Fluoropolyether group-containing silane compound
The fluoropolyether group-containing silane compound addresses the limitations of existing surface treatment layers by enhancing their physical properties, such as water and oil repellency, and antifouling capabilities, through the incorporation of a fluoropolyether group and a hydrolyzable group.
Patent Information
- Application Number
- JP2025040237
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-03-30
- Filing Date
- 2025-03-13
- Publication Date
- 2025-05-30
AI Technical Summary
The existing surface treatment layers formed from fluorine-containing silane compounds lack improved physical properties such as enhanced water repellency, oil repellency, and antifouling properties.
A fluoropolyether group-containing silane compound is developed, represented by specific chemical formulas (A1) and (A2), which incorporate a fluoropolyether group and a hydrolyzable group, enhancing the physical properties of the surface treatment layer.
The fluoropolyether group-containing silane compound improves the physical properties of the surface treatment layer, including chemical durability, frictional durability, water repellency, oil repellency, and antifouling properties, resulting in a more effective and long-lasting coating.
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Figure 2025083498000002 
Figure 2025083498000003
Abstract
Description
Technical Field
[0001] The present disclosure relates to a fluoropolyether group-containing silane compound.
Background Art
[0002] It is known that certain fluorine-containing silane compounds can provide excellent water repellency, oil repellency, antifouling properties, etc. when used for surface treatment of a substrate. A layer obtained from a surface treatment agent containing a fluorine-containing silane compound (hereinafter also referred to as a "surface treatment layer") is applied as a so-called functional thin film to various substrates such as glass, plastic, fiber, building materials, etc.
[0003] As such a fluorine-containing compound, a fluoropolyether group-containing silane compound having a fluoropolyether group in the molecular main chain and a hydrolyzable group bonded to the Si atom at the molecular terminal or terminal portion is known (Patent Document 1).
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0005] The above surface treatment layer is required to have further better physical properties. The present disclosure provides a fluoropolyether group-containing silane compound that can contribute to the formation of a surface treatment layer having better physical properties.
Means for Solving the Problems
[0006] The present disclosure provides the following [1] to
[19] . [1] The following formula (A1) or (A2):
Chemical Formula
Chemical formula
[10] n55 is 1, the fluoropolyether group-containing silane compound according to any one of [1] to [9].
[11] n54 and n55 are 0, the fluoropolyether group-containing silane compound according to any one of [1] to [9].
[12] A surface treatment agent containing at least one selected from the group consisting of the fluoropolyether group-containing silane compound according to any one of [1] to
[11] , and a condensate in which at least a part of the fluoropolyether group-containing silane compound is condensed.
[13] A surface treatment agent containing the fluoropolyether group-containing silane compound according to any one of [1] to
[11] .
[14] An article including a substrate and a layer formed on the surface of the substrate from the fluoropolyether group-containing silane compound according to any one of [1] to
[11] or the surface treatment agent according to
[12] or
[13] .
[15] Formula (a11) or formula (a12):
Chemical formula
Chemical formula
Chemical formula
[16] Formula (a31) or formula (a32):
Chemical formula
Chemical formula
Chemical formula
[17] Formula (a23) or formula (a24):
Chemical formula
Chemical formula
[18] Formula (a23) or formula (a24):
Chemical formula
[19] Formula (a27) or formula (a28):
Chemical formula
Advantages of the Invention
[0007] According to the present disclosure, a fluoropolyether group-containing silane compound capable of contributing to the formation of a surface treatment layer having better physical properties can be provided.
Embodiments for Carrying Out the Invention
[0008] As used herein, the “monovalent organic group” means a monovalent group containing carbon. The monovalent organic group is not particularly limited, and may be a hydrocarbon group or a derivative thereof. The derivative of the hydrocarbon group means a group having one or more N, O, S, Si, amide, sulfonyl, siloxane, carbonyl, carbonyloxy, etc. at the terminal or in the molecular chain of the hydrocarbon group. As used herein, the “divalent organic group” is not particularly limited, and examples thereof include a divalent group obtained by further removing one hydrogen atom from a hydrocarbon group.
[0009] As used herein, the “hydrocarbon group” means a group containing carbon and hydrogen, and a group obtained by removing one hydrogen atom from a molecule. Such hydrocarbon groups are not particularly limited, and examples thereof include hydrocarbon groups having 1 to 20 carbon atoms which may be substituted by one or more substituents, such as aliphatic hydrocarbon groups and aromatic hydrocarbon groups. The above “aliphatic hydrocarbon group” may be linear, branched or cyclic, and may be saturated or unsaturated. Further, the hydrocarbon group may contain one or more ring structures. Incidentally, such a hydrocarbon group may have one or more N, O, S, Si, amide, sulfonyl, siloxane, carbonyl, carbonyloxy, etc. at its terminal or in the molecular chain.
[0010] As used herein, the substituents of the “hydrocarbon group” are not particularly limited, and examples thereof include halogen atoms; C 1-6 alkyl groups, C 2-6 alkenyl groups, C 2-6 alkynyl groups, C 3-10A cycloalkyl group, C 3-10 An unsaturated cycloalkyl group, a 5- to 10-membered heterocyclyl group, a 5- to 10-membered unsaturated heterocyclyl group, C 6-10 One or more groups selected from an aryl group and a 5- to 10-membered heteroaryl group are exemplified.
[0011] In the present specification, unless otherwise specified, the alkyl group and the phenyl group may be unsubstituted or substituted. The substituents of such groups are not particularly limited, and examples thereof include, for example, a halogen atom, C 1-6 An alkyl group, C 2-6 An alkenyl group and C 2-6 One or more groups selected from an alkynyl group are exemplified.
[0012] In the present specification, the "hydrolyzable group" means a group that can undergo a hydrolysis reaction when used in the present specification, that is, a group that can be detached from the main skeleton of the compound by a hydrolysis reaction. Examples of the hydrolyzable group include -OR h 、-OCOR h 、-O-N=CR h 2 、-NR h 2 、-NHR h 、-NCO, halogen (in these formulas, R h represents a substituted or unsubstituted C 1-4 alkyl group), etc., and preferably -OR h1 (that is, an alkoxy group). Examples of R h1 include unsubstituted alkyl groups such as a methyl group, an ethyl group, a propyl group, an isopropyl group, an n-butyl group, and an isobutyl group; and substituted alkyl groups such as a chloromethyl group. Among them, an alkyl group, particularly an unsubstituted alkyl group, is preferable, and a methyl group or an ethyl group is more preferable. In one aspect, the hydrolyzable group is a methoxy group. In another aspect, the hydrolyzable group is an ethoxy group.
[0013] (Fluoropolyether group-containing silane compound) The fluoropolyether group-containing silane compound of the present disclosure is a compound represented by the following formula (A1) or (A2).
Chemical formula
[0014] In formula (A1), R F1 is represented by Rf 1 -R F -O q -.
[0015] In formula (A2), R F2 is represented by -Rf 2 p -R F -O q -.
[0016] Rf 1 is a C 1-16 alkyl group which may be substituted by one or more fluorine atoms.
[0017] The "C 1-16 alkyl group" in the above-mentioned C 1-16 alkyl group which may be substituted by one or more fluorine atoms may be linear or branched, preferably a linear or branched C 1-6 alkyl group, particularly a C 1-3 alkyl group, more preferably a linear C 1-6 alkyl group, particularly a C 1-3 alkyl group.
[0018] The above Rf 1 is preferably a C 1-16 alkyl group substituted by one or more fluorine atoms, more preferably a CF 2 H-C 1-15 perfluoroalkylene group, and even more preferably a C 1-16 perfluoroalkyl group.
[0019] The above C 1-16The perfluoroalkyl group may be linear or branched, preferably a linear or branched C 1-6 perfluoroalkyl group, especially C 1-3 perfluoroalkyl group, more preferably a linear C 1-6 perfluoroalkyl group, especially C 1-3 perfluoroalkyl group, specifically -CF 3 -, -CF 2 CF 3 -, or -CF 2 CF 2 CF 3 .
[0020] Rf 2 is an alkylene group which may be substituted by one or more fluorine atoms. 1-6
[0021] In the above alkylene group which may be substituted by one or more fluorine atoms, the "C 1-6 alkylene group" may be linear or branched, preferably a linear or branched C 1-6 alkylene group, more preferably a linear C 1-3 alkylene group. 1-3
[0022] The above Rf 2 is preferably an alkylene group substituted by one or more fluorine atoms, more preferably a C 1-6 perfluoroalkylene group, still more preferably a C 1-6 perfluoroalkylene group. 1-3
[0023] The above C 1-6 perfluoroalkylene group may be linear or branched, preferably a linear or branched C 1-3 perfluoroalkylene group, more preferably a linear C 1-3 perfluoroalkylene group, specifically -CF 2 -, -CF 2 CF2 - or -CF 2 CF 2 CF 2 - is.
[0024] In the above formula, p is 0 or 1. In one embodiment, p is 0. In another embodiment, p is 1.
[0025] In the above formula, q is, in each occurrence, independently of each other, 0 or 1. In one embodiment, q is 0. In another embodiment, q is 1.
[0026] In the above formulas (A1) and (A2), R F is, in each occurrence, independently of each other, a fluoropolyether group represented by the following formula. Note that the structure described as R F is bonded to the structure represented by Rf on the left side in formula (A1), and is bonded to the structure represented by Rf on the left side in formula (A2). 1 is bonded to the structure represented by Rf on the left side in formula (A2). 2 p is bonded to the structure represented by Rf on the left side in formula (A2). -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - [Wherein: R Fa is, in each occurrence, independently of each other, a hydrogen atom, a fluorine atom or a chlorine atom, a, b, c, d, e and f are each independently an integer from 0 to 200, and the sum of a, b, c, d, e and f is 1 or more. The order of existence of each repeating unit enclosed in parentheses with a, b, c, d, e or f is arbitrary in the formula.]
[0027] R Fa is preferably a hydrogen atom or a fluorine atom, more preferably a fluorine atom.
[0028] a, b, c, d, e and f may preferably each independently be an integer from 0 to 100.
[0029] The sum of a, b, c, d, e and f is preferably 5 or more, more preferably 10 or more, and may be, for example, 15 or more or 20 or more. The sum of a, b, c, d, e and f is preferably 200 or less, more preferably 100 or less, still more preferably 60 or less, and may be, for example, 50 or less or 30 or less.
[0030] These repeating units may be linear or branched, but are preferably linear. For example, -(OC 6 F 12 )- is, for example, -(OCF 2 CF 2 CF 2 CF 2 CF 2 CF 2 )-, -(OCF(CF 3 )CF 2 CF 2 CF 2 CF 2 )-, -(OCF 2 CF(CF 3 )CF 2 CF 2 CF 2 )-, -(OCF 2 CF 2 CF(CF 3 )CF 2 CF 2 )-, -(OCF 2 CF 2 CF 2 CF(CF 3 )CF 2 )-, -(OCF 2 CF 2 CF 2 CF 2 CF(CF 3))-etc. are also possible, but preferably -(OCF 2 CF 2 CF 2 CF 2 CF 2 CF 2 )-is. -(OC 5 F 10 )-is -(OCF 2 CF 2 CF 2 CF 2 CF 2 )-,-(OCF(CF 3 )CF 2 CF 2 CF 2 )-,-(OCF 2 CF(CF 3 )CF 2 CF 2 )-,-(OCF 2 CF 2 CF(CF 3 )CF 2 )-,-(OCF 2 CF 2 CF 2 CF(CF 3 ))-etc. are also possible, but preferably -(OCF 2 CF 2 CF 2 CF 2 CF 2 )-is. -(OC 4 F 8 )-is -(OCF 2 CF 2 CF 2 CF 2 )-,-(OCF(CF 3 )CF 2 CF 2 )-,-(OCF 2 CF(CF 3 )CF 2 )-,-(OCF 2 CF 2 CF(CF 3 ))-,-(OC(CF 3 ) 2 CF 2 )-,-(OCF 2 C(CF 3 ) 2 )-,-(OCF(CF 3)CF(CF 3 ))-, -(OCF(C 2 F 5 )CF 2 ) - and -(OCF 2 CF(C 2 F 5 )) - may be any of them, but preferably -(OCF 2 CF 2 CF 2 CF 2 ) -. -(OC 3 F 6 ) - (that is, in the above formula, R Fa is a fluorine atom) is -(OCF 2 CF 2 CF 2 ) -, -(OCF(CF 3 )CF 2 ) - and -(OCF 2 CF(CF 3 )) - may be any of them, but preferably -(OCF 2 CF 2 CF 2 ) -. Also, -(OC 2 F 4 ) - may be either -(OCF 2 CF 2 ) - and -(OCF(CF 3 )) - any of them, but preferably -(OCF 2 CF 2 ) -.
[0031] In one aspect, R F is, in each occurrence, independently of each other, the following formula (f1), (f2), (f3), (f4) or (f5): -(OC 3 F 6 ) d -(OC 2 F 4 ) e - (f1) [Wherein, d is an integer from 1 to 200, and e is 0 or 1, preferably 1.] -(OC 4 F 8 ) c -(OC 3 F6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - (f2) [wherein, c and d are each independently an integer of 0 or more and 30 or less, e and f are each independently an integer of 1 or more and 200 or less, the sum of c, d, e and f is 2 or more, the order of presence of each repeating unit enclosed in parentheses with subscripts c, d, e or f is arbitrary in the formula.] -(R 6 -R 7 ) g - (f3) [wherein, R 6 is OCF 2 or OC 2 F 4 and R 7 is a group selected from OCF 2 F 4 , OCF 3 F 6 , OCF 4 F 8 , OCF 5 F 10 and OCF 6 F 12 or a combination of two or three groups independently selected from these groups, g is an integer of 2 to 100.] -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - (f4) [wherein e is an integer of 1 or more and 200 or less, and a, b, c, d, and f are each independently an integer of 0 or more and 200 or less, and the sum of a, b, c, d, e, and f is at least 1, and the order of existence of each repeating unit enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula.] -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - (f5) [wherein f is an integer of 1 or more and 200 or less, and a, b, c, d, and e are each independently an integer of 0 or more and 200 or less, and the sum of a, b, c, d, e, and f is at least 1, and the order of existence of each repeating unit enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula.] is a group represented by.
[0032] In the above formula (f1), d is preferably an integer of 5 to 200, more preferably 10 to 100, still more preferably 15 to 50, for example 25 to 35. (OC 3 F 6 ) in the above formula (f1) is preferably a group represented by (OCF 2 CF 2 CF 2 ) or (OCF(CF 3 )CF 2 ), and more preferably a group represented by (OCF 2 CF 2 CF 2 ). (OC 2 F 4 ) in the above formula (f1) is preferably a group represented by (OCF 2 CF 2) or a group represented by (OCF(CF 3 )) and more preferably a group represented by (OCF 2 CF 2 ).
[0033] In the above formula (f2), e and f are each independently preferably an integer of 5 or more and 200 or less, more preferably 10 to 200. Further, the sum of c, d, e and f is preferably 5 or more, more preferably 10 or more, and may be, for example, 15 or more or 20 or more. In one embodiment, the above formula (f2) is preferably -(OCF 2 CF 2 CF 2 CF 2 ) c -(OCF 2 CF 2 CF 2 ) d -(OCF 2 CF 2 ) e -(OCF 2 ) f -represented group. In another embodiment, the formula (f2) may be a group represented by -(OC 2 F 4 ) e -(OCF 2 ) f -.
[0034] In the above formula (f3), R 6 is preferably OC 2 F 4 . In the above (f3), R 7 is preferably a group selected from OC 2 F 4 , OC 3 F 6 and OC 4 F 8 , or a combination of two or three groups independently selected from these groups, and more preferably a group selected from OC 3 F 6 and OC 4 F 8 . OC 2 F4 , O.C. 3 F 6 and O.C. 4 F 8 Examples of the combination of two or three groups independently selected from the group consisting of, but not limited to, -OC 2 F 4 O.C. 3 F 6 -, -OC 2 F 4 O.C. 4 F 8 -, -OC 3 F 6 O.C. 2 F 4 -, -OC 3 F 6 O.C. 3 F 6 -, -OC 3 F 6 O.C. 4 F 8 -, -OC 4 F 8 O.C. 4 F 8 -, -OC 4 F 8 O.C. 3 F 6 -, -OC 4 F 8 O.C. 2 F 4 -, -OC 2 F 4 O.C. 2 F 4 O.C. 3 F 6 -, -OC 2 F 4 O.C. 2 F 4 O.C. 4 F 8 -, -OC 2 F 4 O.C. 3 F 6 O.C. 2 F 4 -, -OC 2 F 4 O.C. 3 F 6 O.C. 3 F 6 -, -OC 2 F 4 O.C.4 F 8 OC 2 F 4 -, -OC 3 F 6 OC 2 F 4 OC 2 F 4 -, -OC 3 F 6 OC 2 F 4 OC 3 F 6 -, -OC 3 F 6 OC 3 F 6 OC 2 F 4 -, and -OC 4 F 8 OC 2 F 4 OC 2 F 4 - etc. are exemplified. In the above formula (f3), g is preferably an integer of 3 or more, more preferably 5 or more. The above g is preferably an integer of 50 or less. In the above formula (f3), OC 2 F 4 , OC 3 F 6 , OC 4 F 8 , OC 5 F 10 and OC 6 F 12 may be either linear or branched, preferably linear. In this embodiment, the above formula (f3) is preferably -(OC 2 F 4 -OC 3 F 6 ) g - or -(OC 2 F 4 -OC 4 F 8 ) g -.
