyl (meth)acrylate, and ω-carboxy-polycaprolactone (meth)acrylate.

[0054] Examples of polyfunctional (meth)acrylic acid esters include ethylene glycol di(meth)acrylate, polyethylene glycol di(meth)acrylate, polypropylene glycol di(meth)acrylate, neopentyl glycol di(meth)acrylate, tripropylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, cyclohexanedimethanol di(meth)acrylate, dipropylene glycol di(meth)acrylate, tetraethylene glycol di(meth)acrylate, hydroxypivalic acid neopentyl glycol di(meth)acrylate, 1,3-butylene glycol di(meth)acrylate, 1,4-butanediol di(meth)acrylate, diethylene glycol di(meth)acrylate, 1,6-hexanediol di(meth)acrylate, and 1,9-nonanediol di(meth)acrylate. bifunctional monomers such as 1,12-dodecanediol di(meth)acrylate, 1,14-tetradecanediol di(meth)acrylate, 1,16-hexadecanediol di(meth)acrylate, 1,20-eicosanediol di(meth)acrylate, isopentyldiol di(meth)acrylate, 3-ethyl-1,8-octanediol di(meth)acrylate, tricyclodecanol di(meth)acrylate, 9,9-bis[4-(2-hydroxyethoxy)phenyl]fluorene di(meth)acrylate, bisphenol A epoxy di(meth)acrylate, bisphenol F epoxy di(meth)acrylate, EO adduct di(meth)acrylate of bisphenol A, EO adduct di(meth)acrylate of bisphenol F, PO adduct di(meth)acrylate of bisphenol A, and PO adduct di(meth)acrylate of bisphenol F;Trimethylolpropane tri(meth)acrylate, trimethyloloctane tri(meth)acrylate, trimethylolpropane polyethoxytri(meth)acrylate, trimethylolpropane polypropoxytri(meth)acrylate, trimethylolpropane polyethoxypolypropoxytri(meth)acrylate, tris[(meth)acryloyloxyethyl]isocyanurate, pentaerythritol tri(meth)acrylate, pentaerythritol polyethoxytetra(meth)acrylate ) acrylate, pentaerythritol polypropoxy tetra(meth)acrylate, pentaerythritol tetra(meth)acrylate, ditrimethylolpropane tetra(meth)acrylate, dipentaerythritol tetra(meth)acrylate, dipentaerythritol penta(meth)acrylate, dipentaerythritol hexa(meth)acrylate, caprolactone-modified tris[(meth)acryloyloxyethyl]isocyanurate, and other tri- or higher functional monomers;

[0055] The photopolymerizable compound may contain a (meth)acrylic acid ester, which allows the Young's modulus of the resin layer to be adjusted. The content of the (meth)acrylic acid ester may be 1 part by mass or more and 50 parts by mass or less, 3 parts by mass or more and 45 parts by mass or less, or 5 parts by mass or more and 40 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0056] Examples of N-vinyl compounds include N-vinylpyrrolidone, N-vinylcaprolactam, N-vinylmethyloxazolidinone, N-vinylimidazole, and N-vinyl-N-methylacetamide.

[0057] The photopolymerizable compound may contain an N-vinyl compound, which can further improve the curing rate of the resin composition. The content of the N-vinyl compound may be 1 part by mass or more and 30 parts by mass or less, 2 parts by mass or more and 20 parts by mass or less, or 5 parts by mass or more and 15 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0058] Examples of the (meth)acrylamide compound include dimethyl(meth)acrylamide, diethyl(meth)acrylamide, (meth)acryloylmorpholine, hydroxymethyl(meth)acrylamide, hydroxyethyl(meth)acrylamide, isopropyl(meth)acrylamide, dimethylaminopropyl(meth)acrylamide, dimethylaminopropylacrylamide methyl chloride, diacetone acrylamide, (meth)acryloylpiperidine, (meth)acryloylpyrrolidine, (meth)acrylamide, N-hexyl(meth)acrylamide, N-methyl(meth)acrylamide, N-butyl(meth)acrylamide, N-methylol(meth)acrylamide, and N-methylolpropane(meth)acrylamide.

