Fluorine-containing ether compound, lubricant for magnetic recording medium, and magnetic recording medium

A fluorine-containing ether compound with a specific molecular structure addresses pickup and spin-off issues in magnetic recording media by improving adhesion, ensuring reliability and durability.

JP7779267B2Active Publication Date: 2025-12-03RESONAC CORP
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Patent Information

Application Number
JP2022569979
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-18
Filing Date
2021-12-13
Publication Date
2025-12-03
Estimated Expiration
2041-12-13

AI Technical Summary

Technical Problem

Magnetic recording media face challenges with lubricating layers that are prone to pickup and spin-off, especially with reduced magnetic spacing and higher rotation speeds, affecting reliability and durability.

Method used

A fluorine-containing ether compound with specific molecular structure, featuring a perfluoropolyether chain and branched terminal groups with primary hydroxyl groups, is used to form a lubricating layer that enhances adhesion to the protective layer, reducing pickup and spin-off.

Benefits of technology

The fluorine-containing ether compound forms a lubricating layer with improved adhesion, suppressing pickup and spin-off, thereby enhancing the reliability and durability of magnetic recording media.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A fluorine-containing ether compound represented by the following formula. R1-[B]-[A]-CH2-R2-CH2-[C]-[D]-R3 (R2 is a perfluorinated polyether chain; [A] is formula (2-1); [B] is formula (2-2); [C] is formula (3-1); [D] is formula (3-2); R3 is formula (4); and R1 is a terminal group.)
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Description

[Technical Field]

[0001] The present invention relates to a fluorine-containing ether compound, a lubricant for a magnetic recording medium, and a magnetic recording medium. This application claims priority based on Japanese Patent Application No. 2020-210570, filed on December 18, 2020, the contents of which are incorporated herein by reference. [Background technology]

[0002] In recent years, the amount of information processed via the Internet has increased dramatically. Accordingly, attention has been focused on the development of recording media for storing information. Magnetic recording media, in particular, are expected to accommodate the increasing volume of information because they can store large amounts of information at low cost. Generally, a protective layer and a lubricating layer are provided on the magnetic layer (magnetic recording layer) of a magnetic recording medium to ensure the durability and reliability of the magnetic recording medium. The lubricating layer disposed on the outermost surface of the magnetic recording medium is required to have various properties such as long-term stability, chemical resistance (to prevent contamination by siloxane, etc.), wear resistance, and heat resistance.

[0003] Conventionally, lubricants proposed for magnetic recording media contain compounds having polar groups such as hydroxyl groups at the ends of fluorine-based polymers having a repeating structure containing CF2 (see, for example, Patent Documents 1 to 7). Patent Document 1 discloses a compound having a plurality of hydroxyl groups at both terminal portions of a fluorine-based polymer, the hydroxyl groups being arranged so that the shortest distance between the hydroxyl groups is three atoms or more.

[0004] Patent Document 2 discloses a fluoropolyether compound having an aromatic group at one end of a fluorine-based polymer and a hydroxyl group at the other end. Patent Document 3 discloses a compound having a perfluoropolyether main chain and an aromatic group and a hydroxyl group at the molecular terminals, with the aromatic group and the hydroxyl group being bonded to different carbon atoms.

[0005] Patent Document 4 discloses a fluorine-containing ether compound having a perfluoropolyether chain. At one end of the perfluoropolyether chain, an end group containing an organic group having at least one double bond or triple bond is arranged via a divalent linking group bonded by an etheric oxygen. At the other end of the perfluoropolyether chain, an end group containing two or three polar groups is arranged, each polar group being bonded to a different carbon atom, and the carbon atoms to which the polar groups are bonded are bonded via a linking group containing a carbon atom to which no polar groups are bonded.

[0006] Patent Document 5 discloses a fluorine-containing ether compound having a perfluoropolyether chain. The fluorine-containing ether compound has, as terminal groups at both ends thereof, either an alkyl group which may have a substituent, an organic group having at least one double bond or triple bond, or a hydrogen atom. Furthermore, a linking group containing a hydroxyl group is disposed between the perfluoropolyether chain and each of the terminal groups.