[0035] In the above formula (f4), e is preferably an integer of 1 or more and 100 or less, more preferably 5 or more and 100 or less. The sum of a, b, c, d, e, and f is preferably 5 or more, more preferably 10 or more, for example, 10 or more and 100 or less.
[0036] In the above formula (f5), f is preferably an integer of 1 or more and 100 or less, more preferably 5 or more and 100 or less. The sum of a, b, c, d, e, and f is preferably 5 or more, more preferably 10 or more, for example, 10 or more and 100 or less.
[0037] In one aspect, the above R F is a group represented by the above formula (f1).
[0038] In one aspect, the above R F is a group represented by the above formula (f2).
[0039] In one aspect, the above R F is a group represented by the above formula (f3).
[0040] In one aspect, the above R F is a group represented by the above formula (f4).
[0041] In one aspect, the above R F is a group represented by the above formula (f5).
[0042] In a preferred aspect, R F is the formula (f2): -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - It is a group represented by the formula. In the formula, c and d are each independently an integer of 0 or more and 30 or less, e and f are each independently an integer of 1 or more and 200 or less, preferably 5 or more and 200 or less, more preferably 10 or more and 200 or less, and the order of presence of each repeating unit enclosed in parentheses with subscript e or f is arbitrary in the formula. R F is, more specifically, -(OC 2 F 4 ) e -(OCF 2 ) f - and may be a group represented by.
[0043] In the above R F , the ratio of e to f (hereinafter referred to as "e / f ratio") is 0.1 to 10, preferably 0.2 to 5, more preferably 0.2 to 2, still more preferably 0.2 to 1.5, and even more preferably 0.2 to 0.85. By setting the e / f ratio to 10 or less, the slipperiness, friction durability, and chemical resistance (for example, durability against artificial sweat) of the cured layer (for example, the surface treatment layer) obtained from the compound containing R F are further improved. The smaller the e / f ratio, the more improved the slipperiness and friction durability of the surface treatment layer. On the other hand, by setting the e / f ratio to 0.1 or more, the stability of the above compound can be further enhanced. The larger the e / f ratio, the more improved the stability of the above compound. In this case, the value of f is 1 or more.
[0044] In one aspect, the above e / f ratio is preferably 0.2 to 0.95, more preferably 0.2 to 0.9.
[0045] In one aspect, the above e / f ratio is preferably 0.20 or more and less than 1.0, more preferably 0.20 to 0.95, more preferably 0.20 to 0.90, still more preferably 0.40 to 0.80, and particularly preferably 0.50 to 0.70.
[0046] In one aspect, the e / f ratio is preferably from 0.20 to 0.80, more preferably from 0.30 to 0.70. In another aspect, the e / f ratio is from 0.50 to 0.80.
[0047] In one aspect, from the viewpoint of heat resistance, the e / f ratio is preferably 1.0 or more, more preferably from 1.0 to 2.0.
[0048] In one aspect, the e / f ratio is from 0.2 to 1.5, preferably from 0.5 to 1.1.
[0049] Regarding the above R F the e / f ratio may be less than 1.0, may be 0.95 or less, may be 0.90 or less, may be less than 0.90, for example, may be 0.8 or less, 0.70 or less. The e / f ratio is preferably 0.20 or more, more preferably 0.30 or more, still more preferably 0.40 or more, particularly preferably 0.50 or more. The e / f ratio can be, for example, from 0.20 to less than 1.0, for example, from 0.20 to 0.95 or less, from 0.20 to less than 0.90, specifically from 0.40 to 0.80, more specifically from 0.50 to 0.70 or less. If the e / f ratio becomes too low, the hydrolyzability of the cured layer (or cured film; the same applies hereinafter) formed using the fluoropolyether group-containing silane compound of the present disclosure may increase, and the durability of the cured layer may decrease. If the e / f ratio becomes too high, the coefficient of kinetic friction of the cured layer formed using the fluoropolyether group-containing silane compound of the present disclosure may increase, and a cured layer having sufficient frictional durability may not be obtained.
[0050] In a preferred aspect, R F is -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f- (f2) is a group represented by (where c and d are each independently an integer of 0 or more and 30 or less, e and f are each independently an integer of 1 or more and 200 or less, preferably 5 or more and 200 or less, more preferably 10 or more and 200 or less, and the order of existence of each repeating unit enclosed in parentheses with subscript e or f is arbitrary in the formula), the e / f ratio is 0.20 or more and less than 1.0, more preferably 0.20 to 0.95, more preferably 0.20 to 0.90, still more preferably 0.40 to 0.80, and particularly preferably 0.50 to 0.70. R F is, more specifically, -(OC 2 F 4 ) e -(OCF 2 ) f - and may be a group represented by By using a compound having R F as described above, the chemical durability (chemical resistance), frictional durability, water repellency, oil repellency, antifouling property (e.g., preventing the adhesion of dirt such as fingerprints), waterproof property (preventing the intrusion of water into electronic components, etc.), or surface slipperiness (or lubricity, e.g., the wipe-off property of dirt such as fingerprints and the excellent touch feeling against fingers) of the cured layer formed using the compound is improved. This is considered to be because the coefficient of kinetic friction of the surface of the cured layer formed from the compound becomes small by using a compound having R F as described above.
[0051] In one aspect, R F is -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - (f2) a group represented by (wherein c and d are each independently an integer of 0 or more and 30 or less, e and f are each independently an integer of 1 or more and 200 or less, preferably 5 or more and 200 or less, more preferably 10 or more and 200 or less, and the order of presence of each repeating unit enclosed in parentheses with subscript e or f is arbitrary in the formula), The e / f ratio is from 0.20 to 0.80, more preferably from 0.30 to 0.70.
[0052] In one embodiment, e may be an integer of 10 or more and 100 or less, and f may be an integer of 11 or more and 100 or less, or e may be an integer of 15 or more and 70 or less, and f may be an integer of 21 or more and 95 or less.
[0053] In one embodiment, the sum of e and f is preferably 20 or more, more preferably 30 or more, particularly preferably 40 or more.
[0054] In another embodiment, the sum of e and f is preferably 100 or more, more preferably 120 or more, still more preferably 130 or more, particularly preferably 140 or more.
[0055] In one embodiment, the sum of e and f is preferably 200 or less, more preferably 180 or less, still more preferably 160 or less, particularly preferably 150 or less.
[0056] R F1 and R F2 The number average molecular weight of the part is not particularly limited, but for example, it is 500 to 30,000, preferably 1,500 to 30,000, more preferably 2,500 to 30,000, still more preferably 4,000 to 30,000. R F1 and R F2 The number average molecular weight of the part may be, for example, 2,500 to 20,000, 2,500 to 15,000, 3,000 to 15,000, 2,000 to 10,000. In the present specification, R F1 and R F2 The number average molecular weight of 19Let it be the value measured by F-NMR.
[0057] In another aspect, R F1 and R F2 The number average molecular weight of the moiety can be 500 to 30,000, preferably 1,000 to 20,000, more preferably 2,000 to 15,000, even more preferably 2,000 to 10,000, for example 3,000 to 6,000.
[0058] In another aspect, R F1 and R F2 The number average molecular weight of the moiety can be 6,000 to 30,000, preferably 6,000 to 20,000, more preferably 7,000 to 20,000, even more preferably 8,000 to 15,000, particularly preferably 9,000 to 15,000, more preferably 10,000 to 15,000. R F1 and R F2 The number average molecular weight of the moiety may be in the range of, for example, 6,000 to 15,000.
[0059] In one aspect, in the fluoropolyether group-containing silane compound of the present disclosure, R F1 and R F2 The number average molecular weight of the moiety is in the range of 6,000 to 20,000, and the e / f ratio is in the range of 0.50 to 0.80; Preferably, R F1 and R F2 The number average molecular weight of the moiety is in the range of 6,000 to 15,000, and the e / f ratio is in the range of 0.50 to 0.70; More preferably, R F1 and R F2 The number average molecular weight of the moiety is in the range of 10,000 to 15,000, and the e / f ratio is in the range of 0.50 to 0.70. In this aspect, preferably, R F is -(OC 4 F 8 ) c -(OC 3 F 6 ) d -(OC 2 F4 ) e -(OCF 2 ) f -represents a group. Here, for example, c and d are each independently an integer of 0 or more and 30 or less, e is an integer in the range of 20 to 70, and f is an integer in the range of 45 to 120. Such a fluoropolyether group-containing silane compound can contribute to the formation of a cured layer (for example, a surface treatment layer) exhibiting extremely high lubricity and slipperiness due to a low coefficient of kinetic friction.
[0060] In the present disclosure, R F1 or R F2 and the group represented by CR Si 2 (OR 11 ) are bonded by a group represented by -X 1 -. Here, the group represented by R F1 or R F2 is a group containing a fluoropolyether group that mainly provides water repellency and surface slipperiness, etc., and the group represented by CR Si 2 (OR 11 ) includes a silane moiety that provides the ability to bond to a substrate. X 1 is, in each occurrence, independently the following formula (X): -(CR 50 2 ) n51 -(CR 51 =CR 52 ) n52 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 - ··(X) represented by. By having such X 1 , the flexibility, wear resistance, wettability spreadability on a substrate, and adhesion to a substrate of a cured layer formed using the fluoropolyether group-containing silane compound represented by formula (A1) and / or the fluoropolyether group-containing silane compound represented by formula (A2) can be improved. Note that in this specification, X1 The left side of the structure described as has R F1 or R F2 represented by a group, and the right side is CR Si 2 (OR 11 ) represented by a group, respectively binds.
[0061] n51 is an integer from 0 to 10, preferably an integer from 0 to 5. n52 is an integer from 0 to 10, preferably an integer from 0 to 5. n53 is an integer from 0 to 10, preferably an integer from 0 to 5. However, the order of existence of each repeating unit enclosed in parentheses with n51, n52 or n53 is arbitrary in the formula, and the sum of n51, n52 and n53 is 1 or more.
[0062] In one embodiment, n51 is an integer from 1 to 10, for example, an integer from 1 to 6.
[0063] In one embodiment, n51 is an integer from 1 to 5. In one embodiment, n51 is 2.
[0064] In one embodiment, n51 is an integer from 3 to 5, for example 4 or 5.
[0065] In one embodiment, n51 is an integer from 1 to 10, preferably an integer from 1 to 5; n52 and n53 are 0.
[0066] In one embodiment, n51 is an integer from 3 to 5, for example 4 or 5; n52 and n53 are 0.
[0067] n54 is each independently 0 or 1.
[0068] n55 is each independently 0 or 1.
[0069] In one aspect, n51 is an integer from 1 to 10, preferably an integer from 1 to 5; n52 is 0; n53 is 1. In this aspect, for example, n54 is 1.
[0070] In one aspect, n51 is 0; n52 is 0; n53 is 1. In this aspect, for example, n54 is 1.
[0071] In one aspect, n51 is an integer from 1 to 10, preferably an integer from 1 to 5; n52 is 0; n53 is 1. In this aspect, for example, n54 is 0.
[0072] In one aspect, n54 is 0 or 1.
[0073] In one aspect, n55 is 0 or 1.
[0074] In one aspect, n55 is 1.
[0075] In another aspect, n54 and n55 are 0.
[0076] R 51 is, independently of each other, a hydrogen atom or a monovalent organic group, preferably a hydrogen atom or a C 1-3 alkyl group. In one aspect, R 51 is a hydrogen atom. In one aspect, R 51 is a methyl group.
[0077] R 52 is, in each occurrence, independently of each other, a hydrogen atom or a monovalent organic group, preferably a hydrogen atom or a C 1-3 alkyl group. In one aspect, R 52 is a hydrogen atom. In one aspect, R 52 is a methyl group.
[0078] In one aspect, R 51 and R52 is a hydrogen atom.
[0079] Y 51 is, in each occurrence, independently of one another, O, CONR 15 , NR 15 , S, or an arylene group, preferably O, CONR 15 , or NR 15 and more preferably O. R 15 is, in each occurrence, independently of one another, a hydrogen atom, a group having an aromatic ring, a C 1-6 alkyl group, -O-C 1-6 alkyl group or C 3-10 cycloalkyl group, preferably a hydrogen atom. Examples of the group having an aromatic ring include a phenyl group. Examples of the arylene group include a C 6-10 arylene group, and specifically, a phenylene group and a phenylene group having a substituent can be mentioned. Examples of the substituent include a halogen, an alkyl group (e.g., a C 1-4 alkyl group), a monovalent group derived from a heterocycle (e.g., a monovalent group derived from piperidine, piperazine, morpholine, dioxane, dithiane, pyrrolidine, oxazolidine, isoxazolidine, thiazolidine, isothiazolidine, imidazolidine, or pyrazolidine), and a phenoxy group. In addition, when Y 51 has a ring structure, the bonding position between Y 51 and another part of X 1 , or the bonding position between Y 51 and R F1 , R F2 or CRSi 2 (OR 11 ) is not particularly limited.
[0080] In one embodiment, Y 51 is O. In one embodiment, Y 51 is a phenylene group.
[0081] In one embodiment, Y 51is CONR 15 is the case.
[0082] R 50 is, in each occurrence, independently of one another, a hydrogen atom, a halogen atom, a hydroxyl group, or a monovalent organic group.
[0083] In one embodiment, R 50 is a hydrogen atom. In one embodiment, R 50 is a halogen atom. In one embodiment, R 50 is a monovalent organic group.
[0084] R 50 is preferably, in each case independently of one another, a hydrogen atom, a halogen atom (for example, F, Cl, Br, I), a hydroxyl group, -O-(R 14 -O) n4 -R 14’ , or a C 1-4 alkyl group. In the formula, R 14 is, in each case independently of one another, a C 1-4 alkylene group, n4 is, in each case independently of one another, an integer from 0 to 100, preferably an integer from 1 to 50, more preferably an integer from 1 to 40, and even more preferably an integer from 1 to 10, R 14’ is, in each case independently of one another, a C 1-4 alkyl group. Here, the C 1-4 alkyl group may have a substituent.
[0085] In one embodiment, R 50 is, in each case independently of one another, a hydrogen atom, a halogen atom, or a C 1-4 alkyl group.
[0086] In one embodiment, R 50 is, in each case independently of one another, a hydrogen atom, a halogen atom (for example, F, Cl, Br, I), a hydroxyl group, -O-(R 14 -O) n4 -R 14’ , or a C 1-4an alkyl group (e.g., a methyl group), and for example, each independently, a hydrogen atom, a hydroxyl group, -O-(R 14 -O) n4 -R 14’ 、or C 1-4 alkyl group. R 14 are each independently a C 1-4 alkylene group, n4 are each independently an integer from 0 to 100, preferably an integer from 1 to 50, more preferably an integer from 1 to 40, still more preferably an integer from 1 to 10, R 14’ are each independently a C 1-4 alkyl group. Here, the C 1-4 alkyl group may have a substituent.
[0087] In one aspect, X 1 is, in each occurrence, independently represented by the following formula (X1) or (X2). -X 51 -CR 51 =CR 52 -X 52 - ···(X1) -X 53 - ···(X2)
[0088] In formula (X1), X 51 is -(CR 50 2 ) n511 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n512 - represented by. R 50 、Y 51 、n54 and n55 have the same meanings as above. n511 is an integer from 0 to 10, preferably an integer from 0 to 5. n512 is an integer from 0 to 10, preferably an integer from 0 to 5. The order of presence of each repeating unit enclosed in parentheses with n511 or n512 is arbitrary in the formula. In one aspect, the sum of n511 and n512 is 1 or more. In one aspect, n511 is an integer from 1 to 10 and n512 is 0. In other words, X 51 is -(CR 50 2 ) n511 - represented.
[0089] In one aspect, n511 is an integer from 1 to 10, preferably an integer from 1 to 5.
[0090] In one aspect, n511 is an integer from 3 to 5, for example 4 or 5.
[0091] In one aspect, n511 is an integer from 1 to 10, preferably an integer from 1 to 5; n512 is 0.
[0092] X 51 is preferably -(CR 50 2 ) n514 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 )-(CR 50 2 ) n515 - represented. n514 is an integer from 0 to 10, n515 is an integer from 0 to 10, more preferably, n514 is an integer from 0 to 5 and n515 is an integer from 0 to 5. The sum of n514 and n515 corresponds to n511. R 50 , n54, n55, and Y 51 are as defined above.
[0093] X 52 is, independently of each other, -(CR 50 2 ) n511’ -((CH 2 ) n55 -Y51 -(CH 2 ) n54 ) n512’ - is represented by. X 52 In R 50 and Y 51 are the same as R 51 in X 50 and Y 51 respectively. n511’ is an integer from 0 to 10, preferably an integer from 0 to 5. n512’ is an integer from 0 to 10, preferably an integer from 0 to 5. However, the order of existence of each repeating unit enclosed in parentheses with n511’ or n512’ is arbitrary in the formula. In one embodiment, the sum of n511’ and n512’ is 1 or more. In one embodiment, n511’ is an integer from 1 to 10 and n512’ is 0. In other words, X 52 is -(CR 50 2 ) n511’ -.