[0059] The photopolymerizable compound may contain a (meth)acrylamide compound, which can further improve the curing rate of the resin composition. The content of the (meth)acrylamide compound may be 1 part by mass or more and 30 parts by mass or less, 2 parts by mass or more and 20 parts by mass or less, or 3 parts by mass or more and 15 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0060] The photopolymerization initiator can be appropriately selected from known radical photopolymerization initiators. Examples of the photopolymerization initiator include 1-hydroxycyclohexyl phenyl ketone (Omnirad 184, manufactured by IGM Resins), 2,2-dimethoxy-2-phenylacetophenone (Omnirad 651, manufactured by IGM Resins), 2,4,6-trimethylbenzoyldiphenylphosphine oxide (Omnirad TPO, manufactured by IGM Resins), ethyl (2,4,6-trimethylbenzoyl)-phenylphosphinate (Omnirad TPO-L, manufactured by IGM Resins), 2-benzyl-2-dimethylamino-4'-morpholinobutyrophenone (Omnirad 369, manufactured by IGM Resins), 2-dimethylamino-2-(4-methyl-benzyl)-1-(4-morpholin-4-yl-phenyl)-butan-1-one (Omnirad 379, manufactured by IGM Resins), and the like. Examples of suitable amines include bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (Omnirad 819, IGM Resins), bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (Omnirad 819, IGM Resins), and 2-methyl-1-[4-(methylthio)phenyl]-2-morpholinopropan-1-one (Omnirad 907, IGM Resins).

[0061] Two or more types of photopolymerization initiators may be used in combination. The photopolymerization initiator preferably contains 2,4,6-trimethylbenzoyldiphenylphosphine oxide, as this provides an excellent rapid curing property for the resin composition.

[0062] The content of the photopolymerization initiator is preferably 0.2 parts by mass or more and 5 parts by mass or less, more preferably 0.3 parts by mass or more and 4 parts by mass or less, and even more preferably 0.4 parts by mass or more and 3 parts by mass or less, based on the total amount of the resin composition.

[0063] The resin composition according to this embodiment can achieve both a low Young's modulus and high breaking strength, and does not cause defects in the primary resin layer, so that a resin layer suitable for the primary coating of an optical fiber can be formed.

[0064] The resin composition according to this embodiment can be produced by the following steps: synthesizing a bifunctional urethane (meth)acrylate by reacting a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate; synthesizing a monofunctional urethane (meth)acrylate by reacting a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or by reacting a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate; and mixing a photopolymerizable compound containing the bifunctional urethane (meth)acrylate and the monofunctional urethane (meth)acrylate with a photopolymerization initiator to prepare a resin composition.

[0065] The resin composition according to this embodiment may further contain a photoacid generator, a silane coupling agent, a leveling agent, an antifoaming agent, an antioxidant, an ultraviolet absorber, and the like.

[0066] As a photoacid generator, + B - Examples of the photoacid generator include sulfonium salts such as CPI-100P, 101A, 110P, 200K, 210S, 310B, and 410S (manufactured by San-Apro Ltd.), and Omnicat 270 and 290 (manufactured by IGM Resins), and iodonium salts such as CPI-IK-1 (manufactured by San-Apro Ltd.), Omnicat 250 (manufactured by IGM Resins), and WPI-113, 116, 124, 169, and 170 (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.).

[0067] Examples of silane coupling agents include tetramethyl silicate, tetraethyl silicate, mercaptopropyltrimethoxysilane, vinyltrichlorosilane, vinyltriethoxysilane, vinyltris(β-methoxy-ethoxy)silane, β-(3,4-epoxycyclohexyl)-ethyltrimethoxysilane, dimethoxydimethylsilane, diethoxydimethylsilane, 3-(meth)acryloxypropyltrimethoxysilane, γ-glycidoxypropyltrimethoxysilane, γ-glycidoxypropylmethyldiethoxysilane, γ-methacryloxypropyltrimethoxysilane, N-(β-aminoethyl )-γ-aminopropyltrimethoxysilane, N-(β-aminoethyl)-γ-aminopropyltrimethyldimethoxysilane, N-phenyl-γ-aminopropyltrimethoxysilane, γ-chloropropyltrimethoxysilane, γ-mercaptopropyltrimethoxysilane, γ-aminopropyltrimethoxysilane, bis-[3-(triethoxysilyl)propyl]tetrasulfide, bis-[3-(triethoxysilyl)propyl]disulfide, γ-trimethoxysilylpropyldimethylthiocarbamyltetrasulfide, and γ-trimethoxysilylpropylbenzothiazyltetrasulfide.

[0068] From the viewpoint of coatability, the viscosity of the resin composition according to this embodiment at 25°C is preferably from 0.5 Pa·s to 20 Pa·s, more preferably from 0.8 Pa·s to 18 Pa·s, and even more preferably from 1 Pa·s to 15 Pa·s. The viscosity of the resin composition at 25°C can be measured using a Brookfield type viscometer ("Digital Viscometer DV-II" manufactured by Brookfield) with a spindle No. 18 and a rotation speed of 10 rpm.

