Thermoplastic resin and optical member containing same

By incorporating oligomers with a number average molecular weight less than 1,500 into a thermoplastic resin with a specific repeating unit, the resin's fluidity and refractive index are enhanced, addressing molding issues and coloration challenges in optical lenses.

JP7810552B2Active Publication Date: 2026-02-03TEIJIN LTD
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Patent Information

Application Number
JP2021533920
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-07-30
Filing Date
2020-07-07
Publication Date
2026-02-03
Estimated Expiration
2040-07-07

AI Technical Summary

Technical Problem

Existing thermoplastic resins used in optical lenses have high refractive indices but are less fluid during molding, leading to residual stress and distortion, and materials with introduced aryl groups may be strongly colored, making them unsuitable for optical components.

Method used

Incorporating a specific amount of oligomers with a number average molecular weight less than 1,500 into a thermoplastic resin containing a repeating unit represented by a certain formula, which enhances fluidity and maintains high refractive index while minimizing coloration.

Benefits of technology

The resin achieves higher fluidity, reducing distortion due to residual stress, and maintains a suitable hue for optical components with a refractive index of 1.640 to 1.740, providing excellent moldability and mechanical properties.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] The purpose of the present invention is to provide a thermoplastic resin that achieves a balance between high refractive index and high fluidity. [Solution] This thermoplastic resin contains a repeating unit represented by formula (1) and has a refractive index of 1.640-1.740 at a wavelength of 589 nm. Formula (1) (In the formula, R1 and R2 each independently denote a hydrogen atom, a halogen atom or a C1-14 hydrocarbon group that may include an aromatic ring; L1 and L2 each independently denote a divalent linking group; j and k each independently denote an integer of 0 or more; m and n each independently denote 0 or 1; W is at least one type selected from among the group represented by formula (2) or formula (3).) Formulae (2) and (3) (In the formulae, X denotes a divalent linking group.)
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Description

[Technical Field]

[0001] The present invention relates to a thermoplastic resin and an optical member containing the same, particularly an imaging lens. [Background technology]

[0002] Plastic imaging lenses are increasingly being used rather than glass for small camera module devices such as smartphones, because they can be made thinner, have more complex aspherical shapes, and can be mass-produced at low cost.

[0003] Various resins have been developed as alternatives to glass for lenses, and various compounds have been investigated as raw material monomers. While bisphenol A was previously the mainstream, resins using monomers with fluorene skeletons, such as 9,9-bis(4-(2-hydroxyethoxy)phenyl)fluorene (BPEF), have been developed (Patent Document 1). In recent years, thermoplastic resin materials, such as polycarbonates and polyesters, made from alcohols with binaphthalene skeletons, such as 2,2'-bis(2-hydroxyethoxy)-1,1'-binaphthalene (sometimes abbreviated as BHEB), have been used in optical components such as optical lenses and optical sheets due to their excellent optical properties, heat resistance, and moldability. For example, Patent Document 2 discloses that polycarbonate made from BHEB has a refractive index of 1.668. Future technological innovations will require the creation of materials with even higher refractive indices. These resins have a high refractive index and are useful as optical materials, but the rigidity of the monomer molecular structure makes them less fluid during molding, which can lead to residual stress and distortion after molding. Therefore, there is a demand for thermoplastic resins with high fluidity that are useful as optical lens materials.

[0004] Furthermore, cross-coupling technology for introducing aryl groups into molecular structures has been applied to the development of high refractive index materials for use in optical components. Patent Document 3 reports a polycarbonate made from BHEB with aryl groups introduced, and Patent Document 4 reports a thermoplastic resin made from 9,9-bis[4-(2-hydroxyethoxy)phenyl]fluorene with aryl groups introduced. These have achieved a refractive index higher than that of conventional materials, but there is still room for further research to achieve a higher refractive index. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 2011 / 010741 [Patent Document 2] International Publication No. 2014 / 073496 [Patent Document 3] International Publication No. 2019 / 044875 [Patent Document 4] International Publication No. 2019 / 044214 Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present invention is to provide a thermoplastic resin that is useful as an optical lens material and has excellent flowability.

[0007] Furthermore, although materials into which aryl groups have been introduced using cross-coupling techniques have a high refractive index, they may be strongly colored and may be unsuitable for use as optical components. Therefore, an object of the present invention is to provide a thermoplastic resin made from an alcohol raw material having a binaphthalene skeleton, which has a refractive index higher than conventional materials and a hue suitable for use as optical components, and an optical lens containing the same. [Means for solving the problem]

[0008] As a result of extensive research, the present inventors have found that by including a certain amount of oligomer in a thermoplastic resin, a thermoplastic resin having higher fluidity can be obtained compared to a case where the certain amount of oligomer is not included. [1] A thermoplastic resin containing a repeating unit represented by the following formula (1), having a refractive index of 1.640 or more and 1.740 or less at a wavelength of 589 nm:

[0009] [ka]

[0010] (In the formula, R 1 and R 2 each independently represents a hydrocarbon group having 1 to 14 carbon atoms which may contain a hydrogen atom, a halogen atom, or an aromatic group; L 1 and L 2 each independently represents a divalent linking group, j and k each independently represents an integer of 0 or greater, m and n each independently represents 0 or 1, and W is at least one selected from the group represented by the following formula (2) or (3):

[0011] [ka]

[0012] [ka]

[0013] (In the formula, X represents a divalent linking group.) [2] 2. The thermoplastic resin according to item 1 above, wherein the repeating unit represented by formula (1) accounts for 10 mol% or more and the content of oligomers having a number average molecular weight of less than 1,500 is 1.0 mass% or more. [3] 3. The thermoplastic resin according to item 1 or 2 above, wherein the repeating unit represented by formula (1) accounts for 30 mol % or more and 90 mol % or less. [4] R in the formula (1) 1 and R 2 4. The thermoplastic resin according to any one of items 1 to 3 above, wherein is a hydrogen atom, a phenyl group, a naphthyl group, or a thienyl group. [5] 5. The thermoplastic resin according to any one of items 1 to 4 above, wherein the formula (1) is represented by the following formula (1-a) or (1-b):

[0014] [ka]

[0015] (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

[0016] [ka]

[0017] (In the formula, R 1 and R 2 , L 1 and L 2 , j and k, m and n, and W are the same as those in the formula (1), and R 3 , R 4 are R 1 , R 2 is the same as [6] 6. The thermoplastic resin according to any one of items 1 to 5 above, which contains a repeating unit represented by the following formula (4):

[0018] [ka]

[0019] (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2 , L 1 and L 2 , j and k, m and n, and W are the same as those in the formula (1). [7] 7. The thermoplastic resin according to any one of items 1 to 6 above, wherein the content of oligomers having a number average molecular weight of less than 1,500 is 15% by mass or less. [8] 8. The thermoplastic resin according to any one of items 1 to 7 above, which has a viscosity of 20 (Pa·s) or more and 120 (Pa·s) or less at 260°C and a shear rate of 9,120 (1 / s). [9] 9. The thermoplastic resin according to any one of items 1 to 8, which has a viscosity of 100 (Pa·s) or more and 1,200 (Pa·s) or less at 260°C and a shear rate of 61 (1 / s).

[10] The thermoplastic resin according to item 1 above, wherein a solution of the thermoplastic resin dissolved in methylene chloride at a concentration of 13% by mass (a solution obtained by dissolving 1.0 g of the thermoplastic resin in 5 ml of methylene chloride) has a b* value of 30.0 or less in the CIE 1976 (L*a*b*) color system, and a refractive index at a wavelength of 589 nm of 1.670 or more and 1.740 or less.

[11] 11. The thermoplastic resin according to item 10 above, which contains 20 mol % or more of repeating units represented by formula (1).

[12] R in the formula (1) 1 and R 2 12. The thermoplastic resin according to item 10 or 11 above, wherein any one of the groups is a hydrocarbon group having 1 to 14 carbon atoms which may contain a halogen atom or an aromatic group.

[13] 13. The thermoplastic resin according to any one of items 10 to 12 above, wherein the formula (1) is represented by the following formula (1-a):

[0020] [ka]

[0021] (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

[14] 13. The thermoplastic resin according to any one of items 10 to 12 above, wherein the formula (1) is represented by the following formula (1-c):

[0022] [ka]

[0023] (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

[15] R in the formula (1) 1 and R 2 15. The thermoplastic resin according to any one of items 10 to 14 above, wherein each of the is independently a phenyl group, a naphthyl group, or a thienyl group.

[16] R in the formula (1) 1 and R 2 15. The thermoplastic resin according to any one of items 10 to 14 above, wherein each of the is independently a phenyl group or a naphthyl group.

[17] 17. The thermoplastic resin according to any one of items 10 to 16 above, which contains a repeating unit represented by the following formula (5):

[0024] [ka]

[0025] (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2 represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2L each independently represents a hydrogen atom, a halogen atom, or a hydrocarbon group having 1 to 14 carbon atoms which may contain an aromatic group. 1 and L 2 each independently represents a divalent linking group, j and k each independently represents an integer of 1 or more, m and n each independently represents 0 or 1, and W is the same as in formula (1).

[18] 18. The thermoplastic resin according to any one of items 1 to 17 above, wherein the thermoplastic resin has a specific viscosity of 0.12 to 0.40.

[19] 19. The thermoplastic resin according to any one of items 1 to 18 above, wherein the thermoplastic resin has a glass transition temperature of 130 to 170°C.

[20] 20. The thermoplastic resin according to any one of items 1 to 19 above, wherein the thermoplastic resin is a polyester, a polyester carbonate, or a polycarbonate. [twenty one] 20. The thermoplastic resin according to any one of items 1 to 19 above, wherein the thermoplastic resin is a polyester or a polyester carbonate. [twenty two] 22. The thermoplastic resin according to any one of items 1 to 21 above, wherein the amount of residual palladium in the thermoplastic resin is 10 ppm or less. [twenty three] 23. An optical member comprising the thermoplastic resin according to any one of items 1 to 22 above. [twenty four] 24. The optical member according to item 23 above, which is a lens. [twenty five] 24. The optical member according to item 23 above, which is an optical film.

[26] 25. The optical member according to item 24 above, which is an imaging lens for use in any one of a mobile phone, a smartphone, a tablet terminal, a personal computer, a digital camera, a video camera, an in-vehicle camera, and a surveillance camera. [Brief explanation of the drawings]

[0026] [Figure 1]Melt viscosity of Example 1 and Comparative Example 1 at 260°C measured using a Capillograph 1D manufactured by Toyo Seiki Seisaku-sho, Ltd. BEST MODE FOR CARRYING OUT THE INVENTION

[0027] The present invention will be described in detail below, but the following explanations of the constituent elements are representative examples of embodiments of the present invention and are not intended to limit the scope of the present invention. <Aspect I of the present invention> ≪Thermoplastic resin≫ The thermoplastic resin of aspect I of the present invention contains 10 mol % or more of repeating units represented by the above formula (1), has a content of oligomers having a number average molecular weight of less than 1,500 of 1.0 mass % or more, and has a refractive index at a wavelength of 589 nm of 1.640 or more and 1.740 or less.