[0094] In one embodiment, n511’ is an integer from 1 to 10, preferably an integer from 1 to 5.
[0095] In one embodiment, n511’ is an integer from 3 to 5, such as 4 or 5.
[0096] In one embodiment, n511’ is an integer from 1 to 10, preferably an integer from 1 to 5; n512’ is 0.
[0097] In one embodiment, the sum of n511, n512, n511’ and n512’ is 1 or more.
[0098] In one embodiment, X 52 is, -(CR 50 2 ) n514’ -((CH 2 ) n55 -Y51 -(CH 2 ) n54 )-(CR 50 2 ) n515’ It is represented by. n514’ is an integer from 0 to 10, n515’ is an integer from 0 to 10, more preferably, n514’ is an integer from 0 to 5, and n515’ is an integer from 0 to 5.
[0099] In one embodiment, n514’ is an integer from 0 to 10, n515’ is an integer from 1 to 10. For example, n514’ is an integer from 0 to 5, and n515’ is an integer from 1 to 5. The sum of n514’ and n515’ corresponds to n511’. X 52 The R in 50 and Y 51 are 51 the same as the R in X 50 and Y 51 respectively.
[0100] In formula (X1), the sum of n511 in X 51 and n511’ in X 52 is an integer from 0 to 10, and the sum of n512 in X 51 and n512’ in X 52 is an integer from 0 to 10.
[0101] In one embodiment, formula (X1): -X 51 -CR 51 =CR 52 -X 52 - ···(X1) is the following formula: -[(CR 50 2 ) n511 -(CH 2 -Y 51 -(CH 2 ) n54 ) n512 -CR 51 =CR 52 -[(CR 50 2 ) n511 -(CH 2 -Y 51 -(CH 2) n54 ) n512 - It is represented by. The total value of n511 and n511' in the above formula corresponds to the value of n51 in formula (X), and the total value of n512 and n512' corresponds to the value of n53 in formula (X), respectively.
[0102] In one aspect, formula (X1): -X 51 -CR 51 =CR 52 -X 52 - ···(X1) is the following formula: -[-(CR 50 2 ) n514 -(Y 51 )-(CR 50 2 ) n515 -CR 51 =CR 52 -[-(CR 50 2 ) n514’ -(Y 51 )-(CR 50 2 ) n515’ -]- is represented by. R 50 、Y 51 、n514、n515、R 51 、R 52 、n514’ and n515’ have the same meanings as above, respectively. The total value of n514 and n515 corresponds to the value of n511 in formula (X1), and the total value of n514’ and n515’ corresponds to the value of n511’ in formula (X1), respectively. The total values of n514, n515, n514’ and n515’ correspond to the value of n51 in formula (X), respectively.
[0103] In one aspect, X 51 and X 52 are single bonds. In one aspect, X 51 is -(CR 50 2 ) n511 -, X 52 is -(CR 502 ) n511’ - represented by, and at least one of n511 and n511' is an integer of 1 or more. In one embodiment, X 51 is, -(CR 50 2 ) n511 -(Y 51 ) n512 - represented by, X 52 is, each independently, -(CR 50 2 ) n511’ -(Y 51 ) n512’ - represented by. Any one of n511, n512, n511' and n512' is an integer of 1 or more. In one embodiment, X 51 is, -(CR 50 2 ) n511 - represented by, X 52 is -(CR 50 2 ) n511’ -(Y 51 ) n512’ - represented by, and n512' is an integer of 1 or more. In this embodiment, X 52 is, -(CR 50 2 ) n514’ -(Y 51 )-(CR 50 2 ) n515’ - is. In one embodiment, X 51 is -(CR 50 2 ) n511 -(Y 51 ) n512 - represented by, X 52 is -(CR 50 2 ) n511’ - represented by, and n512 is an integer of 1 or more.
[0104] In formula (X2), X 53 is a divalent organic group, -(CR 50 2 ) n521 -((CH2 ) n55 -Y 51 -(CH 2 ) n54 ) n522 - is represented by. R 50 , n54, n55 and Y 51 are each as defined above. n521 is an integer from 1 to 10, preferably an integer from 1 to 5. n522 is an integer from 1 to 10, preferably an integer from 1 to 5. The order of presence of each repeating unit enclosed in parentheses with n521 or n522 is arbitrary in the formula, and the sum of n521 and n522 is 1 or more.
[0105] Formula (X2) is preferably -(CR 50 2 ) n524 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 )-(CR 50 2 ) n525 - is represented by. n524 is an integer from 0 to 10, n525 is an integer from 0 to 10, more preferably, n524 is an integer from 0 to 5, and n525 is an integer from 0 to 5. The sum of n524 and n525 corresponds to n521.
[0106] In one embodiment, formula (X2) is -(CR 50 2 ) n524 -(Y 51 )-(CR 50 2 ) n525 - is represented by. n524, R 50 , and Y 51 are each as defined above. n525 is an integer from 1 to 10, preferably an integer from 1 to 5. For example, n524 is 0, and n525 is an integer from 1 to 5, specifically, n524 is 0, and n525 is an integer from 1 to 3.
[0107] In one embodiment, -X 53 - is -X 51 -CR 51 =CR 52 -X 52 to which a hydrogen atom or a halogen atom has been added by an addition reaction to the unsaturated group of -.
[0108] In one embodiment, X 1 is, in each occurrence, independently of the others, of formula (X’): -CHR 13 -[(CR 50’ 2 ) n51’ -(CR 51 =CR 52 ) n52 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 )- ···(X’) is a group represented by R 13 is -OH or -O-(R 14 -O) n4 -R 14’ represented by R 14 is each independently a C 1-4 alkylene group, preferably CH 2 or CH 2 CH 2 is n4 is each independently an integer from 0 to 100, preferably an integer from 1 to 50, more preferably an integer from 1 to 40, and even more preferably an integer from 1 to 10. R 14’ is each independently a C 1-4 alkyl group, preferably a C 1-2 alkyl group. R 50’ is each independently a hydrogen atom, a halogen atom, a hydroxyl group, or a C 1-4 alkyl group, preferably a hydrogen atom, a halogen atom, or a C 1-4It is an alkyl group, more preferably a hydrogen atom. R 51 , R 52 , Y 51 , n52, and n53 have the same meanings as described above, respectively. n51’ is an integer from 0 to 10, preferably an integer from 0 to 5. The number of CHR 13 and the number of CR 50’ 2 , in other words, 1 + n51’, corresponds to n51 in formula (X). The order of existence of each repeating unit enclosed in parentheses with n51’, n52 or n53 is arbitrary within the structure represented by -[(CR 50’ 2 ) n51’ -(CR 51 =CR 52 ) n52 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 .
[0109] In one embodiment, X 1 is -CHR 13 -[(CR 50’ 2 ) n516 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 -(CR 50’ 2 ) n516’ - as represented by. R 13 , R 50’ , Y 51 , n54, n55 and n53 have the same meanings as described above. n516 is an integer from 0 to 10, preferably an integer from 0 to 5, and n516’ is an integer from 0 to 10, preferably an integer from 0 to 5. The sum of n516 and n516’ corresponds to n51’. In one aspect, n516 and n516’ are each independently an integer from 0 to 10, and n53 is 0. In other words, X 1 is -CHR 13 -(CR 50’ 2 ) n51’ -. In one aspect, n516 and n516’ are each independently an integer from 1 to 10, preferably an integer from 1 to 5.
[0110] In one aspect, X 1 is -CHR 13 -[(CR 50’ 2 ) n51’ -(CR 51 =CR 52 ) n52 - . R 13 , R 50’ , R 51 , R 52 , n51’, and n52 are as defined above.
[0111] Although not particularly limited, examples of X 1 include the following structures. -(CH 2 ) x1 -CH=CH-(CH 2 ) x2 -(x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 4, x2 is an integer from 0 to 4, for example, x1 is 0 and x2 is 0, x1 is an integer from 1 to 4 and x2 is 0, x1 is 0 and x2 is an integer from 1 to 4, or x1 is an integer from 1 to 4 and x2 is an integer from 1 to 4), -(CH 2 ) x1 -CH=CH-(CH 2 ) x2 -Ph-(CH 2 ) x3-(Ph is a phenylene group, x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, x3 is an integer from 0 to 10, provided that the sum of x1, x2 and x3 is an integer from 0 to 10, preferably, x1 is an integer from 1 to 3, x2 is an integer from 0 to 5, x3 is an integer from 0 to 5, for example, x1 is 1, x2 is 0, x3 is 0, in another example x1 is 1, x2 is 0, x3 is 1), -CHR 13 -(CH 2 ) x1 -CH=CH-(CH 2 ) x2 -(R 13 is -(OCH 2 ) x11 -CH 3 or -(OCH 2 CH 2 ) x11 -CH 3 where x11 is an integer from 1 to 100, x1 is an integer from 0 to 9, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 4, x2 is an integer from 0 to 4, for example, x1 is 0 and x2 is 0, x1 is an integer from 1 to 4 and x2 is 0, x1 is 0 and x2 is an integer from 1 to 4, or x1 is an integer from 1 to 4 and x2 is an integer from 1 to 4) -CHR 13 -(CH 2 ) x1 -CH=CH-(CH 2 ) x2 -Ph-(CH 2 ) x3 -(R 13 is -(OCH 2 ) x11 -CH 3 or -(OCH 2 CH 2 ) x11 -CH 3 where x11 is an integer from 1 to 10; Ph is a phenylene group; x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, x3 is an integer from 0 to 10, preferably, x1 is an integer from 1 to 3, x2 is an integer from 0 to 5, x3 is an integer from 0 to 5, provided that the sum of x1, x2 and x3 is an integer from 0 to 10. For example, x1 is 1, x2 is 0, x3 is 0, in another example x1 is 1, x2 is 0, x3 is 1), -(CH2 ) x -(x is an integer from 1 to 10, preferably, x is an integer from 1 to 4), -(CH 2 ) x1 -O-(CH 2 ) x2 -(x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, for example, x1 is 0, x2 is 0, in another example x1 is 0, x2 is 1), -(CH 2 ) x1 -Ph-(CH 2 ) x2 -(Ph is a phenylene group; x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 5, x2 is an integer from 0 to 5, for example, x1 is an integer from 0 to 3, x2 is 0, in another example x1 is an integer from 0 to 3, x2 is 1), -CHR 13 -(CH 2 ) x -(x is an integer from 0 to 10, preferably, x is an integer from 1 to 4), -CHR 13 -(CH 2 ) x1 -O-(CH 2 ) x2 -(x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 5, x2 is an integer from 0 to 5, for example, x1 is 1, x2 is 1), -CHR 13 -(CH 2 ) x1 -Ph--(CH 2 ) x2 -(Ph is a phenylene group; x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 5, x2 is an integer from 0 to 5, for example, x1 is an integer from 0 to 3, x2 is 0, in another example x1 is an integer from 0 to 3, x2 is 1). -CHR 13 -(CH 2 ) x1 -CONR 15 -(CH 2 )x2 -(R 15 is a hydrogen atom, a group having an aromatic ring, C 1-6 alkyl group, -O-C 1-6 alkyl group or C 3-10 cycloalkyl group, preferably a hydrogen atom; x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 5, x2 is an integer from 0 to 5, for example, x1 is an integer from 0 to 3, x2 is 0, in another example x1 is an integer from 0 to 3, x2 is 1 to 2, in another example x1 is 0, x2 is 1 to 2). -(CH 2 ) x1 -CONR 15 -(CH 2 ) x2 -(R 15 is a hydrogen atom, a group having an aromatic ring, C 1-6 alkyl group, -O-C 1-6 alkyl group or C 3-10 cycloalkyl group, preferably a hydrogen atom; x1 is an integer from 0 to 10, x2 is an integer from 0 to 10, provided that the sum of x1 and x2 is an integer from 0 to 10, preferably, x1 is an integer from 0 to 5, x2 is an integer from 0 to 5, for example, x1 is an integer from 0 to 3, x2 is 0, in another example x1 is an integer from 0 to 3, x2 is 1 to 2, in another example x1 is 0, x2 is 1 to 2).
[0112] R Si is, in each occurrence, independently a monovalent group containing a Si atom to which a hydroxyl group, a hydrolyzable group, a hydrogen atom or a monovalent organic group is bonded, and is represented by the following formula (S1).
Chemical formula
[0113] In formula (S1), X 3 is, in each occurrence, independently a single bond, an oxygen atom, or a divalent organic group.
[0114] In a preferred embodiment, X 3 is a divalent organic group.
[0115] X 3 is preferably a C 1-6 alkylene group, -(CH 2 ) z11 -O-(CH 2 ) z12 - or -(CH 2 ) z13 -phenylene-(CH 2 ) z14 -. Such a C 1-6 alkylene group may be linear or branched, but is preferably linear. These groups are, for example, a fluorine atom, a C 1-6 alkyl group, a C 2-6 alkenyl group, and a C 2-6 alkynyl group, and may be substituted with one or more substituents selected therefrom, but is preferably unsubstituted. The above z11 is an integer from 0 to 6, for example, an integer from 1 to 6, and the above z12 is an integer from 0 to 6, for example, an integer from 1 to 6. Preferably, the sum of z11 and z12 is 1 or more. The above z13 is an integer from 0 to 6, for example, an integer from 1 to 6, and the above z14 is an integer from 0 to 6, for example, an integer from 1 to 6. Preferably, the sum of z13 and z14 is 1 or more.
[0116] X 3 is more preferably a C 1-6 alkylene group, for example, -CH 2 CH 2 CH 2 -. In another embodiment, X 3 can be -CH 2 CH 2 -.
[0117] R b1 is, in each occurrence, independently a hydroxyl group or a hydrolyzable group.
[0118] R b1 is preferably, in each occurrence, independently -OR h , -OCOR h , -O-N=CRh 2 、 -NR h 2 、 -NHR h 、 -NCO, or a halogen (wherein R h represents a substituted or unsubstituted C 1-4 alkyl group), more preferably -OR h (i.e., an alkoxy group). As R h , there may be mentioned unsubstituted alkyl groups such as methyl group, ethyl group, propyl group, isopropyl group, n-butyl group, isobutyl group; substituted alkyl groups such as chloromethyl group. Among them, alkyl groups, especially unsubstituted alkyl groups, are preferred, and methyl group or ethyl group is more preferred. In one embodiment, R h is a methyl group, and in another embodiment, R h is an ethyl group.
[0119] R c1 is, in each occurrence, independently a hydrogen atom or a monovalent organic group. Such a monovalent organic group is a monovalent organic group excluding the above-mentioned hydrolyzable group.
[0120] R c1 in, the monovalent organic group is preferably a C 1-20 alkyl group, more preferably a C 1-6 alkyl group, still more preferably a methyl group.
[0121] l1 is, in each occurrence, independently an integer from 0 to 3. However, in each of formulas (A1) and (A2), at least one l1 is 1. In other words, in R Si , in each of formulas (A1) and (A2), at least one R b1 exists.
[0122] l1 is preferably, in each occurrence, independently an integer from 1 to 3, more preferably 2 or 3, still more preferably 3.
[0123] Preferably, there is at least one R for each group represented by the formula (S1). b1 That is, when R Si is represented by the formula (S1), in the terminal R Si portion of the formula (A1) and the formula (A2) (hereinafter, also simply referred to as the "terminal portion" of the formula (A1) and the formula (A2)), there is a Si atom to which a hydroxyl group or a hydrolyzable group is bonded.
[0124] Preferably, in the terminal portion of the formula (A1) and the terminal portion of the formula (A2), there are at least two Si atoms to which R b1 is bonded.
[0125] R 11 is, in each occurrence, independently, a hydrogen atom, a benzyl group, a methoxyphenyl group, a benzoyl group, a trityl group, -SiR 71 3 , or -(R 72 -O) n7 -R 73 . By having a group represented by -CRSi 2 (OR 11 ), the wetting spreadability of the composition containing the fluoropolyether group-containing silane compound of the present disclosure with respect to the base material can be improved. The wear resistance of the layer (for example, the surface treatment layer) formed using the composition can be improved.
[0126] R 71 is, independently of each other, a C 1-4 alkyl group, for example, a methyl group. The group represented by -SiR 71 3 is, for example, a trimethylsilyl group.
[0127] R 72 is, independently of each other, a C 1-4 alkylene group, preferably a C 1-2 alkylene group, for example, -CH 2 CH 2 -, or -CH 2 -.
[0128] n7 is each independently an integer from 1 to 10, preferably an integer from 1 to 6.
[0129] R 73 is each independently a hydrogen atom or a monovalent hydrocarbon group which may contain a ring structure. Examples of the monovalent hydrocarbon group containing a ring structure include a monovalent group having an aromatic ring, a cycloalkyl group, or a monovalent hydrocarbon group containing a heterocycloalkyl group. Examples of the monovalent group having an aromatic ring include, for example, a phenyl group. Examples of the cycloalkyl group include, for example, C 3-10 cycloalkyl groups, specifically, a cyclopentyl group, a cyclohexyl group, and a cycloheptyl group. Examples of the heterocycloalkyl group include, for example, a cycloalkyl group containing an oxygen atom.