[0069] (optical fiber) 1 is a schematic cross-sectional view showing an example of an optical fiber according to the present embodiment. The optical fiber 10 includes a glass fiber 13 including a core 11 and a cladding 12, and a coating resin layer 16 including a primary resin layer 14 and a secondary resin layer 15 provided on the outer periphery of the glass fiber 13.

[0070] The cladding 12 surrounds the core 11. The core 11 and the cladding 12 mainly contain glass such as silica glass, and for example, the core 11 can be made of germanium-doped silica glass or pure silica glass, and the cladding 12 can be made of pure silica glass or fluorine-doped silica glass.

[0071] 1, for example, the outer diameter (D2) of the glass fiber 13 is about 100 μm to 125 μm, and the diameter (D1) of the core 11 constituting the glass fiber 13 is about 7 μm to 15 μm. The thickness of the coating resin layer 16 is usually about 22 μm to 70 μm. The thickness of each of the primary resin layer 14 and the secondary resin layer 15 may be about 5 μm to 50 μm.

[0072] When the outer diameter of the glass fiber 13 is about 125 μm and the thickness of the coating resin layer 16 is 60 μm to 70 μm, the thickness of each of the primary resin layer 14 and the secondary resin layer 15 may be about 10 μm to 50 μm, for example, the thickness of the primary resin layer 14 may be 35 μm and the thickness of the secondary resin layer 15 may be 25 μm. The outer diameter of the optical fiber 10 may be about 245 μm to 265 μm.

[0073] When the outer diameter of the glass fiber 13 is about 125 μm and the thickness of the coating resin layer 16 is 20 μm or more and 48 μm or less, the thickness of each of the primary resin layer 14 and the secondary resin layer 15 may be about 8 μm to 38 μm, for example, the thickness of the primary resin layer 14 may be 25 μm and the thickness of the secondary resin layer 15 may be 10 μm. The outer diameter of the optical fiber 10 may be about 165 μm to 221 μm.

[0074] When the outer diameter of the glass fiber 13 is about 100 μm and the thickness of the coating resin layer 16 is 22 μm or more and 37 μm or less, the thickness of each of the primary resin layer 14 and the secondary resin layer 15 may be about 5 μm to 32 μm, for example, the thickness of the primary resin layer 14 may be 25 μm and the thickness of the secondary resin layer 15 may be 10 μm. The outer diameter of the optical fiber 10 may be about 144 μm to 174 μm.

[0075] By applying the resin composition of this embodiment to the primary resin layer, the outer diameter of the optical fiber can be made small, to 220 μm or less, and an optical fiber with excellent microbending resistance and low-temperature properties can be produced.

[0076] The method for manufacturing an optical fiber according to the present embodiment includes a coating step of coating the resin composition on the outer periphery of a glass fiber including a core and a cladding, and a curing step of curing the resin composition by irradiating it with ultraviolet light after the coating step. By forming a resin layer using the resin composition according to the present embodiment, an optical fiber having excellent microbending resistance and low-temperature properties can be manufactured.

[0077] From the viewpoint of improving the microbending resistance of the optical fiber, the Young's modulus of the primary resin layer is preferably 0.8 MPa or less, and more preferably 0.5 MPa or less, at 23° C.±2° C. If the Young's modulus of the primary resin layer exceeds 0.8 MPa, external forces are more likely to be transmitted to the glass fiber, which may result in a significant increase in transmission loss due to microbending.

[0078] The Young's modulus of the primary resin layer can be measured by the Pullout Modulus (POM) method at 23°C. Two points of the optical fiber are fixed with two chuck devices, and the coating resin layer (primary resin layer and secondary resin layer) between the two chuck devices is removed. Next, one chuck device is fixed, and the other chuck device is slowly moved in the opposite direction of the fixed chuck device. When the length of the portion of the optical fiber sandwiched between the moving chuck devices is L, the amount of chuck movement is Z, the outer diameter of the primary resin layer is Dp, the outer diameter of the glass fiber is Df, the Poisson's ratio of the primary resin layer is n, and the load during movement of the chuck device is W, the Young's modulus of the primary resin layer can be calculated using the following formula: Young's modulus (MPa) = ((1 + n)W / πLZ) × ln(Dp / Df)

[0079] The secondary resin layer 15 can be formed by curing a resin composition containing, for example, a photopolymerizable compound including urethane (meth)acrylate, a photopolymerization initiator, etc. The resin composition forming the secondary resin layer has a different composition from the resin composition for the primary coating. The resin composition for the secondary coating can be prepared using a conventionally known technique.