[0028] The present inventors have discovered that when a resin containing a repeating unit represented by formula (1) contains 1.0 mass % or more of oligomers having a number-average molecular weight of less than 1,500 produced by polymerizing the repeating unit represented by formula (1), the resin exhibits significantly higher fluidity than a resin containing no oligomers having a number-average molecular weight of less than 1,500. When such a resin is used to mold an optical lens, the resin exhibits high fluidity, which is useful for reducing distortion due to residual stress. It is extremely difficult to improve the fluidity of thermoplastic resins for optical applications without changing the monomer composition, i.e., without changing the optical properties, or without impairing the mechanical properties. It was therefore unexpected that such properties could be achieved by controlling the amount of oligomers having a number-average molecular weight of less than 1,500. It is believed that when the amount of oligomers is greater than a certain amount, they function as plasticizers, improving the fluidity of the thermoplastic resin. <Physical properties of thermoplastic resin> The thermoplastic resin of the present invention has a refractive index (nD) at a wavelength of 589 nm measured at 25° C. of 1.640 or more and 1.740 or less. The refractive index (nD) may be 1.650 or more, 1.660 or more, 1.670 or more, 1.680 or more, or 1.690 or more, or 1.740 or less, 1.730 or less, 1.710 or less, 1.700 or less, 1.695 or less, or 1.690 or less. For example, the refractive index (nD) may be 1.640 or more and 1.740 or less, 1.660 or more and 1.730 or less, or 1.680 or more and 1.720 or less.

[0029] The "Abbe number (ν)" of the thermoplastic resin of the present invention is calculated using the following formula from the refractive indexes at wavelengths of 486 nm, 589 nm, and 656 nm measured at 25°C: ν=(nD-1) / (nF-nC) (where nD represents the refractive index at a wavelength of 589 nm, nC represents the refractive index at a wavelength of 656 nm, and nF represents the refractive index at a wavelength of 486 nm).

[0030] The Abbe number (ν) of the thermoplastic resin of the present invention is, for example, 25.0 or less. ν may be 24.0 or less, 22.0 or less, 20.0 or less to 18.0 or less, 17.0 or less, 16.0 or less, or 15.0 or less, or 10.0 or more, 11.0 or more, 12.0 or more, 13.0 or more, 14.0 or more, 15.0 or more, or 16.0 or more. For example, ν may be 10.0 or more to 25.0 or less, 11.0 or more to 22.0 or less, or 14.0 or more to 18.0 or less.

[0031] The thermoplastic resin of the present invention has a small degree of coloration, and in particular a light yellowish color. * a * b * ) color system b * The value is 10.0 or less, preferably 8.0 or less, 6.0 or less, 5.0 or less, or 3.0 or less, and may be 0.01 or more, 0.1 or more, 1.0 or more, or 3.0 or more. For example, * The value may be 0.01 or more and 10.0 or less, or 0.1 or more and 5.0 or less. *The values ​​are based on CIE 1976 (L) measurements taken with a spectrophotometer for a solution of 1.0 g dissolved in 5 ml of dichloromethane (a solution of 13% by mass in dichloromethane). * a * b * ) color system values.

[0032] Palladium catalysts are sometimes used in the synthesis of raw materials for thermoplastic resins for optical lenses, but the present inventors have found that the amount of palladium catalyst remaining in the raw materials is related to the coloration of the thermoplastic resin.The present inventors have also found that useful optical lenses can be obtained by using the above-mentioned thermoplastic resins in which the amount of palladium catalyst remaining has been adjusted.

[0033] The glass transition temperature of the thermoplastic resin of the present invention may be 120° C. or higher, 130° C. or higher, 140° C. or higher, 150° C. or higher, or 160° C. or higher, or 190° C. or lower, 180° C. or lower, 170° C. or lower, or 160° C. or lower. For example, the glass transition temperature is 120° C. or higher and 190° C. or lower, or 130° C. or higher and 170° C. or lower. A glass transition temperature within the above range is preferred because it provides an excellent balance between heat resistance and moldability.

[0034] The specific viscosity of the thermoplastic resin may be 0.10 or more, 0.12 or more, 0.15 or more, 0.18 or more, 0.20 or more, or 0.25 or more, or 0.5 or less, 0.45 or less, 0.4 or less, 0.35 or less, or 0.3 or less. For example, the specific viscosity may be 0.12 or more and 0.40 or less, 0.15 or more and 0.35 or less, or 0.18 or more and 0.30 or less. A specific viscosity within these ranges is preferred because it provides an excellent balance between moldability and mechanical strength. The specific viscosity is measured at 20°C using a solution in which 0.7 g of the resin is dissolved in 100 ml of dichloromethane (a solution dissolved in dichloromethane at 0.5% by mass).

[0035] The melt viscosity of the composition of the present invention, as measured at 260°C using a Capilograph 1D (manufactured by Toyo Seiki Seisaku-sho, Ltd.) at 9,120 (1 / s), may be 20 (Pa·s) or more, 30 (Pa·s) or more, 40 (Pa·s) or more, 50 (Pa·s) or more, or 60 (Pa·s) or more, or 130 (Pa·s) or less, 120 (Pa·s) or less, 100 (Pa·s) or less, 90 (Pa·s) or less, or 80 (Pa·s) or less. The melt viscosity is preferably 20 (Pa·s) or more and 120 (Pa·s) or less, more preferably 20 (Pa·s) or more and 100 (Pa·s) or less, even more preferably 25 (Pa·s) or more and 80 (Pa·s) or less, particularly preferably 30 (Pa·s) or more and 80 (Pa·s) or less, and most preferably 30 (Pa·s) or more and 70 (Pa·s) or less. A melt viscosity at 9,120 (1 / s) at 260°C within the above range is preferred because it provides good fluidity and excellent moldability. A similar range is also preferred when measured at 280°C. Furthermore, the viscosity at 61 (1 / s) when measured at 260°C may be 100 (Pa·s) or more, 130 (Pa·s) or more, or 150 (Pa·s) or more, or 1,200 (Pa·s) or less, 1,000 (Pa·s) or less, 800 (Pa·s) or less, 600 (Pa·s) or less, or 400 (Pa·s) or less. Its melt viscosity is preferably 100 (Pa·s) to 1,100 (Pa·s), more preferably 130 (Pa·s) to 600 (Pa·s), particularly preferably 150 (Pa·s) to 500 (Pa·s), and most preferably 200 (Pa·s) to 500 (Pa·s). It is preferable for the melt viscosity at 61 (1 / s) at a molding temperature of 260°C to be within the above range, as this provides good fluidity and excellent moldability. It is also preferable for the melt viscosity to be within the same range when measured at 280°C. <Thermoplastic resin structure> Thermoplastic resins of the present invention include polyesters, polyester carbonates, and polycarbonates.

[0036] The thermoplastic resin of the present invention contains a repeating unit of the following formula (1).

[0037] [ka]

[0038] (In the formula, R 1 and R 2 each independently represents a hydrocarbon group having 1 to 14 carbon atoms which may contain a hydrogen atom, a halogen atom, or an aromatic group; L 1 and L 2 each independently represents a divalent linking group, j and k each independently represents an integer of 0 or greater, m and n each independently represents 0 or 1, and W is at least one selected from the group represented by the following formula (2) or (3):

[0039] [ka]

[0040] [ka]

[0041] (In the formula, X represents a divalent linking group.) The thermoplastic resin of the present invention may contain the repeating unit of the above formula (1) at 10 mol% or more, 15 mol% or more, 20 mol% or more, 25 mol% or more, 30 mol% or more, 35 mol% or more, 40 mol% or more, 45 mol% or more, or 50 mol% or more, or at 90 mol% or less, 85 mol% or less, 80 mol% or less, 75 mol% or less, 70 mol% or less, 65 mol% or less, 60 mol% or less, 55 mol% or less, or 50 mol% or less. The resin of the present invention may contain the repeating unit of the above formula (A) at preferably 30 mol% to 90 mol%, more preferably 40 mol% to 80 mol%. Within the above range, a certain amount of oligomers with a number average molecular weight of less than 1500 can be contained, improving fluidity.

[0042] The repeating unit represented by formula (1) is particularly preferably a unit represented by the following formula (1-a) or (1-b).

[0043] [ka]

[0044] (In the formula, R 1 and R 2 , L 1 and L 2 , j and k, m and n, and W are the same as those in the formula (1). However, they may be selected independently of the formula (1).

[0045] [ka]

[0046] (In the formula, R 1 and R 2 , L 1 and L 2 , j and k, m and n, and W are the same as those in the formula (1), and R 3 , R 4 are R 1 , R 2 However, it may be selected independently of the formula (1). In the above formula (1), R 1 and R 2 each independently represents a hydrogen atom, a halogen atom, or a hydrocarbon group having 1 to 14 carbon atoms which may contain an aromatic group, and is preferably a hydrogen atom, a methyl group, a phenyl group, or a naphthyl group.

[0047] In this specification, unless otherwise specified, the term "aromatic group" is not limited to aromatic groups formed only from carbon atoms and hydrogen atoms, but also encompasses heteroaromatic groups containing heteroatoms. Examples of heteroatoms include oxygen atoms, sulfur atoms, and nitrogen atoms. Furthermore, unless otherwise specified, the term "aromatic group" includes monocyclic aromatic groups and fused polycyclic aromatic groups.

[0048] The halogen atom is preferably a fluorine atom, a chlorine atom, a bromine atom, or the like.

[0049] Examples of the hydrocarbon group include an alkyl group, a cycloalkyl group, an aralkyl group, an aryl group, a naphthyl group, and a thienyl group.

[0050] Specific examples of alkyl groups include C groups such as methyl, ethyl, propyl, isopropyl, butyl, and t-butyl groups. 1-6 Alkyl group, C 1-4 Alkyl group, C 1-3 Alkyl groups are preferred, and C 1-4 Alkyl group, C 1-3 Alkyl groups are more preferred, and C 1-3 More preferred are alkyl groups, with methyl or ethyl groups being even more preferred.

[0051] Specific examples of the cycloalkyl group include C cyclopentyl and cyclohexyl groups. 5-8 Cycloalkyl groups, C 5-6 Cycloalkyl groups are preferred, and C 5-6 Cycloalkyl groups are more preferred.

[0052] Specific examples of the aralkyl group include C aryl groups such as benzyl and phenethyl groups. 6-10 Aryl-C 1-4 Preferred examples include alkyl groups.

[0053] Specific examples of the aryl group include a phenyl group, an alkylphenyl group (mono- or dimethylphenyl group (tolyl group, 2-methylphenyl group, xylyl group, etc.)), and the like, and a phenyl group is more preferred.

[0054] Specific examples of the naphthyl group include a 1-naphthyl group and a 2-naphthyl group.

[0055] Specific examples of the thienyl group include a 2-thienyl group and a 3-thienyl group.

[0056] R 1 and R 2is preferably a hydrogen atom, a phenyl group, a naphthyl group or a thienyl group, more preferably a hydrogen atom, a phenyl group or a naphthyl group.

[0057] In the formula (1), L 1 , L 2 each independently represents a divalent linking group, and is preferably an alkylene group having 1 to 12 carbon atoms, and more preferably an ethylene group. 1 , L 2 By adjusting the length of the linking group, the glass transition temperature of the resin can be adjusted.

[0058] In the formula (1), W is at least one selected from the group represented by the formula (2) or (3). When W is the formula (2), the formula (1) becomes a carbonate unit, and when W is the formula (3), the formula (1) becomes an ester unit.

[0059] In the formula (3), X represents a divalent linking group, and is preferably a hydrocarbon group having 1 to 30 carbon atoms which may contain an aromatic group.

[0060] The thermoplastic resin of the present invention may contain 10 mol % or more, 20 mol % or more, or 30 mol % or more of the repeating unit of formula (4) shown below. The upper limit may be 90 mol % or less, 80 mol % or less, or 70 mol % or less. When the repeating unit of formula (4) is within the above range, it is easy to obtain a resin that has a high refractive index, low birefringence, and a balance between heat resistance and moldability.