[0007] Patent Document 6 discloses a fluorine-containing ether compound having a perfluoropolyether chain. An optionally substituted alkyl group is connected to one end of the perfluoropolyether chain via a divalent linking group. The other end of the perfluoropolyether chain is connected to an end group containing two or three polar groups, each bonded to a different carbon atom, and the carbon atoms bonded to the polar groups are connected to each other via a linking group containing a carbon atom not bonded to a polar group.

[0008] Patent Document 7 discloses a fluorine-containing ether compound having a perfluoropolyether chain. At least one of the terminal groups of the fluorine-containing ether compound is provided with a group in which one or more hydrogen atoms of an organic group having 1 to 8 carbon atoms have been substituted with a cyano group. In addition, a divalent linking group having a polar group is provided between the perfluoropolyether chain and the terminal group.

[0009] Patent Document 8 discloses a method for producing a polyol perfluoropolyether compound useful as a lubricant for magnetic media. Patent Document 8 describes the production of a polyol (per)fluoropolyether derivative by reacting a triol with an activator to synthesize an activated protected triol, and then subjecting the triol to a nucleophilic substitution reaction with hydroxyl groups located at both ends of a functional perfluoropolyether. [Prior art documents] [Patent documents]

[0010] [Patent Document 1] Patent No. 4632144 [Patent Document 2] Patent No. 5909837 [Patent Document 3] Patent No. 5465454 [Patent Document 4] International Publication No. 2017 / 154403 [Patent Document 5] International Publication No. 2019 / 054148 [Patent Document 6] International Publication No. 2019 / 049585 [Patent Document 7] International Publication No. 2019 / 039200 [Patent Document 8] Patent No. 5334064 Summary of the Invention [Problem to be solved by the invention]

[0011] In recent years, the diversification of applications for magnetic recording media has led to increasingly stringent environmental resistance requirements for magnetic recording media, which has led to demands for even greater long-term stability for lubricating layers, which have a significant impact on the reliability and durability of magnetic recording media. Pickup and spin-off characteristics are known as indicators of the long-term stability of a lubricant layer. Pickup is a phenomenon in which lubricant adheres to the magnetic head as foreign matter (smear). Pickup affects the flight stability of the magnetic head. Spin-off is a phenomenon in which the lubricant scatters or evaporates due to centrifugal force and heat generated by the rotation of the magnetic recording medium. When spin-off occurs, the thickness of the lubricant layer decreases, deteriorating the chemical resistance and wear resistance of the lubricant layer.

[0012] In recent years, in order to increase the capacity of magnetic recording media, there has been a demand for further reduction in magnetic spacing (the distance between the magnetic head and the magnetic layer of the magnetic recording medium) and for higher rotation speeds of the magnetic recording media. However, lowering the flying height of the magnetic head makes pickup more likely to occur. Furthermore, increasing the rotation speed of the magnetic recording medium makes spin-off more likely to occur.

[0013] The present invention has been made in view of the above circumstances, and aims to provide a fluorine-containing ether compound that can form a lubricating layer that is resistant to pick-up and spin-off and that can be suitably used as a material for a lubricant for a magnetic recording medium. Another object of the present invention is to provide a lubricant for magnetic recording media, which contains the fluorine-containing ether compound of the present invention. Another object of the present invention is to provide a magnetic recording medium having a lubricating layer containing the fluorine-containing ether compound of the present invention. [Means for solving the problem]