[0130] Examples of the monovalent hydrocarbon group containing a ring structure include, for example, the following structures. In the following, at the positions marked with *, -(R 72 -O) n7 is bonded to the right side of -.
Chemical formula
[0131] R 73 is preferably a hydrogen atom or a C 1-4 alkyl group.
[0132] R 73 is preferably a C 1-4 alkyl group, more preferably a C 1-2 alkyl group.
[0133] Preferably, R 11 is each independently, at each occurrence, a hydrogen atom or -(R 72 -O) n7 -R 73 represented by R 72, n7, and R 73 are as defined above, respectively.
[0134] More preferably, R 11 is, independently at each occurrence, -CH 2 O-R 11’ as represented. R 11’ is a hydrogen atom or a monovalent organic group. Preferably, R 11’ is a hydrogen atom or -(R 72 -O) n7’ -R 73 as represented. R 72 , and R 73 are as defined above, respectively. n7’ is an integer from 0 to 9, preferably an integer from 0 to 5.
[0135] In one embodiment, R 11’ is a hydrogen atom. In one embodiment, R 11’ is -(R 72 -O) n7’ -R 73 as represented. In one embodiment, R 11’ is -(R 72 -O) n7’ -R 73 as represented and n7’ is 0.
[0136] (Method for Producing Fluoropolyether Group-Containing Silane Compound) As one embodiment, although not particularly limited, a method suitable for producing the fluoropolyether group-containing silane compound of the present disclosure is described below.
[0137] In one embodiment, the fluoropolyether group-containing silane compound represented by formula (A1) or (A2) of the present disclosure is formula (a27) or formula (a28):
Chemical formula
[0138] The above step (I-1) is preferably carried out in a suitable solvent in the presence of a suitable catalyst.
[0139] Suitable catalysts are not particularly limited, and examples include Pt, Pd, Rh, etc. Such catalysts may be in any form, for example, in the form of a complex.
[0140] Suitable solvents are not particularly limited as long as they do not have an adverse effect on the reaction, and examples include 1,3-bis(trifluoromethyl)benzene, perfluorobutylethyl ether, perfluorohexylmethyl ether, perfluorohexane, hexafluorobenzene, etc.
[0141] The reaction temperature in such a reaction is not particularly limited, but is usually 0 to 100 °C, preferably 50 to 80 °C, the reaction time is not particularly limited, but is usually 60 to 600 minutes, preferably 120 to 300 minutes, and the reaction pressure is not particularly limited, but is -0.2 to 1 MPa (gauge pressure), and for simplicity, it is normal pressure.
[0142] In formula (a27) or formula (a28), R F1 , R F2 each has the same meaning as above.
[0143] In formula (a27) or formula (a28), -X 6 - corresponds to -X 1 -.
[0144] Preferably, in formula (a27) or formula (a28), -X 6 - is, in each occurrence, independently of one another, -X 61 -CR 61 =CR 62 -X 62 -, or -X 63 - is represented by.
[0145] X 61 is a single bond or a divalent organic group, X 62 is a single bond or a divalent organic group, R 61 is a hydrogen atom or a monovalent organic group, R 62 is a hydrogen atom or a monovalent organic group, respectively corresponding to X 51 X 52 R 51 R 52 . X 61 may be represented by -(CR 60 2 ) n611 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n612 -, X 62 may be represented by -(CR 60 2 ) n611’ -((CH 2 ) n614’ -Y 61 -(CH 2 ) n613’ ) n612’ -, n611 corresponds to n511, n612 corresponds to n512, n613 corresponds to n54, n614 corresponds to n55, n611’ corresponds to n511’, n612’ corresponds to n512’, n613’ corresponds to n54, and n614’ corresponds to n55, respectively. The order of existence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula. The order of existence of each repeating unit enclosed in parentheses with n611’ or n612’ is arbitrary in the formula. R 60 is R 50 corresponds to Y 61 is Y 51 corresponds to each other, respectively.
[0146] X 63 is a divalent organic group and corresponds to X 53 corresponds to. X 63 is, respectively and independently, -(CR 60 2 ) n621 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n622 - can be represented by. n621 corresponds to n521, n622 corresponds to n522, n613 corresponds to n54, and n614 corresponds to n55, respectively; the order of existence of each repeating unit enclosed in parentheses with n621 or n622 is arbitrary in the formula.
[0147] In one aspect, -X 63 - is a product obtained by adding a hydrogen atom or a halogen atom to an unsaturated group of -X 61 -CR 61 =CR 62 -X 62 -. This addition reaction can be carried out under the conditions usually used.
[0148] Z 23 represents, respectively and independently, a single bond or a divalent organic group. Z in formula (a27) or (a28) 23 -CH=CH2 corresponds to X in formula (S1). 3
[0149] R 65 is a hydrogen atom or a monovalent organic group. In one embodiment, R 65 is a hydrogen atom. In one embodiment, R 65 is a monovalent organic group.
[0150] In one embodiment, R 65 corresponds to R in formulas (A1) and (A2). 11
[0151] The compound represented by formula (a27) or (a28) is reacted with a compound represented by formula (a23) or formula (a24):
Chemical formula
Chemical formula
[0152] In formulas (a23), (a24), (a25) and (a26), R F1 and R F2 and X 6 and Z 23 have the same meanings as defined above, respectively. R 63 is, in each occurrence, independently a hydrogen atom or a monovalent organic group, preferably a hydrogen atom or a C 1-4 alkyl group.
[0153] Hal represents a halogen atom, and J represents Mg, Cu, Pd or Zn.
[0154] In formula (a27) or (a28), R65 When the group represented by 65 is a monovalent organic group, the compound represented by the formula (a27) or (a28) can be obtained by reacting the compound represented by the formula (a25) or (a26) with, for example, a compound represented by R 65 -Y 62 Here, Y 62 is a group capable of bonding to R 65 The above reaction can be carried out using a commonly applicable method. For example, the reaction can be carried out in the presence of Hunig's base.
[0155] The compound represented by the formula (a23) or (a24) is the compound represented by the formula (a11) or (a12):
Chemical formula
Chemical formula
Chemical formula
[0156] Step (I-3) can be carried out in the presence of a metal-carbene complex having olefin metathesis reaction activity. As the metal-carbene complex, a highly active Grubbs catalyst of the second generation or higher, such as the Grubbs second-generation catalyst, is used. Examples of Grubbs second-generation catalysts include Hoveyda-Grubbus 2nd generation catalyst, Piers second generation metathesis catalyst, nitro-Grela, UltraCat, AquaMet, and UltraNitroCat.
[0157] The above step (I-3) is preferably carried out in a suitable solvent. The suitable solvent is not particularly limited as long as it does not adversely affect the reaction. For example, HCFC-225 (e.g., Asahiklin AK-225 manufactured by AGC Inc.), 1,3-bis(trifluoromethyl)benzene (mXHF), 1,1-dichloro-2,3,3,3-tetrafluoro-1-propene, 1,2-dichloro-1,3,3,3-tetrafluoro-1-propene, 1,2-dichloro-3,3,3-trifluoro-1-propene, 1,1-dichloro-3,3,3-trifluoro-1-propene, 1,1,2-trichloro-3,3,3-trifluoro-1-propene, 1,1,1,4,4,4-hexafluoro-2-butene, 1,3-bistrifluoromethoxybenzene, ethyl nonafluorobutyl ether, ethyl nonafluoroisobutyl ether, methyl nonafluorobutyl ether, methyl nonafluoroisobutyl ether, 3-methoxy-2-(trifluoromethyl)pentane and other fluorine atom-containing solvents; dichloropropane and other fluorine atom-free solvents can be mentioned, and both fluorine atom-containing solvents and fluorine atom-free solvents may be used.
[0158] The reaction temperature in such a reaction is not particularly limited, but for example, it can be carried out at 0 to 100 °C, and can be carried out at room temperature (e.g., 20 to 30 °C). The reaction time is not particularly limited, but is usually 60 to 600 minutes, preferably 120 to 300 minutes, and the reaction pressure is not particularly limited, but is -0.2 to 1 MPa (gauge pressure), and for simplicity, it is normal pressure.
[0159] In formulas (a11), (a12), (a21) and (a22), R F1 , RF2 , X 61 , X 62 , R 61 , R 62 , R 63 is synonymous with the above, respectively.
[0160] In one aspect, the fluoropolyether group-containing silane compound of the present disclosure is represented by formula (a31) or formula (a32): [Chemical formula] and a compound represented by the following formula (a33): [Chemical formula] are reacted to obtain a compound represented by formula (a21) or formula (a22): [Chemical formula] (Step (II-1)) can be produced by a method including. Incidentally, PPh 3 is triphenylphosphine, that is, -P(C 6 H 5 ) 3 means.
[0161] The compound represented by formula (a31) or formula (a32) can be obtained, for example, by reducing the following formula (a30) or (a30') in the presence of a catalyst. R 64 , and R 64’ are, for example, each independently a C 1-10 alkyl group, or a group having a ring structure formed by bonding to each other, the ring structure having a 5- to 10-membered heterocycle, or a group having a condensed ring formed by bonding to each other, the condensed ring having a 5- to 10-membered heterocycle and a 3- to 10-membered ring other than the heterocycle. R F1 , R F2 , X 61 are synonymous with the above, respectively. [Chemical formula]
[0162] The above process can be carried out in a suitable solvent in the presence of a suitable catalyst. The suitable catalyst is not particularly limited, and examples thereof include diisobutylaluminum hydride, lithium aluminum hydride (LAH), etc. The suitable solvent is not particularly limited, and examples thereof include fluorinated solvents such as HFE7200 and HFE7300; non-fluorinated solvents such as THF and diethyl ether; or a mixed solvent containing two or more of these. It is preferable to use a combination of two or more of the above solvents.
[0163] The above process is not particularly limited, and can be carried out, for example, at -78 to 200 °C. The reaction time in the above process is not particularly limited, and may be, for example, 0.1 to 168 hours. The reaction pressure in the above process is not particularly limited, and is, for example, 0 to 100 MPa (gauge pressure), and is preferably normal pressure for simplicity.
[0164] In formulas (a30), (a30’), (a31), (a32), (a33), (a21) and (a22), R F1 , R F2 have the same meanings as defined above, respectively.
[0165] X 61 , X 62 , R 61 , R 62 , R 63 have the same meanings as defined above, respectively.
[0166] Through step (II-1), the above step (I-2), and step (I-1), a compound represented by formula (A1) or (A2) of the present disclosure can be formed.
[0167] The present disclosure further provides compounds having the following structures. These compounds are compounds obtained as intermediates in the above production method. By passing through these compounds, the synthesis of the compound represented by formula (A1) or (A2) becomes easier.
[0168] Formula (a23) or formula (a24): [Chemical formula] A fluoropolyether group-containing compound represented by
[0169] In formula (a23) or formula (a24), R F1 , R F2 , R 63 , X 6 are each as defined above.
[0170] Formula (a27) or formula (a28): [Chemical formula] A fluoropolyether group-containing compound represented by In formula (a27) or formula (a28), R F1 , R F2 , X 6 , R 65 , Z 23 are each as defined above.
[0171] Although not particularly limited, examples of X 6 in the compounds represented by formula (a23), (a24), (a27), or (a28) include the structures described for X 1 .
[0172] (Surface treatment agent) The above fluoropolyether group-containing silane compound can be used as a surface treatment agent.
[0173] The surface treatment agent of the present disclosure can contribute to the formation of a surface treatment layer having good ultraviolet durability, water repellency, oil repellency, antifouling property (e.g., preventing the adhesion of dirt such as fingerprints), chemical resistance, hydrolysis resistance, suppression effect of slipperiness, high friction durability, heat resistance, moisture resistance, etc.
[0174] In one aspect, the surface treatment agent contains a fluoropolyether group-containing silane compound represented by formula (A1) or formula (A2).
[0175] In one aspect, the surface treatment agent contains at least one selected from the group consisting of a fluoropolyether group-containing silane compound represented by formula (A1) or formula (A2), and a condensate in which at least a part of the fluoropolyether group-containing silane compound is condensed. Here, the condensate is a partial (hydrolyzed) condensate obtained by condensing the hydroxyl group of the fluoropolyether group-containing silane compound represented by formula (A1) or formula (A2), and / or the hydroxyl group obtained by partially hydrolyzing the hydrolyzable group by a known method. If necessary, a hydrolysis condensation catalyst, for example, an organotin compound (such as dibutyltin dimethoxide, dibutyltin dilaurate), an organotitanium compound (such as tetra-n-butyl titanate), an organic acid (such as acetic acid, methanesulfonic acid, fluorine-modified carboxylic acid), an inorganic acid (such as hydrochloric acid, sulfuric acid) may be added to the surface treatment agent. Among these, acetic acid, tetra-n-butyl titanate, dibutyltin dilaurate, fluorine-modified carboxylic acid, etc. are particularly desirable. The addition amount of the hydrolysis condensation catalyst is a catalytic amount, usually 0.01 to 5 parts by mass, particularly 0.1 to 1 part by mass, based on 100 parts by mass of the fluoropolyether group-containing silane compound and / or its partial (hydrolyzed) condensate.
[0176] In another aspect, the surface treatment agent of the present disclosure contains a fluoropolyether group-containing silane compound represented by formula (A1) and a fluoropolyether group-containing silane compound represented by formula (A2). The composition (for example, the surface treatment agent) of this aspect can contribute to the formation of a cured layer with good friction durability. The friction durability of the cured layer formed using the composition of this aspect is improved, and the slipperiness on the surface of the cured layer is improved. Further, in the composition of this aspect, the secondary structure of the R F portion is likely to take a helical structure, and the polymer density per unit area and the crosslinking density of the silane coupling agent increase, so it is considered that the strength of the cured layer increases.
[0177] In one aspect, the lower limit of the ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by the formula (A2) to the total of the fluoropolyether group-containing silane compound represented by the formula (A1) and the fluoropolyether group-containing silane compound represented by the formula (A2) contained in the composition (for example, surface treatment agent) of the present disclosure is preferably 0.001, more preferably 0.002, still more preferably 0.005, even more preferably 0.01, particularly preferably 0.02, and specifically may be 0.05. The upper limit of the ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by the formula (A2) to the total of the fluoropolyether group-containing silane compound represented by the formula (A1) and the fluoropolyether group-containing silane compound represented by the formula (A2) may be preferably 0.70, more preferably 0.60, more preferably 0.50, still more preferably 0.40, even more preferably 0.30, for example 0.20, and specifically 0.10. The ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by the formula (A2) to the total of the fluoropolyether group-containing silane compound represented by the formula (A1) and the fluoropolyether group-containing silane compound represented by the formula (A2) may be 0.001 or more and 0.70 or less, may be 0.001 or more and 0.60 or less, may be 0.001 or more and 0.50 or less, may be 0.002 or more and 0.40 or less, may be 0.005 or more and 0.30 or less, may be 0.01 or more and 0.20 or less, for example 0.02 or more and 0.20 or less (specifically 0.15 or less) or 0.05 or more and 0.20 or less (specifically 0.15 or less).
[0178] In one aspect, the lower limit of the ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by formula (A1) to the total of the fluoropolyether group-containing silane compound represented by formula (A1) and the fluoropolyether group-containing silane compound represented by formula (A2) contained in the composition (e.g., surface treatment agent) of the present disclosure is preferably 0.001, more preferably 0.002, still more preferably 0.005, even more preferably 0.01, particularly preferably 0.02, and specifically may be 0.05. The upper limit of the ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by formula (A1) to the total of the fluoropolyether group-containing silane compound represented by formula (A1) and the fluoropolyether group-containing silane compound represented by formula (A2) is preferably 0.70, more preferably 0.60, more preferably 0.50, still more preferably 0.40, even more preferably 0.30, for example, 0.20, and specifically may be 0.10. The ratio (molar ratio) of the fluoropolyether group-containing silane compound represented by formula (A1) to the total of the fluoropolyether group-containing silane compound represented by formula (A1) and the fluoropolyether group-containing silane compound represented by formula (A2) may be 0.001 or more and 0.70 or less, may be 0.001 or more and 0.60 or less, may be 0.001 or more and 0.50 or less, may be 0.002 or more and 0.40 or less, may be 0.005 or more and 0.30 or less, may be 0.01 or more and 0.20 or less, for example, 0.02 or more and 0.20 or less (specifically 0.15 or less) or 0.05 or more and 0.20 or less (specifically 0.15 or less).