[0080] From the viewpoint of improving the microbending resistance of the optical fiber, the Young's modulus of the secondary resin layer is preferably 800 MPa or more, more preferably 1000 MPa or more, and even more preferably 1200 MPa or more at 23° C.±2° C. The upper limit of the Young's modulus of the secondary resin layer is not particularly limited, but from the viewpoint of imparting appropriate toughness to the secondary resin layer, it may be 3000 MPa or less, 2500 MPa or less, or 2000 MPa or less at 23° C.±2° C.

[0081] The Young's modulus of the secondary resin layer can be measured using the following method. First, the optical fiber is immersed in a mixed solvent of acetone and ethanol, and only the coating resin layer is extracted into a cylindrical shape. At this point, the primary and secondary resin layers are integrated, but the Young's modulus of the primary resin layer is between 1 / 1000 and 1 / 10,000 of that of the secondary resin layer, so the Young's modulus of the primary resin layer can be ignored. Next, the solvent is removed from the coating resin layer by vacuum drying, and then a tensile test is performed at 23°C (tensile speed: 1 mm / min). The Young's modulus can be determined using the secant equation with a 2.5% strain.

[0082] The method for manufacturing an optical fiber according to this embodiment uses the resin composition according to this embodiment as the resin composition for the primary coating, thereby making it possible to manufacture an optical fiber having excellent microbending resistance and low-temperature properties, and capable of forming an optical fiber with a small outer diameter of 220 μm or less.

[0083] (optical fiber ribbon) The optical fiber according to this embodiment can be used to fabricate an optical fiber ribbon, which is formed by arranging a plurality of the optical fibers in parallel and coating them with a ribbon resin.

[0084] Fig. 2 is a schematic cross-sectional view showing an optical fiber ribbon according to one embodiment. The optical fiber ribbon 100 has a plurality of optical fibers 10 and a connecting resin layer 40 in which the optical fibers 10 are (integrally) coated with a ribbon resin and connected. In Fig. 2, four optical fibers 10 are shown as an example, but the number is not particularly limited.

[0085] The optical fibers 10 may be integrated in a state where they are arranged in parallel and in contact with each other, or some or all of the optical fibers 10 may be integrated in a state where they are arranged in parallel at regular intervals. The center-to-center distance F between adjacent optical fibers 10 may be 220 μm or more and 280 μm or less. When the center-to-center distance is 220 μm or more and 280 μm or less, the optical fibers can be easily placed in existing V-grooves, and an optical fiber ribbon with excellent bulk fusion splicing properties can be obtained. The thickness T of the optical fiber ribbon 100 may be 164 μm or more and 285 μm or less, depending on the outer diameter of the optical fibers 10.

[0086] Fig. 3 is a schematic cross-sectional view showing an example of an optical fiber ribbon in which optical fibers are integrated in a state in which they are arranged in parallel at a fixed interval. The optical fiber ribbon 100A shown in Fig. 3 is formed by connecting 12 optical fibers 10, each consisting of two optical fibers 10, at a fixed interval using a ribbon resin. The ribbon resin forms a connecting resin layer 40.

[0087] The ribbon resin may be a resin material generally known as a ribbon material. From the viewpoint of preventing damage to the optical fiber 10 and facilitating its severability, the ribbon resin may contain a thermosetting resin such as a silicone resin, an epoxy resin, or a urethane resin, or an ultraviolet-curing resin such as an epoxy acrylate, a urethane acrylate, or a polyester acrylate.

[0088] When the optical fibers 10 are arranged in parallel at regular intervals, i.e., when adjacent optical fibers 10 are joined via ribbon resin without touching each other, the thickness of the connecting portion at the center of the optical fibers 10 may be 150 μm or more and 220 μm or less. Because the optical fiber ribbon is prone to deformation when being stored in a cable, the optical fiber ribbon may have a recess at the connecting portion of the optical fibers. The recess may be formed in a triangular shape with a narrowing angle on one side of the connecting portion.