[0061] [ka]

[0062] (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2 represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2 , L1 and L 2 , j and k, m and n, and W are the same as those in the formula (1). However, they may be selected independently of the formula (1). The repeating unit represented by the above formula (4) is particularly preferably a unit represented by the following formula (4-a) or (4-b):

[0063] [ka]

[0064] [ka]

[0065] In the above formula (4), examples of the aromatic hydrocarbon ring represented by ring Z include a benzene ring and a fused polycyclic aromatic hydrocarbon ring having at least a benzene ring skeleton. For example, fused bicyclic to tetracyclic hydrocarbon rings such as a fused bicyclic hydrocarbon ring and a fused tricyclic hydrocarbon ring are preferred.

[0066] The fused bicyclic hydrocarbon rings include C rings such as indene rings and naphthalene rings. 8-20 is preferred, and C 10-16 A fused bicyclic hydrocarbon ring is more preferred. Furthermore, as the fused tricyclic hydrocarbon ring, an anthracene ring, a phenanthrene ring, etc. are preferred.

[0067] Of the rings Z, a benzene ring and a naphthalene ring are preferred.

[0068] Specific examples of the aromatic hydrocarbon ring represented by ring Z in the above formula (4) are preferably a 1,4-phenylene group, a 1,4-naphthalenediyl group, or a 2,6-naphthalenediyl group, and more preferably a 1,4-phenylene group or a 2,6-naphthalenediyl group.

[0069] In the above formula (4), Ar 1 and Ar 2may each independently represent a hydrogen atom, a halogen atom, a monocyclic aromatic group or a fused polycyclic aromatic group having 1 to 10 carbon atoms which may contain a substituent, or a 5- or 6-membered heteroaromatic group or a fused heteroaromatic group containing such a group, and the aromatic group having 1 to 10 carbon atoms is preferably a phenyl group or a naphthyl group which may contain a substituent. In the case of a naphthyl group, a 1-naphthyl group or a 2-naphthyl group is preferred, and a 2-naphthyl group is more preferred. Ar 1 and Ar 2 is other than a hydrogen atom, Ar 1 and Ar 2 The bonding positions of each of the above are preferably the 2- and 7-positions or the 3- and 6-positions of the fluorene skeleton, and more preferably the 2- and 7-positions. The heteroaromatic group is preferably a 5- or 6-membered heteroaromatic group or a fused heteroaromatic group containing such a group, and the heteroatom can be an oxygen atom, a sulfur atom, or a nitrogen atom, and particularly a sulfur atom.

[0070] Ar 1 and Ar 2 is preferably a hydrogen atom, a phenyl group, a naphthyl group or a thienyl group, more preferably a hydrogen atom, a phenyl group or a naphthyl group.

[0071] where R 1 and R 2 , L 1 and L 2 , W, m, n, j, and k are the same as those in the formula (1), but may be selected independently of the formula (1). (Other repeating units) The thermoplastic resin may contain other repeating units to the extent that the properties of the present invention are not impaired. The amount of other repeating units is preferably less than 30 mol %, 20 mol % or less, 10 mol % or less, or 5 mol % or less of all repeating units. <Oligomers with a number average molecular weight of less than 1,500> In the course of polymerization, a thermoplastic resin containing a unit represented by the above formula (1) generates oligomers represented by the following formulas (6) to (8) as by-products. Generally, in thermoplastic resins produced by polymerization reactions, those in which the molecular weight distribution of the polymer in the resin after polymerization is narrow are preferred. However, in the present invention, it has been found that a resin with excellent fluidity can be obtained by including a trace amount of an oligomer component with a number average molecular weight of less than 1,500.

[0072] In this specification, "oligomers with a number average molecular weight of less than 1,500" refers to the area percentage (%) of oligomers with a number average molecular weight of less than 1,500 in the total molecular weight distribution measured by gel permeation chromatography (GPC) using the method described in the Examples. Since the molecular structure of the units constituting the high molecular weight component is the same as that of the oligomers, it is believed that they can also be detected by UV at 254 nm. Therefore, this area percentage (%) can be converted to mass %. Therefore, in this application, the area percentage (%) is expressed as mass %.

[0073] Representative examples of oligomers having a number average molecular weight of less than 1,500 are shown below, but the oligomers having a number average molecular weight of less than 1,500 are not limited to these.

[0074] [ka]

[0075] (In formula (6), R 1 , R 2 , L 1 , L 2 , m, n, j, and k are the same as those in the formula (1).

[0076] [ka]

[0077] (In formula (7), R 1 , R 2 , L 1 , L 2, m, n, j, and k are the same as those in the formula (1), and R 3 and R 4 each independently represents a hydrogen atom, a halogen atom, or a hydrocarbon group having 1 to 14 carbon atoms which may contain an aromatic group; L 3 and L 4 each independently represents a divalent linking group, p and q each independently represent 0 or 1, and l and h each independently represent an integer of 0 or greater.

[0078] [ka]

[0079] (In formula (8), R 1 , R 2 , R 3 , R 4 , L 1 , L 2 , L 3 , L 4 , m, n, p, q, j, k, l, and h are the same as those in the formula (7). The thermoplastic resin of the present invention preferably contains an oligomer component having a number average molecular weight of less than 1,500 in a volume of 1.0% by mass or more, more preferably 1.5% by mass to 15.0% by mass, and even more preferably 2.0% by mass to 12.0% by mass. If the volume is less than the lower limit, the amount of oligomer that functions as a plasticizer will be reduced, resulting in reduced fluidity. If the volume is more than the upper limit, the plasticizer will lower the glass transition temperature, presumably resulting in reduced heat resistance.

[0080] It has been discovered that the thermoplastic resin of the present invention can achieve both good mechanical properties and good flowability by controlling the amount of oligomers with a number average molecular weight of less than 1,500 without reducing the molecular weight of the high molecular weight component in the thermoplastic resin.

[0081] These oligomers in the present invention have high molecular weights and therefore do not sublime at molding temperatures of 300° C. or lower, and are unlikely to contaminate the mold during injection molding.

[0082] The more diol component or dicarboxylic acid component used as the raw material of formula (1) is present, the more easily oligomer components with a number average molecular weight of less than 1,500 are produced. When either one of them or both of them is present at 40 mol% to 99 mol%, more preferably 50 mol% to 95 mol%, and even more preferably 60 mol% to 90 mol%, the amount of oligomer components with a number average molecular weight of less than 1,500 can be easily adjusted to 1.0 mass% or more.

[0083] Examples of methods for adjusting the volume of oligomer components with a number average molecular weight of less than 1,500 to 1.0 mass % or more include adjusting the molar ratio of raw materials, adjusting the reaction temperature, adjusting the melting time, adjusting the degree of reduced pressure, adjusting the type of catalyst, and adjusting the amount of catalyst. <Raw material for thermoplastic resin> (Diol component of formula (1)) The diol component used as the raw material of formula (1) is mainly a diol component represented by formula (a), and may be used alone or in combination of two or more kinds.

[0084] [ka]

[0085] where R 1 , R 2 , L 1 , L 2 , m, n, j, and k are the same as those in the formula (1).

[0086] Representative examples of the diol component represented by the formula (a) are shown below, but the raw materials used in the formula (1) are not limited to these.

[0087] R 1 and R 2 When is a hydrogen atom, examples of the diol component of formula (a) include 2,2'-bis(2-hydroxyethoxy)-1,1'-binaphthalene (hereinafter also referred to as "BHEB").

[0088] R 1 and R 2 When j and k are 1, the diol component of formula (a) may be 2,2'-bis(2-hydroxyethoxy)-3,3'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-diphenyl-1,1'-binaphthalene, 2,2'-bis( Examples include 2,2'-bis(2-hydroxyethoxy)-6,6'-diphenyl-1,1'-binaphthalene (hereinafter also referred to as "BHEB6"), 2,2'-bis(2-hydroxyethoxy)-7,7'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-8,8'-diphenyl-1,1'-binaphthalene, etc., and the following formula (a-1): BHEB6 is particularly preferred.

[0089] [ka]

[0090] R 1 and R 2When j and k are 1, the diol component of formula (a) may be 2,2'-bis(2-hydroxyethoxy)-3,3'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-di(1-naphthyl)-1,1'-binaphthalene, Naphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-7,7'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-8,8'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)- 3,3'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-naphthyl)-1,1'-binaphthalene, Examples include 2,2'-bis(2-hydroxyethoxy)-7,7'-di(2-naphthyl)-1,1'-binaphthalene and 2,2'-bis(2-hydroxyethoxy)-8,8'-di(2-naphthyl)-1,1'-binaphthalene, and particularly preferred is the following formula (a-2): 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-naphthyl)-1,1'-binaphthalene.

[0091] [ka]

[0092] R 1 and R 2When j and k are 1, examples of the diol component of formula (a) include (a-3): 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-thienyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(3-thienyl)-1,1'-binaphthalene, and the like, and particularly preferred is the following formula (a-3): 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-thienyl)-1,1'-binaphthalene.

[0093] [ka]

[0094] R 1 and R 2 When is a phenyl group and j and k are 2, examples of the diol component of formula (a) include (a-4): 2,2'-bis(2-hydroxyethoxy)-4,4',6,6'-tetraphenyl-1,1'-binaphthalene.

[0095] [ka]

[0096] As the diol component represented by formula (a), BHEB, BHEB6, and 2,2'-bis(2-hydroxyethoxy)-4,4',6,6'-tetraphenyl-1,1'-binaphthalene are preferred, and BHEB and BHEB6 are more preferred. (Diol component of formula (4)) The diol component used as the raw material of formula (4) is mainly a diol component represented by formula (b), and may be used alone or in combination of two or more kinds.

[0097] [ka]

[0098] In the formula (b), the rings Z and R 1 , R2 , Ar 1 , Ar 2 , L 1 , L 2 , j, k, m, and n are the same as those in the formula (4).

[0099] Representative examples of the diol component represented by the formula (b) are shown below, but the raw materials used in the formula (4) are not limited to these.

[0100] When Z is a benzene ring, the following compounds are represented by the formulas (b-1) to (b-14): the following formula (b-1): 9,9-bis(4-(2-hydroxyethoxy)phenyl)fluorene (hereinafter also referred to as "BPEF"), the following formula (b-2): 9,9-bis(4-(2-hydroxyethoxy)-3-phenylphenyl)fluorene (hereinafter also referred to as "BOPPEF"), the following formula (b-3): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-diphenylfluorene (hereinafter also referred to as "BPDP2"), the following formula (b-4): 9,9- Bis(4-hydroxyphenyl)-2,7-diphenylfluorene, the following formula (b-5): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-diphenylfluorene, the following formula (b-6): 9,9-bis(4-hydroxyphenyl)-3,6-diphenylfluorene, the following formula (b-7): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(1-naphthyl)fluorene (hereinafter also referred to as "BPDN1"), the following formula (b-8): 9,9-bis(4-hydroxyphenyl)-2,7-di(1-naphthyl)fluorene phenyl)fluorene, the following formula (9): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-di(1-naphthyl)fluorene, the following formula (b-10): 9,9-bis(4-hydroxyphenyl)-3,6-di(1-naphthyl)fluorene, the following formula (b-11): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(2-naphthyl)fluorene (hereinafter also referred to as “BPDN2”), the following formula (b-12): 9,9-bis(4-hydroxyphenyl)-2,7-di(2-naphthyl)fluorene are more preferred. , the following formula (b-13): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-di(2-naphthyl)fluorene, the following formula (b-14): 9,9-bis(4-hydroxyphenyl)-3,6-di(2-naphthyl)fluorene, etc. can be mentioned, and in particular, the following formula (b-1): BPEF, the following formula (b-2): BOPPEF, the following formula (b-3): BPDP2, the following formula (b-7): BPDN1, and the following formula (b-11): BPDN2 are preferred, and the following formula (b-3): BPDP2 and the following formula (b-11): BPDN2 are more preferred.