[0179] The above surface treatment agent may be diluted with a solvent. Such a solvent is not particularly limited, for example: Perfluorohexane, CF 3 CF 2 CHCl 2 、CF 3 CH 2 CF 2 CH 3 、CF 3 CHFCHFC 2 F 5, 1,1,1,2,2,3,3,4,4,5,5,6,6-tridecafluorooctane, 1,1,2,2,3,3,4-heptafluorocyclopentane ((Zeorola H (trade name), etc.), C 4 F 9 OCH 3 , C 4 F 9 OC 2 H 5 , CF 3 CH 2 OCF 2 CHF 2 , C 6 F 13 CH=CH 2 , C 6 F 13 OCH 3 , xylene hexafluoride, perfluorobenzene, methyl pentadecafluoroheptyl ketone, trifluoroethanol, pentafluoropropanol, hexafluoroisopropanol, HCF 2 CF 2 CH 2 OH, methyl trifluoromethanesulfonate, trifluoroacetic acid and CF 3 O(CF 2 CF 2 O) m1 (CF 2 O) n1 CF 2 CF 3 [wherein, m1 and n1 are each independently an integer of 0 or more and 1000 or less, and the order of existence of each repeating unit enclosed in parentheses with m1 or n1 is arbitrary in the formula, provided that the sum of m1 and n1 is 1 or more.], 1,1-dichloro-2,3,3,3-tetrafluoro-1-propene, 1,2-dichloro-1,3,3,3-tetrafluoro-1-propene, 1,2-dichloro-3,3,3-trifluoro-1-propene, 1,1-dichloro-3,3,3-trifluoro-1-propene, 1,1,2-trichloro-3,3,3-trifluoro-1-propene, 1,1,1,4,4,4-hexafluoro-2-butene and the like fluorine atom-containing solvents selected from the group consisting of. These solvents can be used alone or as a mixture of two or more.
[0180] The water content contained in the above solvent is preferably 20 mass ppm or less. The water content can be measured using the Karl Fischer method. With such a water content, the storage stability of the surface treatment agent can be improved.
[0181] In addition to the fluoropolyether group-containing silane compound represented by the formula (A1) or the formula (A2), the above surface treatment agent may contain other components. Such other components are not particularly limited, and examples include (non-reactive) fluoropolyether compounds that can be understood as fluorinated oils, preferably perfluoro(poly)ether compounds (hereinafter referred to as "fluorinated oils"), (non-reactive) silicone compounds that can be understood as silicone oils (hereinafter referred to as "silicone oils"), catalysts, lower alcohols, transition metals, halide ions, compounds containing atoms with unshared electron pairs in the molecular structure, and the like.
[0182] The above fluorinated oil is not particularly limited, and examples include compounds (perfluoro(poly)ether compounds) represented by the following general formula (1). Rf 5 -(OC 4 F 8 ) a’ -(OC 3 F 6 ) b’ -(OC 2 F 4 ) c’ -(OCF 2 ) d’ -Rf 6 ···(1) In the formula, Rf 5 represents an alkyl group having 1 to 16 carbon atoms which may be substituted by one or more fluorine atoms (preferably a perfluoroalkyl group of C 1―16 ), Rf 6 represents an alkyl group having 1 to 16 carbon atoms which may be substituted by one or more fluorine atoms (preferably a C 1-16 perfluoroalkyl group), a fluorine atom or a hydrogen atom, and Rf5 and Rf 6 is more preferably, each independently, C 1-3 is a perfluoroalkyl group. a’, b’, c’ and d’ each represent the number of four types of repeating units of the perfluoro(poly)ether constituting the main chain of the polymer, and are each independently an integer of 0 or more and 300 or less, and the sum of a’, b’, c’ and d’ is at least 1, preferably 1 to 300, more preferably 20 to 300. The order of presence of each repeating unit enclosed in parentheses with the subscript a’, b’, c’ or d’ is arbitrary in the formula. At least one of the repeating units has a branched structure. That is, the repeating unit has at least one CF 3 end (specifically, -CF 3 , -C 2 F 5 , etc., more specifically -CF 3 ). Examples of the repeating unit having a branched structure include, as -(OC 4 F 8 ), -(OCF(CF 3 ))CF 2 CF 2 ), -(OCF 2 CF(CF 3 ))CF 2 ), -(OCF 2 CF 2 CF(CF 3 ))-, -(OC(CF 3 )) 2 CF 2 ), -(OCF 2 C(CF 3 )) 2 ), -(OCF(CF 3 ))CF(CF 3 )), -(OCF(C 2 F 5 ))CF 2 ) and -(OCF 2 CF(C 2 F 5 )); as -(OC 3 F 6 ), -(OCF(CF 3 ))CF 2 ) and -(OCF 2CF(CF 3 ))-;-(OC 2 F 4 )- as an example, -(OCF(CF 3 ))- can be cited.
[0183] Examples of the perfluoro(poly)ether compound represented by the above general formula (1) include compounds represented by any of the following general formulas (1a) and (1b) (which may be a mixture of one or more kinds). Rf 5 -(OCF(CF 3 )CF 2 ) b’’ -Rf 6 ···(1a) Rf 5 -(OC 4 F 8 ) a’’ -(OC 3 F 6 ) b’’ -(OCF(CF 3 )) c’’ -(OCF 2 ) d’’ -Rf 6 ···(1b) In these formulas, Rf 5 and Rf 6 are as defined above; in formula (1a), b’’ is an integer of 1 or more and 100 or less; in formula (1b), a’’ and b’’ are each independently an integer of 1 or more and 30 or less, and c’’ and d’’ are each independently an integer of 1 or more and 300 or less. The order of existence of each repeating unit enclosed in parentheses with subscripts a’’, b’’, c’’, d’’ is arbitrary in the formula. -(OC 4 F 8 )- 、 -(OC 3 F 6 )- has a branched structure.
[0184] The fluorine-containing oil may have a number average molecular weight of 1,000 to 30,000. In particular, the number average molecular weight of the compound represented by the formula (1a) is preferably 2,000 to 8,000. By having such a number average molecular weight, good friction durability can be obtained. In one embodiment, the number average molecular weight of the compound represented by the formula (1b) is 3,000 to 8,000. In another embodiment, the number average molecular weight of the compound represented by the formula (1b) is 8,000 to 30,000.
[0185] In the above surface treatment agent, the fluorine-containing oil may be contained in an amount of, for example, 0 to 500 parts by mass, preferably 0 to 100 parts by mass, more preferably 1 to 50 parts by mass, and still more preferably 1 to 5 parts by mass, based on 100 parts by mass of the fluoropolyether group-containing silane compound.
[0186] In the above surface treatment agent, the fluorine-containing oil may be contained in an amount of, for example, 0 to 30 mol%, preferably 0 to 20 mol%, more preferably 0 to 10 mol%, based on the total amount of the fluoropolyether group-containing silane compound and the fluorine-containing oil.
[0187] Also, from another perspective, the fluorine-containing oil may be a compound represented by the general formula Rf’-F (wherein Rf’ is a C 5-16 perfluoroalkyl group). It may also be a chlorotrifluoroethylene oligomer. The compound represented by Rf’-F and the chlorotrifluoroethylene oligomer are preferable in that they can obtain a high affinity with the above perfluoro(poly)ether group-containing silane compound in which Rf is a C 1-16 perfluoroalkyl group.
[0188] The fluorine-containing oil contributes to improving the surface slipperiness of the surface treatment layer.
[0189] In one embodiment, the surface treatment agent of the present disclosure contains a compound represented by the formula (A1) and a fluorine-containing oil.
[0190] In one aspect, the surface treatment agent of the present disclosure contains a compound represented by formula (A2) and a fluorinated oil.
[0191] In one aspect, the surface treatment agent of the present disclosure contains a compound represented by formula (A1), a compound represented by formula (A2), and a fluorinated oil.
[0192] In one aspect, based on the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorinated oil, it is preferable that the compound represented by formula (A2) is contained in an amount of 0.001 to 70 mol%, and the fluorinated oil is contained in an amount of 0.001 to 50 mol%. More preferably, the compound represented by formula (A2) is contained in an amount of 0.01 to 60 mol%, and the fluorinated oil is contained in an amount of 0.01 to 40 mol%. Even more preferably, the compound represented by formula (A2) is contained in an amount of 0.1 to 50 mol%, and the fluorinated oil is contained in an amount of 0.1 to 30 mol%.
[0193] In one aspect, based on the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorinated oil, it is preferable that the compound represented by formula (A1) is contained in an amount of 0.001 to 70 mol%, and the fluorinated oil is contained in an amount of 0.001 to 50 mol%. More preferably, the compound represented by formula (A1) is contained in an amount of 0.01 to 60 mol%, and the fluorinated oil is contained in an amount of 0.01 to 40 mol%. Even more preferably, the compound represented by formula (A1) is contained in an amount of 0.1 to 50 mol%, and the fluorinated oil is contained in an amount of 0.1 to 30 mol%.
[0194] As the silicone oil, for example, a linear or cyclic silicone oil having a siloxane bond of 2,000 or less can be used. The linear silicone oil may be a so-called straight silicone oil and a modified silicone oil. Examples of the straight silicone oil include dimethyl silicone oil, methylphenyl silicone oil, and methylhydrogen silicone oil. Examples of the modified silicone oil include those obtained by modifying a straight silicone oil with an alkyl, aralkyl, polyether, higher fatty acid ester, fluoroalkyl, amino, epoxy, carboxyl, alcohol, or the like. Examples of the cyclic silicone oil include cyclic dimethylsiloxane oil and the like.
[0195] In the above surface treatment agent, such a silicone oil may be contained in an amount of, for example, 0 to 50 parts by mass, preferably 0 to 5 parts by mass, based on 100 parts by mass of the above fluoropolyether group-containing silane compound (in the case of two or more kinds, the total thereof, the same applies hereinafter).
[0196] The silicone oil contributes to improving the surface slipperiness of the surface treatment layer.
[0197] Examples of the above catalyst include acids (such as acetic acid and trifluoroacetic acid), bases (such as ammonia, triethylamine, and diethylamine), transition metals (such as Ti, Ni, and Sn), and the like.
[0198] The catalyst promotes the hydrolysis and dehydration condensation of the above fluorine-containing silane compound and promotes the formation of the surface treatment layer.
[0199] Examples of the lower alcohol as the above other component include alcohol compounds having 1 to 6 carbon atoms.
[0200] Examples of the above transition metal include platinum, ruthenium, rhodium, and the like.
[0201] Examples of the above halide ion include chloride ion and the like.
[0202] Examples of the compound containing an atom having a non-bonding electron pair in the above molecular structure include diethylamine, triethylamine, aniline, pyridine, hexamethylphosphoramide, N,N-diethylacetamide, N,N-diethylformamide, N,N-dimethylacetamide, N-methylformamide, N,N-dimethylformamide, N-methylpyrrolidone, tetramethylurea, dimethyl sulfoxide (DMSO), tetramethylene sulfoxide, methylphenyl sulfoxide, diphenyl sulfoxide, and the like. Among these compounds, it is preferable to use dimethyl sulfoxide or tetramethylene sulfoxide.
[0203] Examples of other components include, in addition to the above, tetraethoxysilane, methyltrimethoxysilane, 3-aminopropyltrimethoxysilane, 3-glycidoxypropyltrimethoxysilane, methyltriacetoxysilane, and the like.
[0204] In one aspect, the above surface treatment agent does not contain a fluorine-containing oil, a silicone oil, a catalyst, a lower alcohol, a transition metal, a halide ion, or a compound containing an atom having a non-bonding electron pair in the molecular structure, which are the above other components.
[0205] In one aspect, with respect to the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorine-containing oil, the compound represented by formula (A2) may be contained, for example, in an amount of 70 mol% or less, 60 mol% or less, 50 mol% or less, 0.001 mol% or more, 0.01 mol% or more, or 0.1 mol% or more. With respect to the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorine-containing oil, the compound represented by formula (A2) may be contained, for example, in an amount of 1 to 70 mol% or 5 to 50 mol%.
[0206] In one aspect, the composition of the present disclosure (e.g., a surface treatment agent) contains a compound represented by formula (A1), a compound represented by formula (A2), and a fluorinated oil. In this aspect, with respect to the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorinated oil, the fluorinated oil may be contained, for example, in an amount of 0.001 mol% or more, 0.01 mol% or more, 1.0 mol% or more, 50 mol% or less, 40 mol% or less, 30 mol% or less, or 10 mol% or less. With respect to the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorinated oil, the fluorinated oil may be contained, for example, in an amount of 0.001 to 50 mol% or 0.01 to 40 mol%. In this aspect, with respect to the total of the compound represented by formula (A1), the compound represented by formula (A2), and the fluorinated oil, it is preferable that the compound represented by formula (A2) is contained in an amount of 0.001 to 70 mol% and the fluorinated oil is contained in an amount of 0.001 to 50 mol%. More preferably, the compound represented by formula (A2) is contained in an amount of 0.01 to 60 mol% and the fluorinated oil is contained in an amount of 0.01 to 40 mol%. Even more preferably, the compound represented by formula (A2) is contained in an amount of 0.1 to 50 mol% and the fluorinated oil is contained in an amount of 0.1 to 30 mol%. The composition of this aspect (e.g., a surface treatment agent) can contribute to the formation of a cured layer with good friction durability. Furthermore, the friction durability of the cured layer formed using the composition of this aspect is improved, and the slipperiness on the surface of the cured layer is improved. Also, in the composition of this aspect, the secondary structure of the R F portion is likely to adopt a helical structure, and the polymer density per unit area and the crosslinking density of the silane coupling agent increase, so it is considered that the strength of the cured layer increases.
[0207] In one aspect, the composition of the present disclosure (e.g., a surface treatment agent) contains a compound represented by formula (A1), a compound represented by formula (A2), and a fluorinated oil. In this embodiment, the compound represented by the formula (A1) and the compound represented by the formula (A2) may contain the compound represented by the formula (A2) in an amount of 0.001 mol% or more and less than 50 mol%, may contain 0.1 mol% or more and less than 50 mol%, may contain 1 mol% or more and less than 50 mol%, for example, may contain 10 mol% or more and less than 50 mol%.
[0208] In one embodiment, the composition (e.g., surface treatment agent) of the present disclosure contains a compound represented by the formula (A1), a compound represented by the formula (A2), and a fluorine-containing oil. In this embodiment, the compound represented by the formula (A1) and the compound represented by the formula (A2) may contain the compound represented by the formula (A1) in an amount of 0.001 mol% or more and less than 50 mol%, may contain 0.1 mol% or more and less than 50 mol%, may contain 10 mol% or more and less than 50 mol%, for example, may contain 20 mol% or more and less than 50 mol%, 30 mol% or more and less than 50 mol%.
[0209] In one embodiment, the composition (e.g., surface treatment agent) of the present disclosure contains a compound represented by the formula (A1), a compound represented by the formula (A2), and a fluorine-containing oil. In this embodiment, the compound represented by the formula (A1) and the compound represented by the formula (A2) may contain the compound represented by the formula (A2) in an amount of 35 mol% or more and less than 65 mol%, may contain 40 mol% or more and less than 60 mol%.
[0210] In one embodiment, the surface treatment agent of the present disclosure contains a fluoropolyether group-containing silane compound represented by the formula (A1) or the formula (A2), and does not contain the fluorine-containing oil which is the other component (for example, the content of the fluorine-containing oil is 1 part by mass or less with respect to 100 parts by mass of the surface treatment agent, and more specifically, is 0 part by mass).
[0211] The composition of the present disclosure can be used as a surface treatment agent for surface-treating a substrate.
[0212] The surface treatment agent of the present disclosure can be impregnated into a porous material, such as a porous ceramic material, or a metal fiber, such as steel wool formed into a cotton-like shape, to form pellets. The pellets can be used, for example, in vacuum deposition.
[0213] (Article) Hereinafter, the article of the present disclosure will be described.
[0214] The article of the present disclosure includes a substrate and a layer (surface treatment layer) formed from the fluoropolyether group-containing silane compound of the present disclosure or a surface treatment agent containing the fluoropolyether group-containing silane compound on the surface of the substrate (hereinafter, these are simply referred to as "the surface treatment agent of the present disclosure" for the sake of representation).
[0215] The substrate that can be used in the present disclosure can be composed of any suitable material, such as glass, resin (natural or synthetic resin, such as a general plastic material, which may be in the form of a plate, film, or other forms), metal, ceramics, semiconductor (such as silicon, germanium, etc.), fiber (such as woven fabric, non-woven fabric, etc.), fur, leather, wood, porcelain, stone, etc., building members, etc.
[0216] For example, when the article to be manufactured is an optical member, the material constituting the surface of the substrate may be a material for an optical member, such as glass or transparent plastic. Further, when the article to be manufactured is an optical member, some layer (or film), such as a hard coat layer or an antireflection layer, may be formed on the surface (outermost layer) of the substrate. For the antireflection layer, either a single-layer antireflection layer or a multilayer antireflection layer may be used. Examples of inorganic substances that can be used for the antireflection layer include SiO 2 , SiO, ZrO 2 , TiO 2 , TiO, Ti 2 O 3 , Ti 2 O 5 , Al 2 O 3 , Ta 2 O 5 , CeO 2 , MgO, Y 2 O3 , SnO 2 , MgF 2 , WO 3 and the like. These inorganic substances may be used alone or in combination of two or more thereof (for example, as a mixture). When forming a multilayer antireflection layer, it is preferable to use SiO 2 and / or SiO on the outermost layer. When the article to be manufactured is an optical glass component for a touch panel, a thin film using a transparent electrode, for example, indium tin oxide (ITO), indium zinc oxide, or the like, may be provided on a part of the surface of the substrate (glass). Further, depending on the specific specifications and the like of the substrate, it may have an insulating layer, an adhesive layer, a protective layer, a decorative frame layer (I-CON), a fogging film layer, a hard coating film layer, a polarizing film, a retardation film, and a liquid crystal display module, and the like.