[0089] The optical fiber ribbon according to this embodiment may have connecting portions and non-connecting portions intermittently in the longitudinal and width directions. FIG. 4 is a plan view showing the appearance of an optical fiber ribbon according to one embodiment. The optical fiber ribbon 100B has a plurality of optical fibers, a plurality of connecting portions 20, and non-connecting portions (separated portions) 21. The non-connecting portions 21 are formed intermittently in the longitudinal direction of the optical fiber ribbon. The optical fiber ribbon 100B is an intermittently connected optical fiber ribbon in which connecting portions 20 and non-connecting portions 21 are provided intermittently in the longitudinal direction for every two optical fibers 10A. A "connecting portion" refers to a portion where adjacent optical fibers are integrated via a connecting resin layer, and a "non-connecting portion" refers to a portion where adjacent optical fibers are not integrated via a connecting resin layer and there is a gap between the optical fibers.

[0090] In the optical fiber ribbon having the above configuration, non-connecting portions 21 are intermittently provided at the connecting portions 20 provided every two fibers, making the optical fiber ribbon easily deformable. Therefore, when mounting the optical fiber ribbon on an optical fiber cable, the optical fiber ribbon can be easily rolled up and mounted, making it suitable for high-density mounting. In addition, since the connecting portions 20 can be easily torn starting from the non-connecting portions 21, it becomes easy to separate the optical fibers 10 from the optical fiber ribbon into individual fibers.

[0091] The optical fiber ribbon according to this embodiment uses the above optical fiber, and therefore has excellent microbending resistance and low-temperature characteristics, and can be packed into an optical fiber cable at high density.

[0092] (optical fiber cable) The optical fiber cable according to this embodiment has the optical fiber ribbon housed within the cable. An example of the optical fiber cable is a slotted optical fiber cable having a plurality of slot grooves. The optical fiber ribbons can be mounted within the slot grooves at a mounting density of approximately 25% to 65% in each slot groove. The mounting density refers to the ratio of the cross-sectional area of ​​the optical fiber ribbon mounted within the slot groove to the cross-sectional area of ​​the slot groove. The optical fiber cable according to this embodiment may have the optical fibers housed within the cable without being coated with a ribbon resin.

[0093] An example of an optical fiber cable according to this embodiment will be described with reference to Figures 5 and 6. In Figures 5 and 6, an intermittently connected optical fiber ribbon is stored, but a bundle of optical fibers that are not coated with a ribbon resin may also be stored.

[0094] FIG. 5 is a schematic cross-sectional view of a slotless optical fiber cable 60 using the intermittently connected optical fiber ribbons 100B described above. The optical fiber cable 60 includes a cylindrical tube 61 and multiple optical fiber ribbons 100B. The multiple optical fiber ribbons 100B may be bundled together using fillers 62 such as aramid fibers. Each of the multiple optical fiber ribbons 100B may have different markings. The optical fiber cable 60 is formed by twisting multiple bundled optical fiber ribbons 100B together, extruding a resin to form a tube 61 around the bundle, and then covering the tube with a tension member 63 and an outer jacket 64. If waterproofing is required, a water-absorbing yarn may be inserted inside the tube 61. The tube 61 may be formed using a resin such as polybutylene terephthalate or high-density polyethylene. A tear cord 65 may be provided on the outside of the tube 61.

[0095] FIG. 6 is a schematic cross-sectional view of a slotted optical fiber cable 70 using the intermittently connected optical fiber ribbons 100B described above. The optical fiber cable 70 includes a slotted rod 72 having a plurality of slot grooves 71 and a plurality of optical fiber ribbons 100B. The optical fiber cable 70 has a structure in which a plurality of slot grooves 71 are radially formed in a slotted rod 72 having a tension member 73 at its center. The plurality of slot grooves 71 may be formed in a spiral or SZ twisted shape in the longitudinal direction of the optical fiber cable 70. Each slot groove 71 houses a plurality of optical fiber ribbons 100B that have been unwound from a parallel state and placed in a dense state. The optical fiber ribbons 100B may be bundled with an identification bundling material. A pressure winding tape 74 is wound around the slotted rod 72, and an outer jacket 75 is formed around the pressure winding tape 74.

[0096] An optical fiber cable including the optical fiber or optical fiber ribbon according to this embodiment has excellent microbending resistance and low-temperature properties. [Example]

[0097] The present disclosure will be described in more detail below by showing the results of evaluation tests using examples and comparative examples according to the present disclosure. Note that the present disclosure is not limited to these examples.

[0098] [Synthesis of urethane acrylate (A)] Urethane acrylate (A) containing a bifunctional urethane acrylate as a main component was synthesized by the following procedure.