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[0112] [ka]

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[0114] [ka]

[0115] Ar 1 and Ar 2 When is a heteroaromatic group, an example of the diol component of formula (b) is 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(2-thienyl)fluorene of the following formula (b-15).

[0116] [ka]

[0117] When ring Z is a naphthalene ring, examples include the following formula (b-16): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)fluorene (hereinafter also referred to as "BNEF"), the following formula (b-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene), and (b-18) 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-di(2-naphthyl)fluorene.

[0118] [ka]

[0119] [ka]

[0120] [ka]

[0121] As the diol component represented by formula (b), BPEF, BOPPEF, BPDP2, BPDN1, BPDN2, the above formula (b-15): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(2-thienyl)fluorene, BNEF, the above formula (b-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene), and the above formula (b-18) 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-di(2-naphthyl)fluorene are preferred, and BPDP2, BPDN2, BNEF, and the above formula (b-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene are more preferred. (Other copolymerized diol components) The thermoplastic resin may be copolymerized with other diol components to the extent that the properties of the present invention are not impaired. The amount of the other diol components is preferably less than 30 mol %, 20 mol % or less, 10 mol % or less, or 5 mol % or less of all repeating units.

[0122] Other diol components used in the thermoplastic resin include ethylene glycol, propanediol, butanediol, pentanediol, hexanediol, heptanediol, octanediol, nonanediol, tricyclo[5.2.1.0 2,6 ]Decanedimethanol, cyclohexane-1,4-dimethanol, decalin-2,6-dimethanol, norbornane dimethanol, pentacyclopentadecanedimethanol, cyclopentane-1,3-dimethanol, spiroglycol, isosorbide, isomannide, isoidide, hydroquinone, resorcinol, bis(4-(2-hydroxyethoxy)phenyl)sulfone, 1,1'-bi-2-naphthol, dihydroxynaphthalene, bis(2-hydroxyethoxy)naphthalene, and the like are exemplified, and these may be used alone or in combination of two or more. (Dicarboxylic acid component of formula (1) or formula (4)) The dicarboxylic acid component used in the units of the thermoplastic resin represented by formula (1) or (4) is preferably a dicarboxylic acid represented by HOOC-X-COOH or an ester-forming derivative thereof, where X represents a divalent linking group for providing the units of formula (1) or (4).

[0123] Representative specific examples of the dicarboxylic acid represented by the formula HOOC-X-COOH or an ester-forming derivative thereof include those in which the diols of the formulae (a) and (b) of the present invention are dicarboxylic acids or ester-forming derivatives thereof.

[0124] Dicarboxylic acid components used in the thermoplastic resin include aliphatic dicarboxylic acid components such as malonic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, methylmalonic acid, and ethylmalonic acid; monocyclic aromatic dicarboxylic acid components such as phthalic acid, isophthalic acid, and terephthalic acid; 2,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 2,3-naphthalenedicarboxylic acid, 1,4-naphthalenedicarboxylic acid, 1,8-naphthalenedicarboxylic acid, anthracene dicarboxylic acid, phenanthrene dicarboxylic acid, 2,2'-bis(carboxymethoxy)-1,1'-binaphthalene (hereinafter also referred to as "BCMB"), 9,9-bis(carboxymethyl)fluorene, 9,9-bis(2-carboxyethyl)fluorene, 9,9-bis(1-carboxyethyl)fluorene, 9,9-bis(1-carboxyethyl)fluorene, and the like. Examples of suitable dicarboxylic acid components include polycyclic aromatic dicarboxylic acid components such as 9,9-bis(2-carboxypropyl)fluorene, 9,9-bis(2-carboxypropyl)fluorene, 9,9-bis(2-carboxy-1-methylethyl)fluorene, 9,9-bis(2-carboxy-1-methylpropyl)fluorene, 9,9-bis(2-carboxybutyl)fluorene, 9,9-bis(2-carboxy-1-methylbutyl)fluorene, 9,9-bis(5-carboxypentyl)fluorene, and 9,9-bis(carboxycyclohexyl)fluorene; biphenyl dicarboxylic acid components such as 2,2'-biphenyl dicarboxylic acid; alicyclic dicarboxylic acid components such as 1,4-cyclohexane dicarboxylic acid and 2,6-decalin dicarboxylic acid; and isophthalic acid, terephthalic acid, 2,6-naphthalenedicarboxylic acid, and 2,2'-bis(carboxymethoxy)-1,1'-binaphthalene are preferred. These may be used alone or in combination of two or more. As the ester-forming derivative, acid chlorides and esters such as methyl esters, ethyl esters and phenyl esters may be used. <Manufacturing method> The thermoplastic resin of the present invention, polyester carbonate resin, is produced by a reaction means known per se for producing ordinary resins, for example, in the case of polycarbonate, by reacting a dihydroxy compound with a carbonate precursor such as a carbonate diester. <Thermoplastic resin - impurities> (residual phenol) The residual phenol content of the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 400 ppm, and even more preferably 1 to 300 ppm. The phenol content is preferably adjusted by the reaction time at a pressure of 1.3 kPa or less. If the reaction is not carried out at a vacuum of 1.3 kPa or less, the phenol content will be high. Furthermore, if the reaction time is too long, too much phenol will be distilled off from the resin.

[0125] The phenol content may be adjusted after the thermoplastic resin is obtained. For example, a method may be used in which the thermoplastic resin is dissolved in an organic solvent and the organic solvent layer is washed with water. Alternatively, a commonly used kneading device such as a single-screw or twin-screw extruder or various kneaders may be used to remove the volatile components at a pressure of 133 to 13.3 Pa and a temperature of 200 to 320°C. When the residual phenol content is appropriate, molding flowability can be improved without impairing heat resistance. Furthermore, the thermal stability when the resin is heated and melted is improved, and mold contamination during resin injection molding can be prevented. Furthermore, phenol has the tendency to discolor when oxidized. However, within this range, the color of the thermoplastic resin is less likely to deteriorate and molding flowability is improved. (Remaining amount of palladium (Pd) catalyst) The thermoplastic resin preferably does not contain a palladium catalyst. The amount of palladium catalyst remaining in the thermoplastic resin is preferably 10 ppm or less, more preferably 5.0 ppm or less, 3.0 ppm or less, 1.0 ppm or less, or 0.5 ppm, and may be 0.0 ppm or more, 0.1 ppm or more, 0.2 ppm or more, or 0.5 ppm or more. If the amount of palladium catalyst remaining in the thermoplastic resin is appropriate, discoloration of the resin can be prevented.

[0126] Palladium catalysts are used as catalysts for bonding aromatic substituents to binaphthalene-based units or fluorene-based units, and typically remain in thermoplastic resins containing binaphthalene-based units containing aromatic substituents or fluorene-based units containing aromatic substituents in their side chains. The present inventors have found that the amount of remaining palladium catalyst is related to the coloration of the thermoplastic resin. To reduce the amount of palladium remaining in the resin, a palladium removal treatment can be performed on the monomer containing the palladium catalyst residue and / or the resin. (Residual binaphthol) The residual binaphthol content in the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 300 ppm, still more preferably 1 to 100 ppm, and particularly preferably 1 to 50 ppm. When the residual binaphthol content in the thermoplastic resin is appropriate, discoloration of the resin can be prevented. (Residual fluorenone) The residual fluorenone content in the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 300 ppm, even more preferably 1 to 100 ppm, and particularly preferably 1 to 50 ppm. When the residual fluorenone content in the thermoplastic resin is appropriate, discoloration of the resin can be prevented.

[0127] Fluorenone is used as a raw material in the production of monomers of fluorene-based constituent units, and if it is not possible to remove all of it during the production process, it will remain. The present inventors have found that the amount of remaining fluorenone is related to the coloration of thermoplastic resins. <Optical components> The optical member of the present invention contains the above-mentioned thermoplastic resin. Such optical members are not particularly limited as long as they are used for optical applications in which the above-mentioned thermoplastic resin is useful, and examples thereof include optical disks, transparent conductive substrates, optical cards, sheets, films, optical fibers, lenses, prisms, optical films, substrates, optical filters, and hard coat films. Examples of films include optical films.

[0128] The optical member of the present invention may be composed of a resin composition containing the above-mentioned thermoplastic resin, and the resin composition may contain additives such as a heat stabilizer, a plasticizer, a light stabilizer, a polymerized metal deactivator, a flame retardant, a lubricant, an antistatic agent, a surfactant, an antibacterial agent, an ultraviolet absorber, and a mold release agent, as needed. <Imaging lens> The optical member of the present invention can particularly include an imaging lens, which is used in mobile phones, smartphones, tablet terminals, personal computers, digital cameras, video cameras, vehicle-mounted cameras, surveillance cameras, etc.

[0129] The imaging lens of the present invention can be molded and processed by any method such as injection molding, compression molding, injection compression molding, melt extrusion molding, casting, etc., but injection molding is particularly suitable.

[0130] The molding conditions for injection molding are not particularly limited, but the cylinder temperature of the molding machine is preferably 180 to 320° C., more preferably 220 to 300° C., and particularly preferably 240 to 280° C. The mold temperature is preferably 70 to 130° C., more preferably 80 to 125° C., and particularly preferably 90 to 120° C. The injection pressure is preferably 5 to 170 MPa, more preferably 50 to 160 MPa, and particularly preferably 100 to 150 MPa. <Aspect II of the present invention> Optical Lenses The optical lens of aspect II of the present invention is an optical lens comprising a thermoplastic resin containing a repeating unit represented by the following formula (1), wherein the thermoplastic resin has a CIE 1976 (LI) viscosity of 1.0 g in a solution of 13% by mass dissolved in methylene chloride (a solution of 1.0 g dissolved in 5 ml of methylene chloride). * a * b * ) color system b * The refractive index at a wavelength of 589 nm is 1.670 or more and 1.740 or less.

[0131] The thermoplastic resin used in the optical lens of the present invention is excellent in that it has a high refractive index and a small degree of coloration. <Physical properties of thermoplastic resin> The thermoplastic resin of the present invention has a refractive index (nD) at a wavelength of 589 nm measured at 25°C of 1.670 or more and 1.740 or less. nD may be 1.670 or more, 1.680 or more, or 1.690 or more, or 1.740 or less, 1.730 or less, 1.720 or less, 1.710 or less, 1.700 or less, 1.695 or less, or 1.690 or less. For example, nD may be 1.670 or more and 1.740 or less, 1.680 or more and 1.740 or less, 1.690 or more and 1.740 or less, 1.680 or more and 1.730 or less, or 1.680 or more and 1.720 or less. When the thermoplastic resin of the present invention is a polyester or polyestercarbonate, the proportion of carbonate bonds among the bond species constituting the thermoplastic resin is zero or lower than that of polycarbonate. This makes it possible to avoid a decrease in refractive index due to one oxygen atom, resulting in a thermoplastic resin with a higher refractive index.