[0217] The shape of the substrate is not particularly limited. Further, the surface area of the substrate on which the layer formed by the surface treatment agent of the present disclosure is to be formed may be at least a part of the substrate surface, and can be appropriately determined according to the use and specific specifications of the article to be manufactured.
[0218] Such a substrate may be made of a material that originally has hydroxyl groups at least on its surface portion. Examples of such materials include glass, and metals (especially base metals), ceramics, semiconductors, etc. on which a natural oxide film or a thermal oxide film is formed on the surface. Alternatively, in the case of a material such as resin where having hydroxyl groups is not sufficient or where hydroxyl groups are not originally present, the surface of the substrate can be pretreated in some way to introduce or increase hydroxyl groups on the surface of the substrate. Examples of such pretreatment include plasma treatment (e.g., corona discharge) and ion beam irradiation. Plasma treatment can be suitably used not only to introduce or increase hydroxyl groups on the substrate surface but also to clean the substrate surface (remove foreign substances, etc.). Another example of such pretreatment is a method in which an interfacial adsorbent having a carbon-carbon unsaturated bond group is formed in the form of a monomolecular film on the substrate surface in advance by the LB method (Langmuir-Blodgett method) or chemisorption method, etc., and then the unsaturated bond is cleaved in an atmosphere containing oxygen, nitrogen, etc.
[0219] Or alternatively, such a substrate may be made of a material that at least on its surface portion has one or more other reactive groups, for example, a silicone compound having an Si-H group or a material containing an alkoxysilane.
[0220] Next, a layer of the surface treatment agent of the present disclosure is formed on the surface of such a substrate, and this layer is post-treated as necessary, thereby forming a layer from the surface treatment agent of the present disclosure.
[0221] The formation of the layer of the surface treatment agent of the present disclosure can be carried out by applying the above surface treatment agent to the surface of the substrate so as to cover the surface. The coating method is not particularly limited. For example, wet coating methods and dry coating methods can be used.
[0222] Examples of wet coating methods include dip coating, spin coating, flow coating, spray coating, roll coating, gravure coating, and similar methods.
[0223] Examples of the dry coating method include vapor deposition (usually vacuum vapor deposition), sputtering, CVD, and similar methods. Specific examples of the vapor deposition method (usually the vacuum vapor deposition method) include resistance heating, electron beam, high-frequency heating using microwaves, ion beam, and similar methods. Specific examples of the CVD method include plasma-CVD, optical CVD, thermal CVD, and similar methods.
[0224] Furthermore, coating by the atmospheric pressure plasma method is also possible.
[0225] When using the wet coating method, the surface treatment agent of the present disclosure can be diluted with a solvent and then applied to the substrate surface. From the viewpoints of the stability of the surface treatment agent of the present disclosure and the volatility of the solvent, the following solvents are preferably used: perfluoroaliphatic hydrocarbons having 5 to 12 carbon atoms (for example, perfluorohexane, perfluoromethylcyclohexane, and perfluoro-1,3-dimethylcyclohexane); polyfluoroaromatic hydrocarbons (for example, bis(trifluoromethyl)benzene); polyfluoroaliphatic hydrocarbons (for example, C 6 F 13 CH 2 CH 3 (for example, AsahiCryn (registered trademark) AC-6000 manufactured by AGC Inc.), 1,1,2,2,3,3,4-heptafluorocyclopentane (for example, Zeorola (registered trademark) H manufactured by Nippon Zeon Co., Ltd.); hydrofluoroether (HFE) (for example, perfluoropropyl methyl ether (C 3 F 7 OCH 3 )(for example, Novec (trademark) 7000 manufactured by Sumitomo 3M Limited), perfluorobutyl methyl ether (C 4 F 9 OCH 3 )(for example, Novec (trademark) 7100 manufactured by Sumitomo 3M Limited), perfluorobutyl ethyl ether (C 4 F 9 OC 2 H 5 )(for example, Novec (trademark) 7200 manufactured by Sumitomo 3M Limited), perfluorohexyl methyl ether (C 2 F5 CF(OCH 3 )C 3 F 7 )(e.g., Novec™ 7300 manufactured by Sumitomo 3M Limited) and other alkyl perfluoroalkyl ethers (the perfluoroalkyl group and the alkyl group may be linear or branched), or CF 3 CH 2 OCF 2 CHF 2 (e.g., AsahiKlin® AE-3000 manufactured by AGC Inc.) and the like. These solvents can be used alone or as a mixture of two or more. Among them, hydrofluoroethers are preferred, and perfluorobutyl methyl ether (C 4 F 9 OCH 3 ) and / or perfluorobutyl ethyl ether (C 4 F 9 OC 2 H 5 ) are particularly preferred.
[0226] When using the dry coating method, the surface treatment agent of the present disclosure may be directly subjected to the dry coating method, or may be diluted with the above-mentioned solvent and then subjected to the dry coating method.
[0227] The formation of the layer of the surface treatment agent is preferably carried out such that the surface treatment agent of the present disclosure is present in the layer together with a catalyst for hydrolysis and dehydration condensation. For simplicity, in the case of the wet coating method, after diluting the surface treatment agent of the present disclosure with a solvent, a catalyst may be added to the diluted solution of the surface treatment agent of the present disclosure immediately before applying it to the substrate surface. In the case of the dry coating method, the surface treatment agent added with the catalyst may be directly subjected to vapor deposition (usually, vacuum vapor deposition) treatment, or vapor deposition (usually, vacuum vapor deposition) treatment may be carried out using a pellet-like substance impregnated with the surface treatment agent added with the catalyst on a metal porous body such as iron or copper.
[0228] Any suitable acid or base can be used as the catalyst. As the acid catalyst, for example, acetic acid, formic acid, trifluoroacetic acid, etc. can be used. Also, as the base catalyst, for example, ammonia, organic amines, etc. can be used.
[0229] As described above, a layer derived from the surface treatment agent of the present disclosure is formed on the surface of the substrate, and the article of the present disclosure is manufactured. The layer thus obtained has both high surface slipperiness and high friction durability. In addition to high friction durability, depending on the composition of the surface treatment agent used, the layer may also have water repellency, oil repellency, antifouling properties (e.g., preventing the adhesion of dirt such as fingerprints), waterproof properties (preventing the intrusion of water into electronic components, etc.), surface slipperiness (or lubricity, e.g., the removability of dirt such as fingerprints and excellent tactile sensation against fingers), etc., and can be suitably used as a functional thin film.
[0230] That is, the present disclosure further relates to an optical material having a layer derived from the surface treatment agent of the present disclosure as the outermost layer.
[0231] As the optical material, in addition to the optical materials related to displays as exemplified below, various optical materials are preferably mentioned: for example, cathode ray tubes (CRTs; e.g., personal computer monitors), liquid crystal displays, plasma displays, organic EL displays, inorganic thin film EL dot matrix displays, rear projection displays, fluorescent display tubes (VFDs), field emission displays (FEDs; Field Emission Display), etc. of displays or protective plates of those displays, or those with an antireflection film treatment on their surfaces.
[0232] The article having the layer obtained by the present disclosure is not particularly limited, but can be an optical member. Examples of the optical member include the following: lenses such as glasses; front protective plates, antireflection plates, polarizing plates, antiglare plates of displays such as PDPs and LCDs; touch panel sheets of devices such as mobile phones and personal digital assistants; disk surfaces of optical disks such as Blu-ray (registered trademark) disks, DVD disks, CD-Rs, and MOs; optical fibers; display surfaces of watches, etc.
[0233] In addition, an article having the layer obtained by the present disclosure may be an interior or exterior automotive member. Examples of exterior materials include the following: windows, light covers, and outside camera covers. Examples of interior materials include the following: instrument panel covers, navigation system touch panels, and decorative interior materials.
[0234] In addition, an article having the layer obtained by the present disclosure may be a medical device or a medical material.
[0235] The thickness of the above layer is not particularly limited. In the case of an optical member, from the viewpoints of optical performance, surface slipperiness, friction durability, and antifouling property, it is preferable that the thickness of the above layer is in the range of 1 to 50 nm, 1 to 30 nm, preferably 1 to 15 nm.
[0236] Although the embodiments have been described above, it will be understood that various changes in form and details can be made without departing from the spirit and scope of the claims.
Examples
[0237] Hereinafter, the present disclosure will be described more specifically through examples, but the present disclosure is not limited to these examples. In the present examples, all the chemical formulas shown below represent average compositions, and the order of the repeating units constituting the perfluoropolyether is arbitrary.
[0238] (Example 1) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 CH=CH 21.0 mmol of the terminal allyl compound 4g, represented by (n = 22, m = 22), was dissolved in 8.0 mL of AK-225, and then 0.5 g of methyl butenoate and 42 mg of Grubbs catalyst (second generation) were added. After stirring overnight at room temperature, it was washed with chloroform and then concentrated to dryness. The composition obtained by concentration to dryness was purified by silica gel column to obtain 2.1 g of compound 1-1. (Compound 1-1) [Chemical formula] 1 H NMR (mXHF, 400 MHz) δ: 3.05 - 3.21 (m, 2 H), 3.30 - 3.45 (m, 2 H), 3.96 (s, 3 H), 5.80 - 5.90 (m, 1 H), 6.20 - 6.25 (m, 1 H); 19 F NMR (mXHF, 400 MHz) δ: -54.0, -55.7, -56.6, -57.5, -58.0, -58.5, -60.0, -72.5, -74.7, -83.7, -86.0, -87.7, -91.5, -93.0.
[0239] 2.1 g of compound 1-1 was dissolved in 10.0 mL of 2,2,3,3,3-pentafluoro-1-propanol, and then a suspension of 0.5 g of palladium on activated carbon in 3.0 mL of formic acid and 1.0 mL of water was added, and it was stirred overnight at room temperature. Subsequently, it was filtered through celite, concentrated to dryness, and purified by silica gel column to obtain 1.73 g of compound 1-2. (Compound 1-2) [Chemical formula] 1 H NMR (mXHF, 400 MHz) δ: 1.90 - 2.10 (m, 2 H), 2.30 - 2.50 (m, 2 H), 2.57 - 2.62 (m, 2 H), 3.97 (s, 3 H); 1919F NMR (mXHF, 400 MHz) δ: -54.2, -55.8, -56.4, -57.5, -58.3, 60.0, -72.4, -74.5, -83.5, -87.4, -91.4, -92.8, -93.2.
[0240] 1.72 g of Compound 1-2 was dissolved in 5.0 mL of HFE7200 and cooled to 0 °C, and then 1.84 mL of allylmagnesium bromide (approx. 13% ethyl ether solution, approx. 0.7 mol / L) was added dropwise. After the addition, the mixture was stirred until the next morning. Subsequently, hydrochloric acid was added to the reaction solution and stirred, and then the hydrochloric acid phase was removed by liquid separation and washed with water. Subsequently, it was washed with acetone, concentrated to dryness, and purified by silica gel column to obtain 1.09 g of Compound 1-3. (Compound 1-3) [Chemical formula] 1 1H NMR (mXHF, 400 MHz) δ: 1.50 - 2.00 (m, 6 H), 2.30 - 2.60 (m, 7 H), 5.30 - 5.50 (m, 4 H), 6.10 - 6.27 (m, 2 H).
[0241] 0.53 g of Compound 1-3 was dissolved in 5.0 mL of AK-225, and then 0.16 mL of Hunig's base was added. Subsequently, 75.0 μl of methoxyethoxymethyl chloride was added, and the mixture was stirred at 35 °C for 4 days. Subsequently, it was washed with methanol and acetone, concentrated to dryness, and 0.54 g of Compound 1-4 was obtained. (Compound 1-4) [Chemical formula] 11H NMR (mXHF, 400 MHz) δ: 1.80 - 2.00 (m, 6 H), 2.40 - 2.55 (m, 2 H), 2.60 - 2.70 (m, 4 H), 3.65 (s, 3 H), 3.80 - 3.90 (m, 2 H), 4.05 - 4.10 (m, 2 H), 5.14 (s, 2 H), 5.30 - 5.45 (m, 4 H), 6.10 - 6.25 (m, 2 H).
[0242] After dissolving 0.56 g of Compound 1-4 in 1.5 mL of HFE7200, 40.0 μL of the Karlstedt catalyst and 6.0 μL of aniline were added in sequence. After stirring at room temperature for 30 minutes, 0.2 mL of trimethoxysilane was added, and the mixture was stirred at room temperature for 3 hours. After filtration and concentration to dryness, 0.56 g of Compound 1-5 was obtained. (Compound 1-5)
Chemical formula
[0243] (Example 2) After dissolving 0.507 g of Compound 1-3 in 5.0 mL of AK-225, 0.304 mL of Hunig's base was added. Subsequently, 80.0 μL of methoxymethyl chloride was added, and the mixture was stirred at 35 °C for 5 days. Subsequently, it was washed with methanol, acetone, and chloroform. After concentration to dryness and purification by silica gel column, 0.51 g of Compound 2-1 was obtained. (Compound 2-1)
Chem.
[0244] After dissolving 0.58 g of Compound 2 - 1 in 2.0 mL of HFE7200, 40.0 μL of a Karl Fischer catalyst and 7.0 μL of aniline were added. After stirring at room temperature for 30 minutes, 0.2 mL (1.57 mmol) of trimethoxysilane was added, and the mixture was stirred at room temperature for 2.5 hours. After filtration and concentration to dryness, 0.59 g of Compound 2 - 2 was obtained. (Compound 2 - 2)
Chem.
[0245] (Example 3) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 CH=CH 2 2 g of the terminal allyl compound represented by (n = 22, m = 22) was dissolved in 3.0 mL of AK-225, and then 0.544 mL of ethyl acrylate and 21 mg of Grubbs catalyst (second generation) were added. After stirring overnight at room temperature, it was washed with chloroform and concentrated to dryness. By purification using a silica gel column, 1.86 g of Compound 3-1 was obtained. (Compound 3-1)
Chemical formula
[0246] 1.83 g of Compound 3-1 was dissolved in 12.0 mL of 2,2,3,3,3-pentafluoro-1-propanol, and then a suspension of 0.3 g of palladium on activated carbon in 4.0 mL of formic acid and 1.0 mL of water was added, and the mixture was stirred overnight at room temperature. Subsequently, after filtration through celite and concentration to dryness, 1.69 g of Compound 3-2 was obtained. (Compound 3-2)
Chemical formula
[0247] After dissolving 1.69 g of Compound 3 - 2 in 4.0 mL of HFE7200, the solution was cooled to 0 °C, and 1.81 mL of allylmagnesium bromide (about 13% ethyl ether solution, about 0.7 mol / L) was added dropwise. After the addition, the mixture was stirred until the next morning. Hydrochloric acid was added to the reaction solution and stirred, and then the hydrochloric acid layer was removed by liquid separation and washed with water. Subsequently, it was washed with methanol and chloroform, and after concentration to dryness, 1.69 g of Compound 3 - 3 was obtained. (Compound 3 - 3)
Chem.
[0248] After dissolving 0.62 g of Compound 3 - 3 in 1.2 mL of HFE7200, 35.0 μL of a Karl Fischer catalyst and 5.6 μL of aniline were added. After stirring at room temperature for 30 minutes, 0.138 mL of trimethoxysilane was added, and the mixture was stirred at room temperature for 3 hours. Subsequently, it was washed with chloroform and concentrated to dryness to obtain 0.64 g of Compound 3 - 4. (Compound 3 - 4)
Chem.
[0249] (Example 4) After dissolving 0.577 g of Compound 3 - 3 in 2.0 mL of AK - 225, 148.0 μL of Hunig's base was added. Subsequently, 46.0 μL of methoxymethyl chloride was added, and the mixture was stirred at 37 °C for two nights. Subsequently, it was washed with methanol, acetone, and chloroform. After concentration to dryness, purification by silica gel column chromatography gave 0.554 g of Compound 4 - 1. (Compound 4 - 1) [Chemical formula] 1 1H NMR (mXHF, 400 MHz) δ: 1.80 - 2.05 (m, 2 H), 2.05 - 2.15 (m, 2 H), 2.30 - 2.45 (m, 2 H), 2.65 - 2.70 (m, 4 H), 3.70 (s, 3 H), 5.04 (s, 2 H), 5.30 - 5.45 (m, 4 H), 6.15 - 6.25 (m, 2 H); 19 19F NMR (mXHF, 400 MHz) δ: -54.3, -55.8, -56.5, -57.5, -58.2, -58.3, -60.0, -72.3, -74.5, -86.0, -87.8, -91.2, -93.2.