[0099] (A-1) Polypropylene glycol (Sanyo Chemical Industries, Ltd., trade name "Sannyx PP-3000") with an Mn of 3000 and 2,4-tolylene diisocyanate (TDI) were reacted at 60°C for 1 hour at an NCO / OH molar ratio of 1.5 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at 200 ppm relative to the final total charge. Next, 2-hydroxyethyl acrylate (HEA) was added to the NCO-terminated prepolymer so that the NCO / OH molar ratio was 1.05. The reaction was continued at 60°C for 1 hour to obtain urethane acrylate (A-1) with an Mn of 11300.

[0100] (A-2) Polypropylene glycol (manufactured by AGC Corporation under the trade name "PREMINOL S4013F") with an Mn of 12,000 and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, HEA was added so that the molar ratio of OH in HEA to NCO in the NCO-terminated prepolymer was 1.05, and the reaction was continued at 60°C for 1 hour to obtain urethane acrylate (A-2) with an Mn of 24,500.

[0101] (A-3) Polypropylene glycol (manufactured by AGC Corporation under the trade name "PREMINOL S4318F") with an Mn of 18,000 was reacted with TDI at an NCO / OH ratio of 2.0 for 1 hour at 60°C to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, HEA was added so that the molar ratio of OH in HEA to NCO in the NCO-terminated prepolymer was 1.05, and the reaction was continued at 60°C for 1 hour to obtain urethane acrylate (A-3) with an Mn of 36,700.

[0102] (A-4) PREMINOL S4318F and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, 3-mercaptopropyltrimethoxysilane (MPTS) was added to the NCO-terminated prepolymer so that the SH molar ratio was 0.2, and HEA was added to the NCO-terminated prepolymer so that the OH molar ratio was 0.85. The reaction was continued at 60°C for 1 hour to obtain a urethane acrylate (A-4) with an Mn of 36,800.

[0103] (Y-1) PP-3000 and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 1.5 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, methanol was added to the NCO-terminated prepolymer so that the molar ratio of NCO to OH was 0.4, and HEA was added to the NCO-terminated prepolymer so that the molar ratio of OH was 0.65. The mixture was reacted at 60°C for 1 hour to obtain a urethane acrylate (Y-1) with an Mn of 11200.

[0104] (Z-1) Polypropylene glycol (manufactured by Sanyo Chemical Industries, Ltd. under the trade name "PP-600") with Mn 600 was reacted with TDI at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, HEA was added to the NCO-terminated prepolymer so that the NCO / OH molar ratio was 1.05, and the mixture was allowed to react at 60°C for 1 hour to obtain urethane acrylate (Z-1) with Mn 2200.

[0105] [Synthesis of urethane acrylate (B)] Urethane acrylate (B) containing a monofunctional urethane acrylate as a main component was synthesized by the following procedure.

[0106] (B-1) Polyoxypropylene monobutyl ether (trade name "UNILUBE MB-370" manufactured by NOF Corporation) with an Mn of 2300 was reacted with TDI at an NCO / OH ratio of 2.0 for 1 hour at 60°C to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, 2-hydroxyethyl acrylate (HEA) was added so that the molar ratio of OH of HEA to NCO of the NCO-terminated prepolymer was 1.05, and the reaction was continued at 60°C for 1 hour to obtain urethane acrylate (B-1) with an Mn of 6200.

[0107] (B-2) Polyoxypropylene monobutyl ether (manufactured by Sanyo Chemical Industries, Ltd. under the trade name "Newpol LB3000") with Mn 3070 was reacted with TDI at an NCO / OH ratio of 2.0 for 1 hour at 60°C to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, 2-hydroxyethyl acrylate (HEA) was added so that the molar ratio of OH of HEA to NCO of the NCO-terminated prepolymer was 1.05, and the reaction was continued at 60°C for 1 hour to obtain urethane acrylate (B-2) with Mn 8900.

[0108] (B-3) Polyoxypropylene monobutyl ether (NOF Corporation, trade name "Acrobute MB-90") with an Mn of 5000 was reacted with 2,4-tolylene diisocyanate (TDI) at an NCO / OH molar ratio of 2.0 for 1 hour at 60°C to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at 200 ppm based on the final total charge. Next, HEA was added to the NCO-terminated prepolymer so that the NCO / OH molar ratio was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain urethane acrylate (B-3) with an Mn of 10,000.

[0109] (B-4) Acrobute MB-90 and 2-acryloyloxyethyl isocyanate (trade name "Karenz AOI" manufactured by Showa Denko K.K.) were reacted at 60°C for 1 hour at an NCO / OH ratio of 1.0 to obtain a urethane acrylate (B-4) with an Mn of 8500. Dibutyltin dilaurate was added in an amount of 200 ppm based on the final total amount charged.