[0132] The b* value of the CIE1976 (L*a*b*) color system of the thermoplastic resin of the present invention may be 30.0 or less, 20.0 or less, 10.0 or less, 8.0 or less, 6.0 or less, 5.0 or less, or 3.0 or less, or may be 0 or more, 0.1 or more, 1.0 or more, or 3.0 or more. * The value is preferably 0 or more and 30.0 or less, more preferably 0 or more and 20.0 or less, even more preferably 0 or more and 10.0 or less, particularly preferably 0 or more and 8.0 or less, and most preferably 0 or more and 6.0 or less. * If the value is within the above range, the degree of coloring is small, and the yellowness is particularly light, making it excellent as an optical lens. * The value is based on CIE1976 (L) for a solution of 1.0 g dissolved in 5 ml of methylene chloride (a solution dissolved in methylene chloride at 13% by mass). * a * b * ) color system values.

[0133] Palladium catalysts are used to synthesize the raw materials for thermoplastic resins used in optical lenses. However, the present inventors have found that the residual palladium component derived from the palladium catalyst in the raw material is related to the coloration of the thermoplastic resin.The present inventors have also found that a useful optical lens can be obtained by using the above-mentioned thermoplastic resin in which the residual amount of the palladium component has been adjusted.

[0134] The glass transition temperature of the thermoplastic resin of the present invention may be 120° C. or higher, 130° C. or higher, 140° C. or higher, 150° C. or higher, or 160° C. or higher, or 190° C. or lower, 180° C. or lower, 170° C. or lower, or 160° C. or lower. For example, the glass transition temperature is 120° C. or higher and 190° C. or lower, or 130° C. or higher and 170° C. or lower. A glass transition temperature within the above range is preferred because it provides an excellent balance between heat resistance and moldability.

[0135] The specific viscosity of the thermoplastic resin of the present invention may be 0.10 or more, 0.12 or more, 0.15 or more, 0.18 or more, 0.20 or more, or 0.25 or more, or 0.5 or less, 0.45 or less, 0.4 or less, 0.35 or less, or 0.3 or less. For example, the specific viscosity may be 0.12 or more and 0.40 or less, 0.15 or more and 0.35 or less, or 0.18 or more and 0.30 or less. A specific viscosity within these ranges is preferred because it provides an excellent balance between moldability and mechanical strength. The specific viscosity is measured at 20°C using a solution in which 0.7 g of the resin is dissolved in 100 ml of methylene chloride (a solution dissolved in methylene chloride at 0.5% by mass). <Structure of thermoplastic resin> The thermoplastic resins of the present invention include polyesters, polyester carbonates, and polycarbonates.

[0136] The thermoplastic resin of the present invention contains a repeating unit of the following formula (1).

[0137] [ka]

[0138] (In the formula, R 1 and R2 each independently represents a hydrocarbon group having 1 to 14 carbon atoms which may contain a hydrogen atom, a halogen atom, or an aromatic group; L 1 and L 2 each independently represents a divalent linking group, j and k each independently represents an integer of 1 or more, m and n each independently represents 0 or 1, and W is at least one selected from the group represented by the following formula (2) or (3):

[0139] [ka]

[0140] [ka]

[0141] (In the formula, X represents a divalent linking group.) The thermoplastic resin of the present invention may contain the repeating unit of the above formula (1) in an amount of 20 mol% or more, 30 mol% or more, 40 mol% or more, 50 mol% or more, 60 mol% or more, or 70 mol% or more, or 100 mol% or less, 90 mol% or less, 80 mol% or less, 70 mol% or less, 60 mol% or less, 50 mol% or less, or 40 mol% or less. For example, the thermoplastic resin may contain the repeating unit of the above formula (1) in an amount of 20 mol% to 100 mol%, or 30 mol% to 100 mol%.

[0142] The repeating unit represented by formula (1) is preferably a unit represented by the following formula (1-a) or (1-c): In addition, a unit represented by the following formula (1-c) is preferable because it improves the polarizability per repeating unit, making it possible to obtain a thermoplastic resin with a higher refractive index.

[0143] [ka]

[0144] (In the formula, R1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

[0145] [ka]

[0146] (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1). In the above formula (1), R 1 and R 2 each independently represents a hydrogen atom, a halogen atom, or a hydrocarbon group having 1 to 14 carbon atoms which may contain an aromatic group, and is preferably a hydrogen atom, a methyl group, or a phenyl group, a naphthyl group, or a thienyl group.

[0147] In this specification, unless otherwise specified, the term "aromatic group" is not limited to aromatic groups formed only from carbon atoms and hydrogen atoms, but also encompasses heteroaromatic groups containing heteroatoms. Examples of heteroatoms include oxygen atoms, sulfur atoms, and nitrogen atoms. Furthermore, unless otherwise specified, the term "aromatic group" includes monocyclic aromatic groups and fused polycyclic aromatic groups.

[0148] The halogen atom is preferably a fluorine atom, a chlorine atom, a bromine atom, or the like.

[0149] Examples of the hydrocarbon group include an alkyl group, a cycloalkyl group, an aralkyl group, an aryl group, a naphthyl group, and a thienyl group.

[0150] Specific examples of alkyl groups include C groups such as methyl, ethyl, propyl, isopropyl, butyl, and t-butyl groups. 1-6 Alkyl groups are preferred, and C 1-4 Alkyl groups are more preferred, and C 1-3More preferred are alkyl groups, with methyl or ethyl groups being even more preferred.

[0151] Specific examples of the cycloalkyl group include C cyclopentyl and cyclohexyl groups. 5-8 Cycloalkyl groups, C 5-6 Cycloalkyl groups are preferred, and C 5-6 Cycloalkyl groups are more preferred.

[0152] Specific examples of the aralkyl group include C aryl groups such as benzyl and phenethyl groups. 6-10 Aryl-C 1-4 Preferred examples include alkyl groups.

[0153] Specific examples of the aryl group include a phenyl group, an alkylphenyl group (mono- or dimethylphenyl group (tolyl group, 2-methylphenyl group, xylyl group, etc.)), and the like, and a phenyl group is more preferred.

[0154] Specific examples of the naphthyl group include a 1-naphthyl group and a 2-naphthyl group.

[0155] Specific examples of the thienyl group include a 2-thienyl group and a 3-thienyl group.

[0156] R 1 and R 2 It is preferable that any one of the groups is a hydrocarbon group having 1 to 14 carbon atoms which may contain a halogen atom or an aromatic group.

[0157] R 1 and R 2 is preferably a phenyl group, a naphthyl group, or a thienyl group, more preferably a phenyl group or a naphthyl group.

[0158] In the formula (1), L 1 , L 2 each independently represents a divalent linking group, and is preferably an alkylene group having 1 to 12 carbon atoms, and more preferably an ethylene group. 1, L 2 By adjusting the length of the linking group, the glass transition temperature of the resin can be adjusted.

[0159] In the formula (1), W is at least one selected from the group represented by the formula (2) or (3). When W is the formula (2), the formula (1) becomes a carbonate unit, and when W is the formula (3), the formula (1) becomes an ester unit.

[0160] In the formula (3), X represents a divalent linking group, and is preferably a hydrocarbon group having 1 to 30 carbon atoms which may contain an aromatic group.

[0161] The thermoplastic resin of the present invention may contain 10 mol % or more, 20 mol % or more, or 30 mol % or more of the repeating unit of formula (5) shown below. The upper limit may be 80 mol % or less, or 70 mol % or less. When the repeating unit of formula (5) is within the above range, it is easy to obtain a resin that has a high refractive index, low birefringence, and a balance between heat resistance and moldability.

[0162] [ka]

[0163] (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2 represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2 , L 1 and L 2 , j and k, m and n, and W are the same as those in the formula (1). However, they may be selected independently of the formula (1). The repeating unit represented by the above formula (5) is particularly preferably a unit represented by the following formula (5-a) or (5-b):

[0164] [ka]

[0165] [ka]

[0166] In the above formula (5), examples of the aromatic hydrocarbon ring represented by ring Z include a benzene ring and a fused polycyclic aromatic hydrocarbon ring having at least a benzene ring skeleton. For example, fused bicyclic to tetracyclic hydrocarbon rings such as a fused bicyclic hydrocarbon ring and a fused tricyclic hydrocarbon ring are preferred.

[0167] The fused bicyclic hydrocarbon rings include C rings such as indene rings and naphthalene rings. 8-20 is preferred, and C 10-16 A fused bicyclic hydrocarbon ring is more preferred. Furthermore, as the fused tricyclic hydrocarbon ring, an anthracene ring, a phenanthrene ring, etc. are preferred.

[0168] Of these, a benzene ring and a naphthalene ring are preferred.

[0169] Specific examples of the aromatic hydrocarbon ring represented by ring Z in the above formula (5) are preferably a 1,4-phenylene group, a 1,4-naphthalenediyl group, or a 2,6-naphthalenediyl group, and more preferably a 1,4-phenylene group or a 2,6-naphthalenediyl group.

[0170] In the above formula (5), Ar 1 and Ar 2 may each independently represent a hydrogen atom, a halogen atom, a monocyclic aromatic group or a fused polycyclic aromatic group having 1 to 10 carbon atoms which may contain a substituent, or a 5- or 6-membered heteroaromatic group or a fused heteroaromatic group containing such a group, and the aromatic group having 1 to 10 carbon atoms is preferably a phenyl group or a naphthyl group which may contain a substituent. In the case of a naphthyl group, a 1-naphthyl group or a 2-naphthyl group is preferred, and a 2-naphthyl group is more preferred. Ar 1 and Ar 2is other than a hydrogen atom, Ar 1 and Ar 2 The bonding positions of each of the above are preferably the 2- and 7-positions or the 3- and 6-positions of the fluorene skeleton, and more preferably the 2- and 7-positions. The heteroaromatic group is preferably a 5- or 6-membered heteroaromatic group or a fused heteroaromatic group containing such a group, and the heteroatom can be an oxygen atom, a sulfur atom, or a nitrogen atom, and particularly a sulfur atom.

[0171] Ar 1 and Ar 2 is preferably a hydrogen atom, a phenyl group, a naphthyl group or a thienyl group, more preferably a hydrogen atom, a phenyl group or a naphthyl group.

[0172] where R 1 and R 2 , L 1 and L 2 , W, m, n, j, and k are the same as those in the formula (1), but may be selected independently of the formula (1). (Other repeating units) The thermoplastic resin may contain other repeating units to the extent that the properties of the present invention are not impaired. The amount of other repeating units is preferably less than 50 mol%, 40 mol% or less, 30 mol% or less, 20 mol% or less, 10 mol% or less, or 5 mol% or less of all repeating units. <Raw material for thermoplastic resin> (Diol component of formula (1)) The diol component used as the raw material of formula (1) is mainly a diol component represented by formula (a), and may be used alone or in combination of two or more kinds.

[0173] [ka]

[0174] where R 1 , R 2 , L 1 , L 2, m, n, j, and k are the same as those in the formula (1).

[0175] Representative examples of the diol component represented by the formula (a) are shown below, but the raw materials used in the formula (1) are not limited to these.

[0176] R 1 and R 2 When is a hydrogen atom, examples of the diol component of formula (a) include 2,2'-bis(2-hydroxyethoxy)-1,1'-binaphthalene (hereinafter also referred to as "BHEB").

[0177] R 1 and R 2 When j and k are 1, the diol component of formula (a) may be 2,2'-bis(2-hydroxyethoxy)-3,3'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-diphenyl-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)- Examples include 2,2'-bis(2-hydroxyethoxy)-6,6'-diphenyl-1,1'-binaphthalene (hereinafter also referred to as "BHEB-6P"), 2,2'-bis(2-hydroxyethoxy)-7,7'-diphenyl-1,1'-binaphthalene, and 2,2'-bis(2-hydroxyethoxy)-8,8'-diphenyl-1,1'-binaphthalene, and particularly preferred is the compound of the following formula (a-1): BHEB-6P.