[0250] After dissolving 0.554 g of Compound 4-1 in 1.0 mL of HFE7200, 35.0 μL of Karl Fischer catalyst and 5.6 μL of aniline were added. After stirring at room temperature for 30 minutes, 88.0 μL of trimethoxysilane was added and the mixture was stirred at room temperature for 2.5 hours. After filtration and concentration to dryness, 0.59 g of Compound 4-2 was obtained. (Compound 4-2)
Chemical Structure
[0251] (Example 5) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 CH=CH 2 After dissolving 5.32 g of the terminal allyl compound represented by (n = 22, m = 22) in 25.0 mL of AK-225, 1.89 mL of ethyl pentenoate and 0.113 g of Grubbs catalyst (second generation) were added. After stirring overnight at 35 °C, it was washed with acetone and chloroform and then concentrated to dryness. By purification with a silica gel column, 2.71 g of Compound 5-1 was obtained. (Compound 5-1)
Chemical Structure
[0252] After dissolving 2.7 g of Compound 5 - 1 in 10.0 mL of 2,2,3,3,3 - pentafluoro - 1 - propanol, 0.3 g of palladium - on - activated carbon suspended in 2.0 mL of formic acid and 1.0 mL of water was added, and the mixture was stirred overnight at room temperature. Subsequently, it was filtered, concentrated to dryness, and washed with saturated aqueous sodium hydrogen carbonate solution and water. Na 2 SO 4 After drying over Na (Compound 5 - 2)
Chemical formula
[0253] After dissolving 2.58 g of Compound 5 - 2 in 4.0 mL of HFE7200, the solution was cooled to 0 °C, and 2.3 mL of allylmagnesium bromide (about 13% ethyl ether solution, about 0.7 mol / L) was added dropwise. After the addition, the mixture was stirred until the next morning. Hydrochloric acid was added to the reaction solution and stirred, then the hydrochloric acid layer was removed by liquid - separation, washed with water, methanol, and acetone, concentrated to dryness, and purified by silica gel column chromatography to obtain 2.24 g of Compound 5 - 3. (Compound 5-3)
Chem.
[0254] After dissolving 0.42 g of Compound 5-3 in 1.1 mL of HFE7200, 25.0 μl of Karlstedt catalyst and 4.0 μl of aniline were added. After stirring at room temperature for 30 minutes, 0.1 mL of trimethoxysilane was added and stirred at room temperature for 3.5 hours. After filtration and concentration to dryness, 0.44 g of Compound 5-4 was obtained. (Compound 5-4)
Chem.
[0255] (Example 6) After dissolving 0.668 g of Compound 5-3 in 3.0 mL of AK-225, 0.17 mL of Hunig's base, DMAP, and 50.0 μL of methoxymethyl chloride were added, and the mixture was stirred at a bath temperature of 35 °C for 4 days. Subsequently, the reaction solution was concentrated to dryness and then purified by silica gel column chromatography to obtain 0.56 g of Compound 6-1. (Compound 6-1)
Chemical Structure
[0256] After dissolving 0.56 g of Compound 6-1 in 1.1 mL of HFE7200, 24.7 μL of Karlstedt's catalyst and 4.0 μL of aniline were added. After stirring at room temperature for 30 minutes, 98.7 μL of trimethoxysilane was added, and the mixture was stirred at room temperature for 3.5 hours. After filtration and concentration to dryness, 0.57 g of Compound 6-2 was obtained. (Compound 6-2)
Chemical Structure
[0257] (Example 7) 3.45 g of β-propiolactone was dissolved in 10.0 mL of methanol, and then 0.53 g of sodium methoxide was added. After stirring at 50 °C for one and a half hours, it was concentrated to dryness. Diethyl ether and water were added to the composition obtained by concentration to dryness, followed by liquid separation and concentration to dryness to obtain 2.2 g of Compound 7-1. (Compound 7-1) [Chemical formula] 1 1H NMR (CDCl 3 , 400 MHz) δ: 1.60-1.85 (m, 7 H), 1.90-2.00 (m, 2 H), 2.35-2.45 (m, 2 H), 2.56-2.90 (m, 2 H), 3.72 (s, 3 H), 3.87 (m, 2 H)
[0258] 2.2 g of Compound 7-1 was dissolved in 15.0 mL of N,N-dimethylformamide (DMF) and cooled in an ice bath. After 10 minutes, 1.73 g of imidazole and 3.82 g of tert-butyldimethylsilyl chloride were added in sequence, and the mixture was stirred until the next morning. Diethyl ether and water were added to the reaction solution, followed by liquid separation, concentration to dryness, and column purification to obtain 2.81 g of Compound 7-2. (Compound 7-2) [Chemical formula] 1 1H NMR (CDCl 3, 400 MHz) δ: 0.04 (s, 6 H), 0.86 (s, 9 H), 2.35 - 2.45 (m, 2 H), 2.52 (t, 2 H), 3.67 (s, 3 H), 3.88 (t, 2 H)
[0259] After dissolving 2.71 g of Compound 7 - 2 in 8.0 mL of tetrahydrofuran (THF), it was cooled in an ice bath. After 10 minutes, 39 mL of allylmagnesium bromide was added, and the mixture was stirred until the next morning. Diethyl ether and an aqueous ammonium chloride solution were added to the reaction solution, followed by liquid separation. After concentration to dryness, column purification was performed to obtain 2.25 g of Compound 7 - 3. (Compound 7 - 3)
Chemical Structure
[0260] After dissolving 1.00 g of Compound 7 - 3 in 5.0 mL of dichloromethane, 1.89 mL of allyldiisopropylethylamine and 0.56 mL of methoxymethyl chloride were added, and the mixture was stirred at room temperature for 4 days. Water was added to the reaction solution, followed by liquid separation. After concentration to dryness, column purification was performed to obtain 0.96 g of Compound 7 - 4. (Compound 7 - 4)
Chemical Structure
[0261] After dissolving 0.96 g of Compound 7 - 4 in 10.0 mL of THF, 3.97 mL of a THF solution of tetrabutylammonium fluoride was added, and the mixture was stirred overnight at room temperature. After adding an aqueous ammonium chloride solution and chloroform to the reaction solution, liquid separation was performed. After concentration to dryness, column purification was carried out to obtain 0.57 g of Compound 7 - 5. (Compound 7 - 5)
Chemical Structure
[0262] After dissolving 0.2 g of Compound 7 - 5 in 5.0 mL of THF, 0.191 g of phthalimide and 0.341 g of triphenylphosphine were added in sequence, and then 0.683 mL of diisopropyl azodicarboxylate was added. After stirring overnight at room temperature, water and diethyl ether were added to the reaction solution. After liquid separation and concentration to dryness, column purification was carried out to obtain 0.288 g of Compound 7 - 6. (Compound 7 - 6)
Chemical Structure
[0263] After dissolving 0.288 g of Compound 7 - 6 in 5.0 mL of methanol, 0.292 mL of ethylenediamine was added, and the mixture was stirred overnight at room temperature. After adding water and chloroform to the reaction solution, the layers were separated, and by concentrating to dryness, 0.18 g of Compound 7 - 7 was obtained. (Compound 7 - 7)
Chemical Structure
[0264] CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 COOCH 3 (where n = 25, m = 25) 1 g of the methyl ester and 79.7 mg of Compound 7 - 7 were dissolved in 1.5 mL of AK225, and the mixture was stirred at room temperature for 5 hours. After adding perfluorohexane and acetone to the reaction solution, the layers were separated, and by concentrating to dryness, 1.17 g of Compound 7 - 8 was obtained. (Compound 7 - 8)
Chemical Structure
[0265] 0.99 g of Compound 7 - 8 was dissolved in 1.5 mL of HFE7200, and then 44.2 μL of Karlstedt catalyst and 7.2 μL of aniline were added. After stirring at room temperature for 30 minutes, 0.126 μL of trimethoxysilane was added, and the mixture was stirred at room temperature for 3 hours. After filtration and concentration to dryness, 0.96 g of Compound 7 - 9 was obtained. (Compound 7 - 9)
Chemical Structure
[0266] (Comparative Example 1) Compound C - 1 was obtained according to the method described in Example 1 of WO2017 / 212850 (n:m = 53:47, n + m = 43). (Compound C - 1)
Chemical Structure
[0267] <Formation of surface treatment layer> The fluoropolyether group-containing silane compounds obtained in Examples 1 to 7 and Comparative Example 1 were diluted with Novec 7200 (manufactured by 3M, ethyl perfluorobutyl ether) to a concentration of 0.06% by mass to prepare a surface treatment agent. Then, using a spray coater on a chemically strengthened glass (Gorilla 3 manufactured by Corning) whose surface was treated with atmospheric pressure plasma as a substrate, the surface treatment agent prepared above was applied. The coating amount was 60 g / m of the surface treatment agent 2 Subsequently, the substrate coated with the surface treatment agent was heat-treated at 140°C for 30 minutes under atmospheric pressure to form a surface treatment layer.
[0268] <Method for measuring static contact angle of water> The static contact angle was measured using a fully automatic contact angle meter DropMaster700 (manufactured by Kyowa Interface Science Co., Ltd.). Specifically, the substrate having the surface treatment layer to be measured was horizontally stationary, 2 μL of water was dropped onto the surface from a microsyringe, and the static contact angle was measured by photographing the stationary image 1 second after the drop with a video microscope. The static contact angle of water was measured at five different points on the surface treatment layer of the substrate, and the average value was used.
[0269] <Evaluation of eraser durability> (Initial evaluation) As the initial evaluation (0 eraser friction times), after wiping off the excess on the surface after the formation of the surface treatment layer, the static contact angle of water was measured. (Evaluation after eraser durability test) For the formed surface treatment layer, using a rubbing tester (manufactured by Shin-Toyo Kagaku Co., Ltd.), the static contact angle of water was measured every 2500 reciprocations under the following conditions up to 10,000 times. The test environmental conditions were 25°C and 40%RH humidity. Eraser: Raber Eraser (manufactured by Minoan) Contact area: 6 mmφ Moving distance (one way): 40 mm Moving speed: 3,600 mm / min Load: 1 kg / 6 mmφ
[0270] The results are shown in Table 1.
[0271]
Table 1
[0272] (Synthesis Example 1) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 4.57 g of the carboxylic acid represented by COOH (n = 25, m = 25) was dissolved in 6.0 mL of metaxylene hexafluoride (mXHF), then 25 μl of DMF and 0.3 mL of thionyl chloride were added, and after stirring at room temperature, it was stirred at 90 °C for 3 hours. After 3 hours, the reaction solution was concentrated to dryness to obtain the acid chloride represented by CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 COCl (n = 25, m = 25). The acid chloride synthesized above was dissolved in a mixed solvent of 6.0 mL of AK-225 and 1.0 mL of chloroform, and then 0.205 g of the hydrochloride of N,O-dimethylhydroxyamine was added. Subsequently, after 0.323 mL of pyridine was added dropwise, it was stirred at 60 °C overnight. After the reaction solution was washed with hydrochloric acid, it was washed with water. Subsequently, it was washed with methanol and acetone and concentrated to dryness to obtain 4.60 g of the following Compound 1A-1. (Compound 1A-1)
Chemical formula
[0273] 5.10 g of Compound 1A-1 was dissolved in 20.0 mL of HFE7200, and then the reaction solution was cooled to 0 °C. Subsequently, 2.46 mL of 1 mol / L diisobutylaluminum hydride (DIBAL-H) was added dropwise, and then stirred overnight. Subsequently, hydrochloric acid was added to the reaction solution and stirred, and then the hydrochloric acid phase was removed by liquid separation. Subsequently, it was washed with water and saturated brine, and then dried over sodium sulfate. Subsequently, the solution was filtered and then concentrated to dryness. The composition obtained by concentration to dryness was washed with methanol and chloroform, and concentrated to dryness to obtain 5.1 g of Compound 1A-2. (Compound 1A-2)
Chemical Structure
[0274] 5.1 g of Compound 1A-2 was dissolved in 16.0 mL of HFE7200, and then 0.816 g of ethyl (triphenylphosphoranylidene) acetate was added at room temperature. Subsequently, 5 mL of THF and 10 mL of dichloromethane (DCM) were added, and stirred overnight at room temperature. Perfluorohexane was added to the reaction solution, and it was washed in the order of methanol, acetone, and chloroform, and concentrated to dryness to obtain 5.2 g of Compound 1A-3. (Compound 1A-3)
Chemical Structure
[0275] 5.1 g of Compound 1A - 3 was dissolved in 16.0 mL of 2,2,3,3,3 - pentafluoro - 1 - propanol. Then, a suspension of 1 g of palladium - on - activated carbon in 5.0 mL of formic acid and 1.0 mL of water was added, and the mixture was stirred at room temperature overnight. After filtration through celite, it was concentrated to dryness. The resulting composition was dissolved in mXHF, and the solution obtained by passing through amino - silica gel was filtered and concentrated to dryness to obtain 4.59 g of Compound 1A - 4. (Compound 1A - 4)
Chemical Structure
[0276] 4.52 g of Compound 1A - 4 was dissolved in 10.0 mL of HFE7200. Then, 4.24 mL of allylmagnesium bromide (about 13% ethyl ether solution, about 0.7 mol / L) was added dropwise at 0 °C. After the addition, it was stirred until the next morning. Hydrochloric acid was added to the reaction solution and stirred. The hydrochloric acid phase was removed by liquid separation and washed with water. Subsequently, it was washed with methanol, acetone, and chloroform in that order. After filtration, the solution was concentrated to dryness to obtain 4.60 g of Compound 1A - 5. (Compound 1A - 5)
Chemical Structure
[0277] After dissolving 0.8 g of Compound 1A - 5 in 1.5 mL of AK - 225, 0.149 mL of Hunig's base was added. Subsequently, 39.5 μl of methoxymethyl chloride was added, and the mixture was stirred at room temperature for 2 days and further at 35 °C for 3 days. Subsequently, the reaction solution was washed successively with methanol, acetone, and chloroform and concentrated to dryness to obtain 0.8 g of Compound 1A - 6. (Compound 1A - 6)
Chemical Structure
[0278] (Synthesis Example 2) 1.27 g of Compound 3-3 was dissolved in a mixed solvent of 3.0 mL of AK-225 and 0.7 mL of DMF, and then 67.0 mg of imidazole was added. Subsequently, 64.0 μl of trimethylsilyl chloride was added, and the mixture was stirred overnight at room temperature. Subsequently, after washing with saturated aqueous sodium hydrogen carbonate solution, water, and methanol, and concentrating to dryness, 0.71 g of Compound 2A-1 was obtained. (Compound 2A-1)
Chemical formula
[0279] (Synthesis Example 3) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 OH (n = 25, m = 25) of 1.71 g of the alcohol represented by was dissolved in a mixed solvent of 3.0 mL of AK-225 and 0.4 mL of DMF, and then 23 mg of sodium hydride was added, and the mixture was stirred at room temperature for 30 minutes. Subsequently, 0.112 mL of methyl chloroacetate and 15.7 mg of tetrabutylammonium iodide (TBAI) were added, and the mixture was stirred overnight at 80 °C. Hydrochloric acid was added to the reaction solution and stirred, and the hydrochloric acid layer was removed by liquid separation and washed with water and acetone. After concentrating to dryness, it was purified by silica gel column chromatography to obtain 0.93 g of Compound 3A-1. (Compound 3A-1)
Chemical formula
[0280] After dissolving 1.34 g of Compound 3A-1 in 4.0 mL of HFE7200, the solution was cooled to 0 °C, and 1.44 mL of allylmagnesium bromide (approx. 13% ethyl ether solution, approx. 0.7 mol / L) was added dropwise. After the addition, the mixture was stirred until the next morning. Subsequently, hydrochloric acid was added to the reaction solution and stirred, and then the hydrochloric acid layer was removed by liquid separation and washed with water and acetone. After concentration to dryness, 1.36 g of Compound 3A-2 was obtained. (Compound 3A-2)
Chem.
[0281] After dissolving 0.56 g of Compound 3A-2 in 1.3 mL of AK-225, 74.0 μl of Hunig's base was added. Subsequently, 22.0 μl of methoxymethyl chloride was added, and the mixture was stirred at 37 °C overnight. Subsequently, 74.0 μl of Hunig's base and 23.0 μl of methoxymethyl chloride were added, and the mixture was stirred for 5 days. The reaction solution was washed with methanol, acetone, and chloroform. After concentrating this solution to dryness and purifying it by silica gel column chromatography, 0.597 g of Compound 3A-3 was obtained. (Compound 3A-3)
Chem.