[0014] A first aspect of the present invention provides the following fluorine-containing ether compound: [1] A fluorine-containing ether compound represented by the following formula (1): R 1 -[B]-[A]-CH2-R 2 -CH2-[C]-[D]-R 3 (1) (In formula (1), R 2is a perfluoropolyether chain; [A] is represented by the following formula (2-1), in which a is an integer of 0 to 3; [B] is represented by the following formula (2-2), in which b is an integer of 0 to 3 and c is an integer of 2 to 5; provided that the sum of the values ​​of a and b is 1 to 3; [A] and [B] may be interchanged in formula (1); [C] is represented by the following formula (3-1), in which d is an integer of 0 to 2; [D] is represented by the following formula (3-2), in which e is an integer of 0 to 2 and f is an integer of 2 to 5; provided that the sum of the values ​​of d and e is 1 or 2; [C] and [D] may be interchanged in formula (1); R 3 is a branched terminal group having 3 to 30 carbon atoms and is represented by the following formula (4); L in formula (4) represents an integer of 0 to 6; Y in formula (4) 1 and Y 2 are each independently a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom; Y in formula (4) 3 is a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom, or a hydrogen atom; R 1 is R 3 is an end group which may be the same as or different from

[0015] [ka]

[0016] The fluorine-containing ether compound of the first aspect of the present invention preferably has the characteristics described in the following [2] to

[13] . It is also preferable to arbitrarily combine two or more of the characteristics described in the following [2] to

[13] . [2] R in the formula (1) 3 is a branched terminal group represented by any one of the following formulae (5-1) to (5-3):

[0022] (5-1) is a branched terminal group represented by any one of the following formulae (5-1) to (5-3):

[0017] [ka] (In formula (5-1), g represents an integer of 1 to 6; X 1 and X 2 is expressed by equation (6); X 1 and X 2 may be the same or different.) (In formula (5-2), h represents an integer of 0 to 6; i and j each independently represent an integer of 1 to 6; X 3 and X 4 is a hydrogen atom or a group represented by formula (6); X 3 and X 4 may be the same or different.) (In formula (5-3), k represents an integer of 0 to 6; p, q, and r each independently represent an integer of 1 to 6; X 5 , X 6 and X 7 is a hydrogen atom or a group represented by formula (6); X 5 , X 6 and X 7 may be different from each other, or some or all of them may be the same.) (In formula (6), s represents an integer of 2 to 6, and t represents 1 or 2.)

[0018] [3] R in the formula (1) 1 is a branched terminal group having 3 to 30 carbon atoms, and is a fluorine-containing ether compound represented by the formula (4) [1] or [2]. [4] R in the formula (1) 1 and R 3 and both of the above are branched terminal groups of any one of the formulae (5-1) to (5-3). [5] R in the formula (1) 1 -[B]-[A]- and -[C]-[D]-R 3 The fluorine-containing ether compound according to any one of [1] to [4], wherein

[0019] [6] R in the formula (1) 1 The fluorine-containing ether compound according to [1] or [2], wherein the compound is represented by the following formula (7):

[0020] [ka] (In formula (7), u represents an integer of 2 to 6, v represents 0 or 1; R 4 is any one of a hydrogen atom, an alkyl group which may have a substituent not containing a hydroxyl group, and an organic group which has at least one double bond or triple bond; provided that the alkyl group and the organic group may be linear or branched.

[0021] [7] R in the formula (7) 4 is an alkyl group having 1 to 6 carbon atoms. [8] R in the formula (7) 4 is a substituted alkyl group having 1 to 6 carbon atoms, and the substituent is a fluoro group or a cyano group. [9] R in the formula (7) 4 is any one of an organic group having 6 to 12 carbon atoms and having an aromatic hydrocarbon, an organic group having 3 to 10 carbon atoms and having an aromatic heterocycle, an alkenyl group having 2 to 8 carbon atoms, and an alkynyl group having 3 to 8 carbon atoms.