[0110] The Mn values ​​for polypropylene glycol and polyoxypropylene butyl monoether were calculated from the hydroxyl value and were listed in the product catalogs. The Mn values ​​for urethane acrylate were measured using a Waters ACQUITY APC RI system under the following conditions: sample concentration: 0.2% by mass in THF solution, injection volume: 20 μL, sample temperature: 15°C, mobile phase: THF, XT column for organic solvents: particle size 2.5 μm, pore size 450 Å, column internal diameter 4.6 × column length 150 mm + particle size 2.5 μm, pore size 125 Å, column internal diameter 4.6 × column length 150 mm + particle size 1.7 μm, pore size 45 Å, column internal diameter 4.6 × column length 150 mm, column temperature: 40°C, flow rate: 0.8 mL / min.

[0111] The monomers used were nonylphenol polyethylene glycol acrylate (manufactured by Toagosei Co., Ltd. under the trade name "Aronix M-113"), isobornyl acrylate (IBXA), N-vinylcaprolactam (NVCL), acryloylmorpholine (ACMO), bisphenol A epoxy di(meth)acrylate (manufactured by Osaka Organic Chemical Industry Co., Ltd. under the trade name "Viscoat #540"), and tripropylene glycol diacrylate (TPGDA). The photopolymerization initiators used were 2,4,6-trimethylbenzoyldiphenylphosphine oxide (Omnirad TPO) and 1-hydroxycyclohexyl phenyl ketone (Omnirad 184). The silane coupling agent used was 3-acryloxypropyltrimethoxysilane (APTMS).

[0112] [Resin composition for primary coating] Resin compositions for primary coatings in each test example were prepared by mixing a photopolymerizable compound, a photopolymerization initiator, and a silane coupling agent in the amounts (parts by mass) shown in Table 1 or Table 2. Test examples 1 to 9 correspond to working examples, and test examples 10 to 14 correspond to comparative examples.

[0113] (viscosity) The viscosity of the resin composition at 25° C. was measured using a Brookfield type viscometer (Digital Viscometer DV-II manufactured by Brookfield) with a spindle No. 18 and a rotation speed of 10 rpm.

[0114] [Resin film] The resin composition was applied onto a polyethylene terephthalate (PET) film using a spin coater, and then irradiated with 10 mJ / cm using an electrodeless UV lamp system (D bulb, manufactured by Heraeus). 2 and 100mW / cm 2 The resin composition was cured under the conditions of (A) to (C) to form a resin film having a thickness of 200 μm on the PET film. The resin film was obtained by peeling it off from the PET film. In Test Example 14, the resin composition did not contain the urethane acrylate (A), so a resin film could not be produced.

[0115] (Young's modulus) The resin film was punched into a dumbbell shape according to JIS K 7127 Type 5 and stretched using a tensile tester at 23±2°C and 50±10% RH at a tension rate of 1 mm / min with a gauge length of 25 mm to obtain a stress-strain curve. The Young's modulus of the resin film was calculated by dividing the stress calculated using the secant equation at 2.5% strain by the cross-sectional area of ​​the resin film.

[0116] (Breaking strength and breaking elongation) The resin film was punched into a dumbbell shape according to JIS K 7127 Type 5 and stretched using a tensile tester at 23±2°C and 50±10% RH at a tension rate of 50 mm / min with a gauge length of 25 mm to obtain a stress-strain curve. The stress at break was calculated by dividing the cross-sectional area of ​​the resin film, and the elongation at break was calculated by dividing the displacement at break by the gauge length.

[0117] [Resin composition for secondary coating] A resin composition for secondary coating was obtained by mixing 25 parts by mass of urethane acrylate (Z-1), 36 parts by mass of TPGTA, 37 parts by mass of Viscoat #540, 1 part by mass of Omnirad TPO, and 1 part by mass of Omnirad 184.

[0118] [Optical fiber] A resin composition for primary coating and a resin composition for secondary coating were each applied to the outer peripheral surface of a glass fiber 13 having a diameter of 125 μm. Next, each resin composition was cured by irradiating with ultraviolet light to form a coating resin layer 16 including a primary resin layer 14 and a secondary resin layer 15, thereby producing an optical fiber 10. The thickness of the primary resin layer 14 was 20 μm, and the thickness of the secondary resin layer 15 was 15 μm, thereby obtaining an optical fiber having an outer diameter of 195 μm. In Test Example 14, the resin composition for primary coating did not contain urethane acrylate (A), so an optical fiber could not be produced.