[0282] (Synthesis Example 4) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 CH=CH 2 (n = 22, m = 22) The terminal allyl compound 4.0 g, methyl p - bromobenzoate 0.43 g, Pd(OAc) 2 22.5 mg, triphenylphosphine 52.4 mg, mXHF 6.0 mL, DMF 1.0 mL, triethylamine 0.307 mL were added at room temperature and stirred at 100 °C overnight. Subsequently, it was washed with methanol, acetone, and chloroform, concentrated to dryness, and then purified by silica gel column to obtain 1.63 g of compound 4A - 1. (Compound 4A - 1)
Chemical Structure
[0283] After dissolving 1.61 g of Compound 4A-1 in 15.0 mL of 2,2,3,3,3-pentafluoro-1-propanol, 0.6 g of palladium on activated carbon suspended in 5.0 mL of formic acid and 1.0 mL of water was added, and the mixture was stirred at room temperature overnight. Subsequently, after filtration through celite, concentration to dryness, and purification by silica gel column, 0.9 g of Compound 4A-2 was obtained. (Compound 4A-2)
Chemical Structure
[0284] After dissolving 0.94 g of Compound 4A-2 in 5.0 mL of HFE7200, the solution was cooled to 0 °C, and 1.0 mL of allylmagnesium bromide (approx. 13% ethyl ether solution, approx. 0.7 mol / L) was added dropwise. After the addition, the mixture was stirred until the next morning. Subsequently, hydrochloric acid was added to the reaction solution and stirred, and the hydrochloric acid layer was removed by liquid separation. The residue was washed with water, methanol, and acetone, concentrated to dryness, and purified by silica gel column to obtain 0.551 g of Compound 4A-3. (Compound 4A-3)
Chemical Structure
[0285] After dissolving 0.53 g of Compound 4A-3 in 3.0 mL of AK-225, 0.135 mL of Hunig's base was added. Subsequently, 39.9 μl of methoxymethyl chloride was added, and the mixture was stirred at 37 °C for 4 days. The reaction solution was washed with methanol and chloroform, concentrated to dryness, and purified by silica gel column chromatography to obtain 0.55 g of Compound 4A-4. (Compound 4A-4)
Chemical formula
[0286] (Synthesis Example 5) CF 3 O-(CF 2 CF 2 O) n -(CF 2 O) m -CF 2 CH 2 CH=CH 2 After dissolving 6.2 g of the terminal allyl compound represented by (n = 22, m = 22) in 12 mL of AK-225, 2.18 mL of methyl hexenoate and 65.8 mg of Grubbs catalyst (second generation) were added. After stirring overnight at room temperature, the mixture was washed with methanol and acetone, concentrated to dryness, and purified by silica gel column chromatography to obtain 2.64 g of Compound 5A-1. (Compound 5A-1)
Chemical formula
[0287] 2.63 g of Compound 5A - 1 was dissolved in 10.0 mL of 2,2,3,3,3 - pentafluoro - 1 - propanol, and then 0.48 g of palladium on activated carbon was added. Subsequently, it was stirred overnight at room temperature under a hydrogen gas atmosphere, filtered, concentrated to dryness, and 2.58 g of Compound 5A - 2 was obtained. (Compound 5A - 2)
Chemical Structure
[0288] 2.57 g of Compound 5A - 2 was dissolved in 5.0 mL of HFE7200, cooled to 0 °C, and 2.75 mL of allylmagnesium bromide (about 13% ethyl ether solution, about 0.7 mol / L) was added dropwise. After the addition, it was stirred until the next morning. Hydrochloric acid was added to the reaction solution and stirred, and then the hydrochloric acid phase was removed by liquid separation and washed with water, methanol, and acetone. After concentration to dryness and purification by silica gel column chromatography, 1.99 g of Compound 5A - 3 was obtained. (Compound 5A - 3)
Chemical Structure
Industrial Applicability
[0289] The fluoropolyether group-containing silane compound of the present disclosure can be suitably used to form a surface treatment layer on the surfaces of various substrates, particularly optical members that require tribological durability.
Claims
1. The following formula (A1) or (A2): 【Chemistry 1】 The fluoropolyether group-containing silane compound is represented by the formula: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F each independently represents the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; X 1 may independently at each occurrence represent the following formula: -(CR 50 2 ) n51 -(CR 51 =CR 52 ) n52 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 - It is represented by: R 50 is independently in each occurrence a hydrogen atom, a halogen atom, a hydroxyl group, or a monovalent organic group; R 51 and R 52 is independently at each occurrence a hydrogen atom or a monovalent organic group; Y 51 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n54 is independently 0 or 1; Each n55 is independently 0 or 1; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group or C 3-10 is a cycloalkyl group; n51 is an integer from 0 to 10; n52 is an integer from 0 to 10; n53 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n51, n52, or n53 is arbitrary in the formula, and the sum of n51, n52, and n53 is 1 or more; R Si are each independently represented by the following formula (S1): 【Chemistry 2】 is a group represented by X 3 is independently at each occurrence a single bond, an oxygen atom, or a divalent organic group; R b1 is independently at each occurrence a hydroxyl group or a hydrolyzable group; R c1 is independently at each occurrence a hydrogen atom or a monovalent organic group; l1, at each occurrence, is independently an integer from 0 to 3; In each of formulas (A1) and (A2), at least one l1 is 1; R 11 is independently at each occurrence a hydrogen atom, a benzyl group, a methoxyphenyl group, a benzoyl group, a trityl group, -SiR 71 , or -(R 72 -O) n7 -R 73 and R 71 are each independently 1-4 is an alkyl group, R 72 are each independently 1-4 is an alkylene group, Each n7 is independently an integer from 1 to 10; R 73 are each independently a hydrogen atom or a monovalent hydrocarbon group which may contain a ring structure.
2. X 1 represents, independently at each occurrence, the formula (X1) or (X2): -X 51 -CR 51 =CR 52 -X 52 - ・・・(X1) -X 53 - ・・・(X2) It is represented by: X 51 は、-(CR 50 2 ) n511 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n512 - It is represented by: R 50 is independently in each occurrence a hydrogen atom, a halogen atom, a hydroxyl group, or a monovalent organic group; Y 51 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n54 is independently 0 or 1; Each n55 is independently 0 or 1; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group or C 3-10 is a cycloalkyl group; n511 is an integer from 0 to 10; n512 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n511 or n512 is arbitrary in the formula; X 52 is -(CR 50 2 ) n511’ - ((CH 2 ) n55 -Y 51 - (CH 2 ) n54 ) n512’ - represented by; n511' is an integer from 0 to 10; n512' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n511' or n512' is arbitrary in the formula; R 51 and R 52 are each independently a hydrogen atom or a monovalent organic group; X 53 are each independently -(CR 50 2 ) n521 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n522 - It is represented by: n521 is an integer from 0 to 10; n522 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n521 or n522 is arbitrary in the formula, and the sum of n521 and n522 is 1 or more. The fluoropolyether group-containing silane compound according to claim 1 .
3. R 50 is independently a hydrogen atom, a halogen atom, a hydroxyl group, -O-(R 14 -O) n4 -R 14’ , or C 1-4 The fluoropolyether group-containing silane compound according to claim 1 or 2, which is an alkyl group. [In the formula: R 14 are each independently 1-4 is an alkylene group; Each n4 is independently an integer from 0 to 100; R 14’ are each independently 1-4 is an alkyl group; Above C 1-4 The alkyl group may have a substituent.
4. X 1 may each independently in each occurrence: -CHR 13 -[(CR 50’ 2 ) n51’ -(CR 51 =CR 52 ) n52 -((CH 2 ) n55 -Y 51 -(CH 2 ) n54 ) n53 ]- is a group represented by R 13 is -OH or -O-(R 14 -O) n4 -R 14’ It is represented by: R 14 are each independently C 1-4 is an alkylene group; n4 is an integer from 0 to 100; R 14’ is C 1-4 is an alkyl group; R 50’ each independently represents a hydrogen atom, a halogen atom, a hydroxyl group, or a monovalent organic group; n51' is an integer from 0 to 10; n52 is an integer from 0 to 10; n53 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n51', n52 or n53 is -(CR 50’ 2 ) n51’ - (CR 51 =CR 52 ) n52 - ((CH 2 ) n55 -Y 51 - (CH 2 ) n54 ) n53 - is optional within R 51 and R 52 are each independently a hydrogen atom or a monovalent organic group; Y 51 are each independently O, CONR 15 , N.R. 15 , S, or an arylene group; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group or C 3-10 is a cycloalkyl group; Each n54 is independently 0 or 1; Each n55 is independently 0 or 1; The fluoropolyether group-containing silane compound according to claim 1 .
5. R 50’ The fluoropolyether group-containing silane compound according to claim 4 , wherein is a hydrogen atom.
6. R 51 and R 52 The fluoropolyether group-containing silane compound according to any one of claims 1 to 5, wherein is a hydrogen atom.
7. R 11 is independently at each occurrence a hydrogen atom or -(R 72 -O) n7 -R 73 is a group represented by R 72 are each independently 1-4 is an alkylene group, R 73 represents a hydrogen atom or a monovalent hydrocarbon group which may contain a ring structure, n7 is an integer from 1 to 10; The fluoropolyether group-containing silane compound according to any one of claims 1 to 6.
8. R 11 is independently at each occurrence -CH 2 O-R 11’ and R 11’ is a hydrogen atom or -(R 72 -O) n7’ -R 73 and R 72 are each independently 1-4 is an alkylene group, R 73 represents a hydrogen atom or a monovalent hydrocarbon group which may contain a ring structure, n7' is an integer from 0 to 9; The fluoropolyether group-containing silane compound according to any one of claims 1 to 7.
9. R 73 are each independently a hydrogen atom or C 1-4 The fluoropolyether group-containing silane compound according to any one of claims 1 to 8, which is an alkyl group.
10. The fluoropolyether group-containing silane compound according to any one of claims 1 to 9, wherein n55 is 1.
11. The fluoropolyether group-containing silane compound according to any one of claims 1 to 9, wherein n54 and n55 are 0.
12. A surface treatment agent comprising at least one selected from the group consisting of the fluoropolyether group-containing silane compound according to any one of claims 1 to 11 and a condensate obtained by condensing at least a portion of the fluoropolyether group-containing silane compound.
13. A surface treatment agent comprising the fluoropolyether group-containing silane compound according to any one of claims 1 to 11.
14. An article comprising a substrate and a layer formed on a surface of the substrate from the fluoropolyether group-containing silane compound according to any one of claims 1 to 11 or the surface treatment agent according to claim 12 or 13.
15. Formula (a11) or Formula (a12): 【Chemistry 3】 and a compound represented by formula (a13): 【Chemistry 4】 and a compound represented by formula (a21) or (a22): 【Chemistry 5】 A step of obtaining a compound represented by A method for producing a fluoropolyether group-containing compound, comprising: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F each independently represents the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; X 61 Each independently represents -(CR 60 2 ) n611 - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612 - represented by; R 60 represents, independently at each occurrence, a hydrogen atom, a halogen atom, or a monovalent organic group; Y 61 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n613 is independently 0 or 1; Each n614 is independently 0 or 1; n611 is an integer from 0 to 10; n612 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula; X 62 Each independently represents -(CR 60 2 ) n611’ - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612’ - represented by; n611' is an integer from 0 to 10; n612' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611' or n612' is arbitrary in the formula; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group or C 3-10 is a cycloalkyl group; R 61 and R 62 is independently at each occurrence a hydrogen atom or a monovalent organic group; R 63 is independently at each occurrence a hydrogen atom or a monovalent organic group.
16. Formula (a31) or Formula (a32): 【Chemistry 6】 and a compound represented by the following formula (a33): 【Chemistry 7】 and a compound represented by formula (a21) or (a22): 【Chemistry 8】 A step of obtaining a compound represented by A method for producing a fluoropolyether group-containing compound, comprising: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F represents, independently at each occurrence, the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; X 61 is independently at each occurrence -(CR 60 2 ) n611 - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612 - represented by; R 60 represents, independently at each occurrence, a hydrogen atom, a halogen atom, or a monovalent organic group; Y 61 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n613 is independently 0 or 1; Each n614 is independently 0 or 1; n611 is an integer from 0 to 10; n612 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula; X 62 is independently at each occurrence -(CR 60 2 ) n611’ - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612’ - represented by; n611' is an integer from 0 to 10; n612' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611' or n612' is arbitrary in the formula; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group, or C 3-10 is a cycloalkyl group; R 61 and R 62 is independently at each occurrence a hydrogen atom or a monovalent organic group; R 63 is independently at each occurrence a hydrogen atom or a monovalent organic group.
17. Formula (a23) or Formula (a24): 【Chemistry 9】 and a compound represented by the formula: 23 -CH=CH 2 and reacting with a compound represented by formula (a25) or (a26): 【Chemistry 10】 A step of obtaining a compound represented by A method for producing a fluoropolyether group-containing compound, comprising: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F represents, independently at each occurrence, the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; -X 6 - represents, independently at each occurrence, -X 61 -CR 61 =CR 62 -X 62 -,or -X 63 - It is represented by: X 61 are each independently -(CR 60 2 ) n611 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n612 - It is represented by: R 60 represents, independently at each occurrence, a hydrogen atom, a halogen atom, or a monovalent organic group; Y 61 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n613 is independently 0 or 1; Each n614 is independently 0 or 1; n611 is an integer from 0 to 10; n612 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula; X 62 Each independently represents -(CR 60 2 ) n611’ - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612’ - represented by; n611' is an integer from 0 to 10; n612' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611' or n612' is arbitrary in the formula; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group, or C 3-10 is a cycloalkyl group; R 61 and R 62 are each independently a hydrogen atom or a monovalent organic group; X 63 are each independently -(CR 60 2 ) n621 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n622 - It is represented by: n621 is an integer from 0 to 10; n622 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n621 or n622 is arbitrary in the formula, and the sum of n621 and n622 is 1 or more; R 63 is independently at each occurrence a hydrogen atom or a monovalent organic group; Hal represents a halogen atom; J represents Mg, Cu, Pd or Zn; Z 23 each independently represents a single bond or a divalent organic group.
18. Formula (a23) or Formula (a24): 【Chemistry 11】 The fluoropolyether group-containing compound represented by the formula: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F represents, independently at each occurrence, the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; -X 6 - represents, independently at each occurrence, -X 61 -CR 61 =CR 62 -X 62 -,or -X 63 - It is represented by: X 61 are each independently -(CR 60 2 ) n611 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n612 - It is represented by: R 60 represents, independently at each occurrence, a hydrogen atom, a halogen atom, or a monovalent organic group; Y 61 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n613 is independently 0 or 1; Each n614 is independently 0 or 1; n611 is an integer from 0 to 10; n612 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula; X 62 Each independently represents -(CR 60 2 ) n611’ - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612’ - represented by; n611' is an integer from 0 to 10; n612' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611' or n612' is arbitrary in the formula; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group, or C 3-10 is a cycloalkyl group; R 61 and R 62 are each independently a hydrogen atom or a monovalent organic group; X 63 are each independently -(CR 60 2 ) n621 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n622 - It is represented by: n621 is an integer from 0 to 10; n622 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n621 or n622 is arbitrary in the formula, and the sum of n621 and n622 is 1 or more; R 63 are each independently a hydrogen atom or a monovalent organic group.
19. Formula (a27) or Formula (a28): 【Chemistry 12】 The fluoropolyether group-containing compound represented by the formula: [In the formula: R F1 is Rf 1 -R F -O q - represented by; R F2 is -Rf 2 p -R F -O q - represented by; Rf 1 C optionally substituted with one or more fluorine atoms 1-16 is an alkyl group; Rf 2 C optionally substituted with one or more fluorine atoms 1-6 is an alkylene group; R F represents, independently at each occurrence, the formula: -(OC 6 F 12 ) a -(OC 5 F 10 ) b -(OC 4 F 8 ) c -(OC 3 R Fa 6 ) d -(OC 2 F 4 ) e -(OCF 2 ) f - is a group represented by a, b, c, d, e, and f each independently represent an integer of 0 to 200, the sum of a, b, c, d, e, and f is 1 or more, and the order of the repeating units enclosed in parentheses with a, b, c, d, e, or f is arbitrary in the formula; R Fa is independently at each occurrence a hydrogen atom, a fluorine atom, or a chlorine atom; p is 0 or 1; q is independently 0 or 1; -X 6 - represents, independently at each occurrence, -X 61 -CR 61 =CR 62 -X 62 -,or -X 63 - It is represented by: X 61 are each independently -(CR 60 2 ) n611 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n612 - It is represented by: R 60 represents, independently at each occurrence, a hydrogen atom, a halogen atom, or a monovalent organic group; Y 61 each independently in each occurrence represents O, CONR 15 , N.R. 15 , S, or an arylene group; Each n613 is independently 0 or 1; Each n614 is independently 0 or 1; n611 is an integer from 0 to 10; n612 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611 or n612 is arbitrary in the formula; X 62 Each independently represents -(CR 60 2 ) n611’ - ((CH 2 ) n614 -Y 61 - (CH 2 ) n613 ) n612’ - represented by; n611' is an integer from 0 to 10; n612' is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n611' or n612' is arbitrary in the formula; R 15 each occurrence independently represents a hydrogen atom, a group having an aromatic ring, C 1-6 Alkyl group, —O—C 1-6 Alkyl group, or C 3-10 is a cycloalkyl group; R 61 and R 62 are each independently a hydrogen atom or a monovalent organic group; X 63 teeth, -(CR 60 2 ) n621 -((CH 2 ) n614 -Y 61 -(CH 2 ) n613 ) n622 - It is represented by: n621 is an integer from 0 to 10; n622 is an integer from 0 to 10; The order of occurrence of each repeating unit enclosed in parentheses with n621 or n622 is arbitrary in the formula, and the sum of n621 and n622 is 1 or more; R 65 are each independently a hydrogen atom or a monovalent organic group; Z 23 each independently represents a single bond or a divalent organic group.
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