[0022]

[10] R in the formula (7) 4 is one group selected from the group consisting of a methyl group, an ethyl group, an n-propyl group, an isopropyl group, a 2,2,2-trifluoroethyl group, a 2,2,3,3,3-pentafluoropropyl group, a 2,2,2,2,2,2,2-hexafluoroisopropyl group, a 2-cyanoethyl group, a 3-cyanopropyl group, a 4-cyanobutyl group, a phenyl group, a methoxyphenyl group, a cyanophenyl group, a phenethyl group, a thienylethyl group, an N-methylpyrazolylmethyl group, an allyl group, a 3-butenyl group, a 4-pentenyl group, a propargyl group, a 3-butynyl group, and a 4-pentynyl group.

[0023]

[11] R in the formula (7) 4is a hydrogen atom.

[0024]

[12] R in the formula (1) 2 is any one of the following formulae (8-1) to (8-4):

[0022] (8-1) is a fluorine-containing ether compound according to any one of [1] to

[11] . -CF2O-(CF2CF2O) m -(CF2O) n -CF2- (8-1) (In formula (8-1), m and n each represent an average degree of polymerization and are 0 to 30; however, m or n is 0.1 or more.) -CF(CF3)-(OCF(CF3)CF2) w -OCF(CF3)- (8-2) (In formula (8-2), w represents the average degree of polymerization and is 0.1 to 30.) -CF2CF2O-(CF2CF2CF2O) x -CF2CF2- (8-3) (In formula (8-3), x represents the average degree of polymerization and is 0.1 to 30.) -CF2CF2CF2O-(CF2CF2CF2CF2O) y -CF2CF2CF2- (8-4) (In formula (8-4), y represents the average degree of polymerization and is 0.1 to 30.)

[0025]

[13] The fluorinated ether compound according to any one of [1] to

[12] , which has a number average molecular weight in the range of 500 to 10,000.

[0026] A second aspect of the present invention provides the following lubricant for a magnetic recording medium.

[14] A lubricant for magnetic recording media, comprising the fluorine-containing ether compound according to any one of [1] to

[13] .

[0027] A third aspect of the present invention provides the following magnetic recording medium.

[15] A magnetic recording medium having at least a magnetic layer, a protective layer, and a lubricating layer sequentially provided on a substrate, A magnetic recording medium, wherein the lubricating layer contains the fluorine-containing ether compound according to any one of [1] to

[13] . The magnetic recording medium according to the third aspect of the present invention preferably has the characteristics described in

[16] below.

[16] The magnetic recording medium according to

[15] , wherein the lubricating layer has an average thickness of 0.5 nm to 2.0 nm. [Effects of the Invention]

[0028] The fluorine-containing ether compound of the present invention is a compound represented by the above formula (1), and is suitable as a material for a lubricant for a magnetic recording medium. The lubricant for magnetic recording media of the present invention contains the fluorine-containing ether compound of the present invention, and therefore can form a lubricating layer that has good adhesion to the protective layer and can suppress pick-up and spin-off. The magnetic recording medium of the present invention has a lubricating layer that has good adhesion to the protective layer and can suppress pick-up and spin-off, and therefore has excellent reliability and durability. [Brief explanation of the drawings]

[0029] [Figure 1] 1 is a schematic cross-sectional view showing an example of a preferred embodiment of a magnetic recording medium of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0030] In order to solve the above problems, the present inventors have focused on the relationship between the molecular structure of the fluorine-containing ether compound contained in the lubricating layer and the protective layer, and have conducted extensive research as described below. Conventionally, in order to obtain a lubricating layer with good adhesion to the protective layer, perfluoropolyether (hereinafter sometimes abbreviated as "PFPE") compounds containing hydroxyl groups in the molecule have been used as lubricants. However, lubricating layers formed using conventional lubricants sometimes do not have sufficient adhesion to the protective layer. Furthermore, as a result of extensive research, the present inventors have found that if the adhesion of the lubricating layer to the protective layer is insufficient, pick-up and spin-off are likely to occur.

[0031] Therefore, the present inventors have further investigated to improve the adhesion of the lubricating layer to the protective layer. As a result, they have found that a lubricant containing a PFPE compound having a hydroxyl group, which is <1> and <2> It was found that it was necessary to use something that could provide the above functions. <1> The hydroxyl groups in the PFPE-based compound are effectively involved in bonding with the active sites on the protective layer. <2> The hydroxyl groups in PFPE compounds are involved in the formation of intermolecular hydrogen bonds between PFPE compounds.