[0178] [ka]

[0179] R 1 and R 2is a naphthyl group, and j and k are 1, the diol component of formula (a) may be 2,2'-bis(2-hydroxyethoxy)-3,3'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-di(1-naphthyl)- 1,1'-Binaphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-7,7'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-8,8'-di(1-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2- 2,2'-bis(2-hydroxyethoxy)-3,3'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-4,4'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-5,5'-di(2-naphthyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-naphthyl)- Examples include 2,2'-bis(2-hydroxyethoxy)-7,7'-di(2-naphthyl)-1,1'-binaphthalene (hereinafter also referred to as "BHEB-6N"), 2,2'-bis(2-hydroxyethoxy)-7,7'-di(2-naphthyl)-1,1'-binaphthalene, and 2,2'-bis(2-hydroxyethoxy)-8,8'-di(2-naphthyl)-1,1'-binaphthalene, and particularly preferred is the compound of the following formula (a-2): BHEB-6N.

[0180] [ka]

[0181] R 1 and R 2When j and k are 1, examples of the diol component of formula (a) include (a-3): 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-thienyl)-1,1'-binaphthalene, 2,2'-bis(2-hydroxyethoxy)-6,6'-di(3-thienyl)-1,1'-binaphthalene, and the like. In particular, the following formula (a-3): 2,2'-bis(2-hydroxyethoxy)-6,6'-di(2-thienyl)-1,1'-binaphthalene (hereinafter also referred to as "BHEB-4,6T") is preferred.

[0182] [ka]

[0183] R 1 and R 2 When is a phenyl group and j and k are 2, examples of the diol component of formula (a) include (a-4): 2,2'-bis(2-hydroxyethoxy)-4,4',6,6'-tetraphenyl-1,1'-binaphthalene (hereinafter also referred to as "BHEB-4,6P").

[0184] [ka]

[0185] R 1 and R 2 When is a naphthyl group and j and k are 2, examples of the diol component of formula (a) include (a-5): 2,2'-bis(2-hydroxyethoxy)-4,4',6,6'-tetra(2-naphthyl)-1,1'-binaphthalene (hereinafter also referred to as "BHEB-4,6N").

[0186] [ka]

[0187] The diol component represented by formula (a) is preferably BHEB, BHEB-6T, BHEB-6P, BHEB-6N, BHEB-4,6P, or BHEB-4,6N, more preferably BHEB-6P, BHEB-6N, BHEB-4,6P, or BHEB-4,6N, and even more preferably BHEB-6P, BHEB-6N, or BHEB-4,6P. (Diol component of formula (5)) The diol component used as the raw material of formula (5) is mainly a diol component represented by formula (c), and may be used alone or in combination of two or more kinds.

[0188] [ka]

[0189] In the formula (c), the rings Z and R 1 , R 2 , Ar 1 , Ar 2 , L 1 , L 2 , j, k, m, and n are the same as those in the formula (5).

[0190] Representative examples of the diol component represented by the formula (c) are shown below, but the raw materials used in the formula (5) are not limited to these.

[0191] When Z is a benzene ring, examples thereof include those represented by the following formulas (c-1) to (c-14): Formula (c-1): 9,9-bis(4-(2-hydroxyethoxy)phenyl)fluorene (hereinafter also referred to as "BPEF"), Formula (c-2): 9,9-bis(4-(2-hydroxyethoxy)-3-phenylphenyl)fluorene (hereinafter also referred to as "BOPPEF"), Formula (c-3): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-diphenylfluorene (hereinafter also referred to as "BPDP2"), the following formula (c-4): 9,9-bis(4-hydroxyphenyl)-2,7-diphenylfluorene, the following formula (c-5): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-diphenylfluorene, the following formula (c-6): 9,9-bis(4-hydroxyphenyl)-3,6-diphenylfluorene, the following formula (c-7): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(1-naphthyl)fluorene fluorene (hereinafter also referred to as "BPDN1"); the following formula (c-8): 9,9-bis(4-hydroxyphenyl)-2,7-di(1-naphthyl)fluorene; the following formula (c-9): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-di(1-naphthyl)fluorene; the following formula (c-10): 9,9-bis(4-hydroxyphenyl)-3,6-di(1-naphthyl)fluorene; the following formula (c-11): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-di(1-naphthyl)fluorene )-2,7-di(2-naphthyl)fluorene (hereinafter also referred to as "BPDN2"), the following formula (c-12): 9,9-bis(4-hydroxyphenyl)-2,7-di(2-naphthyl)fluorene is more preferred, and examples thereof include the following formula (c-13): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-3,6-di(2-naphthyl)fluorene, the following formula (c-14): 9,9-bis(4-hydroxyphenyl)-3,6-di(2-naphthyl)fluorene, etc.

[0192] [ka]

[0193] [ka]

[0194]

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[0204] [ka]

[0205] [ka]

[0206] Ar 1 and Ar 2 When is a heteroaromatic group, an example of the diol component of formula (b) is 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(2-thienyl)fluorene of the following formula (c-15).

[0207] [ka]

[0208] When ring Z is a naphthalene ring, examples include the following formula (c-16): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)fluorene (hereinafter also referred to as "BNEF"), the following formula (c-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene), and (c-18) 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-di(2-naphthyl)fluorene.

[0209] [ka]

[0210] [ka]

[0211] [ka]

[0212] Examples of the diol component represented by formula (c) include BPEF, BOPPEF, BPDP2, BPDN1, BPDN2, the above formula (c-15): 9,9-bis(4-(2-hydroxyethoxy)phenyl)-2,7-di(2-thienyl)fluorene, BNEF, the above formula (c-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene), the above formula (c-18): 9,9-bis(6-(2-hydroxyethoxy) 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene) is preferred, BPEF, BPDP2, BPDN2, BNEF, and the above formula (c-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene) are more preferred, and BPEF, BPDP2, and the above formula (c-17): 9,9-bis(6-(2-hydroxyethoxy)-2-naphthyl)-2,7-diphenylfluorene) are even more preferred. (Other copolymerized diol components) The thermoplastic resin may be copolymerized with other diol components to the extent that the properties of the present invention are not impaired. The amount of the other diol components is preferably less than 30 mol %, 20 mol % or less, 10 mol % or less, or 5 mol % or less of all repeating units.

[0213] Other diol components used in the thermoplastic resin include ethylene glycol, propanediol, butanediol, pentanediol, hexanediol, heptanediol, octanediol, nonanediol, tricyclo[5.2.1.0 2,6 ]Decanedimethanol, cyclohexane-1,4-dimethanol, decalin-2,6-dimethanol, norbornane dimethanol, pentacyclopentadecanedimethanol, cyclopentane-1,3-dimethanol, spiroglycol, isosorbide, isomannide, isoidide, hydroquinone, resorcinol, bis(4-(2-hydroxyethoxy)phenyl)sulfone, 1,1'-bi-2-naphthol, dihydroxynaphthalene, bis(2-hydroxyethoxy)naphthalene, and the like are exemplified, and these may be used alone or in combination of two or more. (Carbonate component of formula (1) or formula (5)) The carbonic acid component introduced into the thermoplastic resin as the unit represented by formula (2) is preferably a carbonate-forming derivative such as phosgene or a carbonic acid diester, for example, diphenyl carbonate, ditolyl carbonate, bis(chlorophenyl) carbonate, and bis(m-cresyl) carbonate, with diphenyl carbonate being preferred. (Dicarboxylic acid component of formula (1) or formula (5)) The dicarboxylic acid component used in the units of the thermoplastic resin represented by formula (1) or (5) is preferably a dicarboxylic acid represented by HOOC-X-COOH or an ester-forming derivative thereof, where X represents a divalent linking group for providing the units of formula (1) or (5).

[0214] Representative specific examples of the dicarboxylic acid represented by the formula HOOC-X-COOH or an ester-forming derivative thereof include those in which the diols of the formulae (a) and (c) of the present invention are dicarboxylic acids or ester-forming derivatives thereof.

[0215] Dicarboxylic acid components used in the thermoplastic resin include aliphatic dicarboxylic acid components such as malonic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, methylmalonic acid, and ethylmalonic acid; monocyclic aromatic dicarboxylic acid components such as phthalic acid, isophthalic acid, and terephthalic acid; 2,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 2,3-naphthalenedicarboxylic acid, 1,4-naphthalenedicarboxylic acid, 1,8-naphthalenedicarboxylic acid, anthracene dicarboxylic acid, phenanthrene dicarboxylic acid, 2,2'-bis(carboxymethoxy)-1,1'-binaphthalene (hereinafter also referred to as "BCMB"), 9,9-bis(carboxymethyl)fluorene, 9,9-bis(2-carboxyethyl)fluorene, 9,9-bis(1-carboxyethyl)fluorene, 9,9-bis(1-carboxyethyl)fluorene, and the like. Examples of suitable dicarboxylic acid components include polycyclic aromatic dicarboxylic acid components such as 9,9-bis(2-carboxypropyl)fluorene, 9,9-bis(2-carboxypropyl)fluorene, 9,9-bis(2-carboxy-1-methylethyl)fluorene, 9,9-bis(2-carboxy-1-methylpropyl)fluorene, 9,9-bis(2-carboxybutyl)fluorene, 9,9-bis(2-carboxy-1-methylbutyl)fluorene, 9,9-bis(5-carboxypentyl)fluorene, and 9,9-bis(carboxycyclohexyl)fluorene; biphenyl dicarboxylic acid components such as 2,2'-biphenyl dicarboxylic acid; alicyclic dicarboxylic acid components such as 1,4-cyclohexane dicarboxylic acid and 2,6-decalin dicarboxylic acid; and isophthalic acid, terephthalic acid, 2,6-naphthalenedicarboxylic acid, and 2,2'-bis(carboxymethoxy)-1,1'-binaphthalene are preferred. These may be used alone or in combination of two or more. As the ester-forming derivative, acid chlorides and esters such as methyl esters, ethyl esters and phenyl esters may be used. <Manufacturing method> The thermoplastic resins of the present invention, i.e., polycarbonate resins, polyestercarbonate resins, and polyester resins, are produced by known reaction means for producing ordinary resins, for example, in the case of polycarbonate, a method of reacting a dihydroxy compound with a carbonate precursor such as a carbonate diester. <Thermoplastic resin - impurities> (residual phenol) The residual phenol content of the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 400 ppm, and even more preferably 1 to 300 ppm. The phenol content is preferably adjusted by the reaction time at a pressure of 1.3 kPa or less. If the reaction is not carried out at a vacuum of 1.3 kPa or less, the phenol content will be high. Furthermore, if the reaction time is too long, too much phenol will be distilled off from the resin.