[0119] (Microbend resistance) The transmission loss of light with a wavelength of 1550 nm when the optical fiber 10 was wound in a single layer around a 280 mm diameter bobbin covered with sandpaper was measured using an OTDR (Optical Time Domain Reflectometer) method. In addition, when the optical fiber 10 was wound in a single layer around a 280 mm diameter bobbin without sandpaper, the difference in transmission loss of light with a wavelength of 1550 nm was evaluated as "A" if it was less than 0.5 dB / km, "B" if it was 0.5 dB / km or more and 1.0 dB / km or less, and "C" if it was more than 1.0 dB / km.

[0120] (Low temperature characteristics) The optical fiber was wound in one layer around a glass bobbin with a tension of 50g, and the transmission characteristics of signal light with a wavelength of 1550nm were measured at temperatures of 23°C and -40°C, and the transmission loss was calculated at 23°C and -40°C. If the difference in transmission loss, calculated by subtracting the transmission loss at 23°C from the transmission loss at -40°C, was less than 0dB, it was evaluated as "A," if it was 0dB or more and 0.01dB / km or less, it was evaluated as "B," and if it was more than 0.01dB / km, it was evaluated as "C."

[0121] [Table 1]

[0122] [Table 2] [Explanation of symbols]

[0123] 10 Optical Fiber 11 cores 12 Clad 13 Glass fiber 14 Primary resin layer 15 Secondary resin layer 16 Coating resin layer 20 Connection part 21 Unconnected part 40 Connecting resin layer 60,70 fiber optic cable 61 Cylindrical tube 62 Intervention 63,73 Tension members 64,75 outer covering 65 Tear cord 71 Slot groove 72 Slot Rod 74 Press-up tape 100, 100A, 100B optical fiber ribbon

Claims

1. A photopolymerizable compound containing a bifunctional urethane (meth)acrylate and a monofunctional urethane (meth)acrylate, and a photopolymerization initiator, the bifunctional urethane (meth)acrylate is a reaction product of a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate; A resin composition for primary coating of an optical fiber, wherein the monofunctional urethane (meth)acrylate is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate.

2. The resin composition according to claim 1, wherein the diol has a number average molecular weight of 2,500 or more and 20,000 or less.

3. The resin composition according to claim 1, wherein the diol has a number average molecular weight of 6,000 or more and 20,000 or less.

4. The resin composition according to claim 1 , wherein the diol is polypropylene glycol.

5. The resin composition according to any one of claims 1 to 4, wherein the polyoxyalkylene monoalkyl ether has a number average molecular weight of 2,000 or more and 10,000 or less.

6. The resin composition according to any one of claims 1 to 5, wherein the polyoxyalkylene monoalkyl ether is polyoxypropylene monobutyl ether.

7. 7. The resin composition according to claim 1, wherein the content of the monofunctional urethane (meth)acrylate is 10 parts by mass or more and 70 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

8. The resin composition according to any one of claims 1 to 7, wherein the photopolymerizable compound further contains an N-vinyl compound.

9. a step of synthesizing a bifunctional urethane (meth)acrylate by reacting a diol, a diisocyanate, and a hydroxyl group-containing (meth)acrylate; a step of synthesizing a monofunctional urethane (meth)acrylate by reacting a polyoxyalkylene monoalkyl ether with a diisocyanate and a hydroxyl group-containing (meth)acrylate, or by reacting a polyoxyalkylene monoalkyl ether with an isocyanate group-containing (meth)acrylate; a step of mixing a photopolymerizable compound containing the bifunctional urethane (meth)acrylate and the monofunctional urethane (meth)acrylate with a photopolymerization initiator to prepare a resin composition; The method for producing the resin composition according to claim 1 , comprising:

10. a glass fiber comprising a core and a cladding; a primary resin layer that contacts the glass fiber and covers the glass fiber; a secondary resin layer that covers the primary resin layer, An optical fiber, wherein the primary resin layer comprises a cured product of the resin composition according to claim 1 .

11. a coating step of coating the resin composition according to any one of claims 1 to 8 on an outer periphery of a glass fiber including a core and a clad; a curing step of curing the resin composition by irradiating it with ultraviolet light after the coating step; A method for manufacturing an optical fiber, comprising:

12. An optical fiber ribbon comprising a plurality of the optical fibers according to claim 10 arranged in parallel and coated with a ribbon resin.

13. An optical fiber cable, wherein the optical fiber ribbon according to claim 12 is housed within the cable.

14. An optical fiber cable, comprising a plurality of optical fibers according to claim 10 housed within the cable.

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