[0032] From this, the present inventors have <1> and <2> We have conducted extensive research into the molecular structure of fluorine-containing ether compounds that can effectively achieve the above functions. As a result, they found that a fluorine-containing ether compound can be obtained by arranging specific linking groups having secondary hydroxyl groups via methylene groups (-CH2-) at both ends of a perfluoropolyether chain, and arranging a branched terminal group having multiple primary hydroxyl groups at at least one end. They then confirmed that a lubricating layer containing such a fluorine-containing ether compound has good adhesion to a protective layer and can suppress pick-up and spin-off, and thus conceived the present invention.

[0033] The fluorine-containing ether compound, the lubricant for magnetic recording media (hereinafter sometimes abbreviated as "lubricant"), and the magnetic recording media of the present invention will be described in detail below. Note that the present invention is not limited to the following embodiments. For example, the present invention is not limited to the following examples, and additions, omissions, substitutions, and changes can be made to the number, amount, ratio, composition, type, position, material, configuration, and the like, without departing from the spirit of the present invention.

[0034] [Fluorine-containing ether compounds] The fluorine-containing ether compound of the present embodiment is represented by the following formula (1). R 1 -[B]-[A]-CH2-R 2 -CH2-[C]-[D]-R 3 (1) (In formula (1), R 2 is a perfluoropolyether chain; [A] is represented by the following formula (2-1), in which a is an integer of 0 to 3; [B] is represented by the following formula (2-2), in which b is an integer of 0 to 3 and c is an integer of 2 to 5; provided that the sum of the values ​​of a and b is 1 to 3; [A] and [B] may be interchanged in formula (1); [C] is represented by the following formula (3-1), in which d is an integer of 0 to 2; [D] is represented by the following formula (3-2), in which e is an integer of 0 to 2 and f is an integer of 2 to 5; provided that the sum of the values ​​of d and e is 1 or 2; [C] and [D] may be interchanged in formula (1); R 3 is a branched terminal group having 3 to 30 carbon atoms and is represented by the following formula (4); L in formula (4) represents an integer of 0 to 6; Y in formula (4) 1 and Y 2 are each independently a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom; Y in formula (4) 3 is a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom, or a hydrogen atom; R 1 is R 3 is an end group which may be the same as or different from

[0035] [ka]

[0036] (R 2 (PFPE chain shown as The fluorine-containing ether compound of the present embodiment is a compound represented by the formula (1), 2 When a lubricant containing a fluorine-containing ether compound is applied to a protective layer to form a lubricating layer, the PFPE chain not only coats the surface of the protective layer but also imparts lubricity to the lubricating layer, thereby reducing the friction between the magnetic head and the protective layer. 2 The PFPE chain represented by the formula (I) is not particularly limited and can be appropriately selected depending on the performance required of the lubricant.

[0037] R 2 Examples of the PFPE chain represented by the formula (I) include perfluoromethylene oxide polymers, perfluoroethylene oxide polymers, perfluoro-n-propylene oxide polymers, perfluoroisopropylene oxide polymers, perfluoro-n-butylene oxide polymers, and copolymers thereof.