[0216] The phenol content may be adjusted after the thermoplastic resin is obtained. For example, a method may be used in which the thermoplastic resin is dissolved in an organic solvent and the organic solvent layer is washed with water. Alternatively, a commonly used kneading device such as a single-screw or twin-screw extruder or various kneaders may be used to remove the volatile components at a pressure of 133 to 13.3 Pa and a temperature of 200 to 320°C. When the residual phenol content is appropriate, molding flowability can be improved without impairing heat resistance. Furthermore, the thermal stability when the resin is heated and melted is improved, and mold contamination during resin injection molding can be prevented. Furthermore, phenol has the tendency to discolor when oxidized. However, within this range, the color of the thermoplastic resin is less likely to deteriorate and molding flowability is improved. (Remaining palladium amount) The thermoplastic resin preferably does not contain palladium. The amount of palladium remaining in the thermoplastic resin is preferably 10 ppm or less, more preferably 5.0 ppm or less, 3.0 ppm or less, 1.0 ppm or less, or 0.5 ppm, and may be 0.0 ppm or more, 0.1 ppm or more, 0.2 ppm or more, or 0.5 ppm or more. If the amount of palladium remaining in the thermoplastic resin is appropriate, discoloration of the resin can be prevented.

[0217] Palladium compounds are used as catalysts for bonding aromatic substituents to binaphthalene-based units or fluorene-based units, and typically remain in thermoplastic resins containing binaphthalene-based units containing aromatic substituents or fluorene-based units containing aromatic substituents in their side chains. The present inventors have discovered that the amount of residual palladium is related to the coloration of the thermoplastic resin. To reduce the amount of residual palladium in the resin, a palladium removal treatment can be performed by adding zeolite, activated carbon, or the like to the monomer containing the palladium catalyst residue and / or the resin, thereby adsorbing the palladium catalyst residue. (Residual binaphthol) The residual binaphthol content in the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 300 ppm, still more preferably 1 to 100 ppm, and particularly preferably 1 to 50 ppm. When the residual binaphthol content in the thermoplastic resin is appropriate, discoloration of the resin can be prevented.

[0218] Binaphthol is used as a raw material in the production of monomers of binaphthalene-based constituent units, and remains if it cannot be completely removed during the production process. (Residual fluorenone) The residual fluorenone content in the thermoplastic resin is preferably 1 to 500 ppm, more preferably 1 to 300 ppm, even more preferably 1 to 100 ppm, particularly preferably 1 to 50 ppm, even more particularly preferably 1 to 30 ppm, and most preferably 1 to 10 ppm. When the residual fluorenone content in the thermoplastic resin is appropriate, discoloration of the resin can be prevented. Fluorenone is used as a raw material when producing monomers of fluorene-based component units, and will remain if it is not possible to remove all of it during the production process. <Optical components> The optical member of the present invention contains the above-mentioned thermoplastic resin. Such optical members are not particularly limited as long as they are used for optical applications in which the above-mentioned thermoplastic resin is useful, and examples thereof include optical disks, transparent conductive substrates, optical cards, sheets, films, optical fibers, lenses, prisms, optical films, substrates, optical filters, and hard coat films. Examples of films include optical films.

[0219] The optical member of the present invention may be composed of a resin composition containing the above-mentioned thermoplastic resin, and the resin composition may contain additives such as a heat stabilizer, a plasticizer, a light stabilizer, a polymerized metal deactivator, a flame retardant, a lubricant, an antistatic agent, a surfactant, an antibacterial agent, an ultraviolet absorber, and a mold release agent, as needed. <Imaging lens> The optical member of the present invention can particularly include an imaging lens, which is used in mobile phones, smartphones, tablet terminals, personal computers, digital cameras, video cameras, vehicle-mounted cameras, surveillance cameras, etc.

[0220] The imaging lens of the present invention can be molded and processed by any method such as injection molding, compression molding, injection compression molding, melt extrusion molding, casting, etc., but injection molding is particularly suitable.

[0221] The molding conditions for injection molding are not particularly limited, but the cylinder temperature of the molding machine is preferably 180 to 320° C., more preferably 220 to 300° C., and particularly preferably 240 to 280° C. The mold temperature is preferably 70 to 130° C., more preferably 80 to 125° C., and particularly preferably 90 to 120° C. The injection pressure is preferably 5 to 170 MPa, more preferably 50 to 160 MPa, and particularly preferably 100 to 150 MPa. [Example]

[0222] The present invention will be further described below with reference to examples, but the present invention is not limited thereto. <Aspect I of the present invention> Evaluation Method <Refractive index> 3 g of the obtained resin was dissolved in 50 ml of dichloromethane, cast onto a glass petri dish, and thoroughly dried at room temperature, followed by drying at a temperature of 120°C or lower for 8 hours to produce a film with a thickness of approximately 100 μm. The refractive index nD (wavelength: 589 nm) of the film at 25°C was measured using an ATAGO DR-M2 Abbe refractometer. <Oligomer amount> The molecular weight distribution was measured by gel permeation chromatography (GPC) according to the following method, and the proportion of polymers with a number average molecular weight of less than 1,500 was determined.

[0223] A solution was prepared by dissolving 10 mg of the obtained resin in 5 mL of chloroform. For each sample, the peak area ratio was calculated using GPC in terms of molecular weight converted to polystyrene, and the ratio of the peak area with a number average molecular weight of less than 1,500 to the total peak area was converted to mass%. The analysis was performed under the following measurement conditions. (Measurement conditions) Equipment: Tosoh Corporation HLC-8220 Column: Tosoh Corporation TSKgel SuperHZ4000, TSKgel SuperHZ3000, TSKgel SuperHZ2000 Flow rate: 0.350mL / min Detector: Tosoh UV-8020 Detection conditions: UV254nm Column temperature: 40.0℃ Eluent: Chloroform <Melt viscosity> Approximately 20 g of the resulting resin was dried at 120°C for 5 hours, and its viscosity (Pa·s) was measured at shear rates of 61, 122, 243, 608, 1,216, 2,432, 6,080, and 9,120 (1 / s) at 260°C using a Capillograph 1D manufactured by Toyo Seiki Seisaku-sho, Ltd. Table 1 shows the data for shear rates of 61 and 9,120 (1 / s). [Example 1] 89.86 parts by mass of BHEB, 43.09 parts by mass of BNEF, 32.19 parts by mass of BCMB, 52.70 parts by mass of diphenyl carbonate (hereinafter sometimes abbreviated as DPC), and 6.8 × 10 tetrabutoxytitanium (IV) -3 The mass parts were placed in a reactor equipped with a stirrer and distillation device. After three nitrogen purges, the jacket was heated to 200°C to melt the raw materials. Complete dissolution of the raw materials was confirmed 15 minutes after the start of heating, and the pressure was immediately reduced to 40 kPa over 20 minutes. The jacket was then heated to 240°C at a rate of 60°C / hr to carry out the transesterification reaction. While maintaining the jacket at 240°C, the pressure was reduced to 0.13 kPa over 70 minutes, and the polymerization reaction was carried out at 260°C and 0.13 kPa or less until the specified torque was reached. After the reaction was completed, the resulting resin was pelletized and extracted to obtain polyester carbonate resin pellets. The physical properties of the resulting polyester carbonate resin are shown in Table 1. [Examples 2 to 4] The composition was changed from Example 1 to Table 1 to obtain polyester carbonate resin pellets of Examples 2 to 4. The physical properties of the obtained resins are shown in Table 1. [Comparative Examples 1 to 4] The resins obtained in Examples 1 to 4 were dissolved in dichloromethane at a concentration of 0.1 g / mL, and the solution was added dropwise to a large amount of acetone while stirring to precipitate the resin, thereby producing a sample with reduced oligomer content. The physical properties of the obtained resins are shown in Table 1. "result" The evaluation results of the obtained resins in Examples and Comparative Examples are shown in Table 1. The melt viscosities of Example 1 and Comparative Example 1 at 260° C. are shown in FIG.

[0224] [Table 1]

[0225] The thermoplastic resins of Examples 1 to 4 had a very high refractive index and improved fluidity compared to when the amount of oligomers having a number average molecular weight of less than 1,500 was less than 1.0 mass %. <Aspect II of the present invention> Evaluation Method <Composition ratio> The resin obtained was analyzed using JNM-ECZ400S / L1 manufactured by JEOL Ltd. 1 1 H NMR spectrum was measured and calculated. Refractive index 3 g of the resulting resin was dissolved in 50 ml of methylene chloride and cast onto a glass Petri dish. After thorough drying at room temperature, it was dried at a temperature of 120°C or less for 8 hours to produce a film approximately 100 μm thick. The refractive index (nD) of the film at 25°C (wavelength: 589 nm) was measured using an ATAGO DR-M2 Abbe refractometer. * value> 1.0 g of the obtained resin was dissolved in 5 ml of methylene chloride, and the solution was analyzed by CIE1976 (L * a * b * The values ​​of the color system were measured using a Hitachi U-3310 spectrophotometer with a cell having an optical path length of 10 mm. <ICP emission measurement> The amounts of metal elements contained in the compounds obtained in the examples were measured using the following apparatus. Equipment used: Agilent Technologies Equipment: Agilent5100 ICP-OES <Method for synthesizing diol components using cross-coupling reactions> <Synthesis Method A: Synthesis of Diols of Formula (a-1) and Formula (a-2)> Formula (a-1) BHEB-6P and Formula (a-2) BHEB-6N were synthesized by the synthesis method described below. <Process A-1> A flask equipped with a stirrer, condenser, and thermometer was charged with 5.0 parts by weight of commercially available 6,6'-dibromo-1,1'-bi-2-naphthol (hereinafter sometimes abbreviated as BN-6Br), 2.3 parts by weight of ethylene carbonate, 0.16 parts by weight of potassium carbonate, and 15.0 parts by weight of toluene, and the reaction was carried out at 110°C for 5 hours. The progress of the reaction was monitored by HPLC as needed, and the reaction was terminated when the peak area of ​​BN-6Br relative to the total peak area was confirmed to be 0.1% or less. The resulting reaction mixture was diluted with 65 parts by weight of toluene, followed by the addition of 8.0 parts by weight of a 10% by weight aqueous sodium hydroxide solution and stirring at 85°C for 1 hour, after which the aqueous layer was separated and removed. The organic layer was concentrated, dissolved in ethyl acetate, washed with water, and the aqueous layer was separated and removed. Hexane was further added and the mixture was recrystallized as it was, yielding the target white solid, 2,2'-bis(2-hydroxyethoxy)-6,6'-dibromo-1,1'-binaphthalene (hereinafter sometimes abbreviated as BHEB-6Br). <Process A-2> Under a nitrogen atmosphere, a flask equipped with a stirrer, condenser, and thermometer was charged with 3.5 parts by mass of BHEB-6Br, 2.01 parts by mass of phenylboronic acid (for BHEB-6P synthesis) or 2.84 parts by mass of 2-naphthaleneboronic acid (for BHEB-6N synthesis), 0.112 parts by mass of tetrakis(triphenylphosphine)palladium, 9.0 parts by mass of 2M aqueous potassium carbonate, 28.6 parts by mass of toluene, and 9.5 parts by mass of ethanol. The reaction was allowed to proceed at 80°C for 2 hours. The progress of the reaction was monitored by HPLC as needed, and the reaction was terminated when the peak area of ​​BHEB-6Br relative to the total peak area was confirmed to be 0.1% or less. The resulting reaction mixture was concentrated, followed by the addition of 1M aqueous sodium hydroxide and extraction with chloroform. Activated carbon was added to the resulting organic layer and stirred for 1 hour to remove the palladium component. The activated carbon was then filtered off, and the organic layer was concentrated. After concentration, the mixture was purified by silica gel column chromatography to yield the desired product as white crystals. The amount of residual palladium was measured by ICP emission spectrometry, and was found to be 7 ppm in the case of BHEB-6P and 9 ppm in the case of BHEB-6N. <Synthesis Method B: Synthesis of Diols of Formula (a-1) and Formula (a-2)> Formula (a-1) BHEB-6P and formula (a-2) BHEB-6N were synthesized by the synthesis method described in Synthesis Method A, except that palladium removal treatment was not performed. As a result, the target gray crystals were obtained. The amount of residual palladium was measured by ICP spectrometry, and it was found to be 1210 ppm for BHEB-6P and 1050 ppm for BHEB-6N. <Synthesis Method C: Synthesis of Diol of Formula (a-4)> Formula (a-4) BHEB-4,6P was synthesized by the synthesis method described below. <Process C-1> A flask equipped with a stirrer, condenser, thermometer, and dropping funnel was charged with 133.2 parts by mass of chloroform, and 5.86 parts by mass of BHEB was added and dissolved at room temperature under a nitrogen atmosphere while stirring. Next, 25.0 parts by mass of bromine and 14.8 parts by mass of chloroform were added to the dropping funnel, and this solution was added dropwise to the system over 30 minutes. After the addition, the mixture was stirred for 4 hours to terminate the reaction. After the reaction, the reaction solution was quenched by adding saturated aqueous sodium bisulfite solution. The reaction solution was transferred to a separatory funnel and repeatedly washed with water until neutral. Then, hexane was added to the chloroform layer for recrystallization. The resulting crystals were purified using a column with tetrahydrofuran:hexane = 1:1 to obtain white crystals of 2,2'-bis(2-hydroxyethoxy)-4,4',6,6'-tetrabromo-1,1'-binaphthalene (hereinafter sometimes abbreviated as BHEB-4,6Br). <Process C-2> Under a nitrogen atmosphere, 4.0 parts by mass of BHEB-4,6Br obtained in step C-1, 3.11 parts by mass of phenylboronic acid, 0.067 parts by mass of tetrakis(triphenylphosphine)palladium, 14.0 parts by mass of 2M aqueous potassium carbonate, 25.1 parts by mass of toluene, and 7.9 parts by mass of ethanol were charged into a flask equipped with a stirrer, a condenser, and a thermometer, and the mixture was reacted at 80°C for 4 hours. The resulting reaction solution was concentrated and dissolved in chloroform, after which 1M aqueous sodium hydroxide solution was added and washed in a separatory funnel. The mixture was then repeatedly washed with water until neutral. Activated carbon was then added to the chloroform layer and stirred for 2 hours to remove the palladium component, after which the activated carbon was filtered off. The organic layer was then concentrated, recrystallized with hexane, and purified by silica gel column chromatography to obtain the target white crystals. The amount of residual palladium was measured by ICP spectrometry, and found to be 9 ppm. <Synthesis Method D: Synthesis of Diol of Formula (a-4)> Formula (a-4) BHEB-4,6P was synthesized by the synthesis method described in Synthesis Method C, except that palladium removal treatment was not performed. As a result, the target product, gray crystals, was obtained. The amount of remaining palladium was measured by ICP spectrometry and found to be 812 ppm.

[0226] Diols and dicarboxylic acids other than those mentioned above used in the following examples are either commercially available products or were produced by known methods.

[0227] [Example 5] The synthesized BHEB-6P was mixed with 52.66 parts by mass, diphenyl carbonate (hereinafter sometimes abbreviated as DPC) with 21.64 parts by mass, and sodium bicarbonate with 42.0 × 10 -5The mass parts were placed in a reactor equipped with a stirrer and a distillation device, and after nitrogen substitution three times, the jacket was heated to 180°C to melt the raw materials. After complete dissolution, the pressure was reduced to 20 kPa over 5 minutes, and the jacket was simultaneously heated to 260°C at a rate of 60°C / hr to carry out an ester exchange reaction. Thereafter, while maintaining the jacket at 260°C, the pressure was reduced to 0.13 kPa over 50 minutes, and a polymerization reaction was carried out under conditions of 260°C and 0.13 kPa or less until a predetermined torque was reached. After completion of the reaction, the produced resin was pelletized and extracted to obtain polycarbonate resin pellets. The polymer composition was 1 The properties of the resulting polycarbonate resin are shown in Table 2. [Examples 6 to 10 and Comparative Examples 5 to 8] The charging ratio was changed so as to obtain the polymer compositions shown in Table 2 from Example 5 to obtain polycarbonate resin pellets of Examples 6 to 10 and Comparative Examples 5 to 8. In these examples, the molar ratio of diol to DPC was 1:1.01. [Example 11] 31.6 parts by mass of BHEB-6P, 7.49 parts by mass of BHEB, 8.05 parts by mass of BCMB (2,2'-bis(carboxymethoxy)-1,1'-binaphthalene), 13.5 parts by mass of DPC, and 38.9 × 10 aluminum acetylacetonate as a polymerization catalyst. -3 Parts by mass and 85.4 x 10 diethyl 3,5-di-tert-butyl-4-hydroxybenzylphosphonate -3 Parts by mass were placed in a reactor equipped with a stirrer and distillation device, and after three nitrogen substitutions, the jacket was heated to 180°C to melt the raw materials. The pressure was then reduced to 40 kPa over 20 minutes, and the jacket was simultaneously heated to 260°C at a rate of 60°C / hr to carry out an ester exchange reaction. The pressure was then reduced to 0.13 kPa over 70 minutes, and the polymerization reaction was carried out until a predetermined torque was reached under conditions of 0.13 kPa or less. After the reaction was completed, the produced resin was pelletized and extracted to obtain polyester carbonate resin pellets. The compositional ratio of each diol component (BHEB-6P, BHEB), dicarboxylic acid (BCMB), and carbonic acid component (DPC) introduced into the polyester carbonate resin was: 1The properties of the polyester carbonate resin obtained are shown in Table 3.

[0228] [Examples 12 to 18 and Comparative Examples 9 to 11] The charging ratio was changed so as to obtain the polymer composition shown in Table 3. Furthermore, in Examples 14 and 17, the polymerization catalyst was titanium tetrabutoxide 1.70 × 10 -3 Polyester carbonate resin pellets and polyester resin pellets of Examples 12 to 18 and Comparative Examples 9 to 11 were obtained in the same manner as in Example 11 except that the amount was changed to parts by mass. "result" The evaluation results for the polycarbonate resin are shown in Table 2. The evaluation results for the polyester carbonate resin or polyester resin are shown in Table 3.

[0229] [Table 2]

[0230] [Table 3]

[0231] When comparing the thermoplastic resins of Examples 5 to 18 and Comparative Examples 5 to 11, it was found that the b* values ​​of all Examples were 30 or less, and had excellent hues for optical applications. Furthermore, the refractive index was found to be significantly higher than that of polycarbonate resins made of BHEB, which have been used for optical applications up to now.

Claims

1. A thermoplastic resin comprising a repeating unit represented by the following formula (1) and having a refractive index at a wavelength of 589 nm of 1.640 or more and 1.740 or less, wherein the repeating unit represented by the formula (1) accounts for 10 mol% or more and the content of oligomers having a number average molecular weight of less than 1,500 is 1.0 mass% or more, and the thermoplastic resin is a polyester carbonate. 【Chemistry 1】 (In the formula, R 1 and R 2 each independently represents a phenyl group, a naphthyl group, or a thienyl group; L 1 and L 2 each independently represents a divalent linking group, j and k each independently represent 1 or 2, m and n each independently represent 0 or 1, and W is at least one selected from the group represented by the following formula (2) or (3): 【Chemistry 2】 【Transformation 3】 (In the formula, X represents a divalent linking group.)

2. The thermoplastic resin according to claim 1, wherein the repeating unit represented by the formula (1) is 30 mol % or more and 90 mol % or less.

3. The thermoplastic resin according to claim 1 or 2, wherein the formula (1) is represented by the following formula (1-a) or (1-b): 【Chemistry 4】 (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1). 【Transformation 5】 (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1), and R 3 , R 4 are R 1 , R 2 is the same as

4. The thermoplastic resin according to any one of claims 1 to 3, comprising a repeating unit represented by the following formula (4): 【Transformation 6】 (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2 represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1), and j and k each independently represent an integer of 0 or more.

5. The thermoplastic resin according to any one of claims 1 to 4, wherein oligomers with a number average molecular weight of less than 1,500 are contained in an amount of 15% by mass or less.

6. The thermoplastic resin according to any one of claims 1 to 5, having a viscosity of 20 (Pa s) or more and 120 (Pa s) or less at a shear rate of 9,120 (1 / s) at 260 ° C.

7. The thermoplastic resin according to any one of claims 1 to 6, wherein the viscosity at a shear rate of 61 (1 / s) at 260 ° C. is 100 (Pa s) or more and 1,200 (Pa s) or less.

8. A thermoplastic resin comprising a repeating unit represented by the following formula (1), and having a refractive index at a wavelength of 589 nm of 1.640 or more and 1.740 or less, wherein a solution of the thermoplastic resin dissolved in methylene chloride at a concentration of 13% by mass (a solution obtained by dissolving 1.0 g of the thermoplastic resin in 5 ml of methylene chloride) has a b* value of 30.0 or less in the CIE 1976 (L*a*b*) color system, and a refractive index at a wavelength of 589 nm of 1.670 or more and 1.740 or less, and the thermoplastic resin is polyester carbonate: 【Transformation 7】 (In the formula, R 1 and R 2 each independently represents a phenyl group, a naphthyl group, or a thienyl group; L 1 and L 2 each independently represents a divalent linking group, j and k represent 1 or 2, m and n represent 0 or 1, and W represents at least one selected from the group represented by the following formula (2) or (3): 【Transformation 8】 【Chemistry 9】 (In the formula, X represents a divalent linking group.)

9. The thermoplastic resin according to claim 8, containing 20 mol% or more of the repeating unit represented by the formula (1).

10. The thermoplastic resin according to claim 8 or 9, wherein the formula (1) is represented by the following formula (1-a): 【Chemistry 10】 (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

11. The thermoplastic resin according to any one of claims 8 to 10, wherein the formula (1) is represented by the following formula (1-c): 【Chemistry 11】 (In the formula, R 1 and R 2 , L 1 and L 2 , m, n, and W are the same as those in the formula (1).

12. The thermoplastic resin according to any one of claims 8 to 11, comprising a repeating unit represented by the following formula (5): 【Chemistry 12】 (wherein ring Z may be the same or different and represents an aromatic hydrocarbon ring; Ar 1 and Ar 2 represents a hydrogen atom, a halogen atom, or an aromatic group which may contain a substituent, and R 1 and R 2 L each independently represents a hydrogen atom, a halogen atom, or a hydrocarbon group having 1 to 14 carbon atoms which may contain an aromatic group. 1 and L 2 each independently represents a divalent linking group, j and k each independently represents an integer of 1 or more, m and n each independently represents 0 or 1, and W is the same as in formula (1).

13. The thermoplastic resin according to any one of claims 1 to 12, wherein the specific viscosity of the thermoplastic resin is 0.12 to 0.

40.

14. The thermoplastic resin according to any one of claims 1 to 13, wherein the glass transition temperature of the thermoplastic resin is 130 to 170 ° C.

15. The thermoplastic resin according to any one of claims 1 to 14, wherein the amount of residual palladium in the thermoplastic resin is 10 ppm or less.

16. An optical member comprising the thermoplastic resin according to any one of claims 1 to 15.

17. The optical element according to claim 16, which is a lens.

18. The optical member according to claim 16 , which is an optical film.

19. 18. The optical member according to claim 17, which is an imaging lens for use in any one of a mobile phone, a smartphone, a tablet terminal, a personal computer, a digital camera, a video camera, an in-vehicle camera, and a surveillance camera.

Citation Information

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