[0038] The PFPE chain may be, for example, a structure represented by the following formula (Rf) derived from a polymer or copolymer of perfluoroalkylene oxide. -(CF2) z1 O(CF2O) z2 (CF2CF2O) z3 (CF2CF2CF2O) z4 (CF2CF2CF2CF2O) z5 (CF2) z6 - (Rf) (In formula (Rf), z2, z3, z4, and z5 represent an average degree of polymerization and each independently represent 0 to 30; provided that z2, z3, z4, and z5 cannot all be 0 at the same time; z1 and z6 represent an average value indicating the number of -CF2- groups and each independently represent 1 to 3; there are no particular limitations on the arrangement order of repeating units in formula (Rf).) In formula (Rf), z2, z3, z4, and z5 represent an average degree of polymerization, each independently representing 0 to 30, preferably 0 to 20, and more preferably 0 to 15. In formula (Rf), z1 and z6 are the average values ​​indicating the number of -CF2- groups, and each independently represents 1 to 3. z1 and z6 are determined depending on the structure of the repeating unit located at the end of the chain structure in the polymer represented by formula (Rf), etc. In formula (Rf), (CF2O), (CF2CF2O), (CF2CF2CF2O), and (CF2CF2CF2CF2O) are repeating units. There are no particular restrictions on the arrangement order of the repeating units in formula (Rf). There are also no particular restrictions on the number of types of repeating units in formula (Rf).

[0039] R in Equation (1) 2 is also preferably any one of the following formulas (8-1) to (8-5). -CF2O-(CF2CF2O) m -(CF2O) n -CF2- (8-1) (In formula (8-1), m and n each represent an average degree of polymerization and are 0 to 30; however, m or n is 0.1 or more.)

[0040] In formula (8-1), there is no particular restriction on the arrangement order of the repeating units (CF2-CF2-O) and (CF2-O). In formula (8-1), the number m of (CF2-CF2-O) and the number n of (CF2-O), which indicate the average degree of polymerization, may be the same or different. Formula (8-1) may include any of a random copolymer, a block copolymer, and an alternating copolymer composed of the monomer units (CF2-CF2-O) and (CF2-O).

[0041] In formula (8-1), m, which indicates the average degree of polymerization, is 0 to 30, preferably 1 to 20, and more preferably 2 to 15. In formula (8-1), n, which indicates the average degree of polymerization, is 0 to 30, preferably 0 to 20, and more preferably 0 to 15. In formula (8-1), when n is 0, m is preferably 1 to 20. For example, m and n may each be 1 to 3, 3 to 5, 5 to 10, 10 to 25, or 20 to 30, as necessary.

[0042] -CF(CF3)-(OCF(CF3)CF2) w -OCF(CF3)- (8-2) (In formula (8-2), w represents the average degree of polymerization and is 0.1 to 30.) In formula (8-2), w, which represents the average degree of polymerization, represents 0.1 to 30. When w is 0.1 to 30, the number average molecular weight of the fluorinated ether compound of this embodiment tends to fall within the preferred range. w is preferably 1 to 20, and more preferably 2 to 15. If necessary, w may be 1 to 3, 3 to 5, 5 to 10, or 10 to 20, etc.

[0043] -CF2CF2O-(CF2CF2CF2O) x -CF2CF2- (8-3) (In formula (8-3), x represents the average degree of polymerization and is 0.1 to 30.) In formula (8-3), x, which represents the average degree of polymerization, represents 0.1 to 30. When x is 0.1 to 30, the number average molecular weight of the fluorinated ether compound of this embodiment tends to fall within the preferred range. x is preferably 1 to 20, and more preferably 2 to 15. If necessary, x may be 1 to 3, 3 to 5, 5 to 10, 10 to 20, etc.

[0044] -CF2CF2CF2O-(CF2CF2CF2CF2O) y -CF2CF2CF2- (8-4) (In formula (8-4), y represents the average degree of polymerization and is 0.1 to 30.) In formula (8-4), y, which represents the average degree of polymerization, represents 0.1 to 30. When y is 0.1 to 30, the number average molecular weight of the fluorinated ether compound of this embodiment tends to fall within the preferred range. y is preferably 1 to 20, and more preferably 2 to 15. If necessary, y may be 1 to 3, 3 to 5, 5 to 10, 10 to 20, etc.

[0045] -(CF2) z7 O-(CF2CF2O) z8 -(CF2CF2CF2O) z9 -(CF2) z10 - (8-5) (In formula (8-5), z8 and z9 represent the average degree of polymerization, each independently representing 0.1 to 30; z7 and z10 represent the average value representing the number of -CF2-, each independently representing 1 to 2.) The sequence of the repeating units (CF2CF2O) and (CF2CF2CF2O) in formula (8-5) is not particularly limited. Formula (8-5) may include any of a random copolymer, a block copolymer, and an alternating copolymer composed of the monomer units (CF2CF2O) and (CF2CF2CF2O). In formula (8-5), z8 and z9, which indicate the average degree of polymerization, each independently represent 0.1 to 30, preferably 1 to 20, and more preferably 2 to 15. In formula (8-5), z7 and z10 are average values ​​indicating the number of -CF2- groups, each independently represent 1 to 2. z7 and z10 are determined depending on the structure of the repeating units arranged at the ends of the chain structure in the polymer represented by formula (8-5).

[0046] R in Equation (1) 2 When R is any one of the formulas (8-1) to (8-5), the fluorine-containing ether compound provides a lubricating layer having good lubricity. 2 When the formula (8-1) to (8-5) is any one of the formulas (8-1) to (8-5), the ratio of the number of oxygen atoms (the number of ether bonds (-O-)) to the number of carbon atoms in the PFPE chain and the arrangement of the oxygen atoms in the PFPE chain are appropriate. Therefore, the fluorine-containing ether compound has an appropriate hardness. Therefore, the fluorine-containing ether compound applied to the protective layer is less likely to aggregate on the protective layer, and a thinner lubricating layer can be formed with a sufficient coverage. Furthermore, R in formula (1) 2 is preferably any one of the formulas (8-1) to (8-5), since the synthesis of the fluorine-containing ether compound is easy. 2 is formula (8-1) or formula (8-3), it is more preferable because raw materials are readily available.

[0047] (a linking group represented by -[C]-[D]-) In the fluorinated ether compound of this embodiment represented by formula (1), [C] is represented by the formula (3-1) and [D] is represented by the formula (3-2). [C] and [D] in formula (1) are divalent linking groups. [C] and [D] may be interchanged in formula (1). d in formula (3-1) and e in formula (3-2) are integers of 0 to 2. However, the sum of the values ​​of d and e is 1 or 2. In the formulas (3-1) and (3-2), a combination in which d is 1 and e is 0, or a combination in which d is 0 and e is 1, is preferred from the viewpoint of availability of raw materials and ease of synthesis.

[0048] In addition, from the viewpoint of adhesion to the protective layer, the combination of formula (3-1) and formula (3-2) is preferably such that d is 2 and e is 0, or such that d is 1 and e is 1. In particular, when d is 2 and e is 0, in the fluorine-containing ether compound, the direction in which the two hydroxyl groups in formula (3-1) are arranged is three-dimensionally the same direction as the extending direction of the PFPE chain, and the two hydroxyl groups in formula (3-1) tend to be easily adsorbed to the protective layer. In addition, when d and e are 1 and the bonding order of [C] and [D] is R 2 When the -[D]-[C]- structure is formed from the side of the fluorine-containing ether compound, the distance between the hydroxyl groups in the -[D]-[C]- structure becomes greater, which reduces the intramolecular hydrogen bond of the fluorine-containing ether compound represented by formula (1) and increases its affinity with the protective layer.

[0049] In formula (3-2), f is an integer of 2 to 5. When e is an integer of 1 or 2, f is preferably an integer of 2 or 3, and most preferably 2.

[0050] (R 3 (branched end group represented by In formula (1), R 3 R is a branched terminal group having 3 to 30 carbon atoms. 3 The number of carbon atoms in R is preferably 3 to 20, and more preferably 3 to 12. The number may be 3 to 5, 5 to 10, or 10 to 15, etc. 3When the number of carbon atoms is 3 to 12, the proportion of fluorine atoms in the fluorine-containing ether compound molecule decreases, and the surface free energy of the entire molecule can be prevented from increasing.

[0051] R in Equation (1) 3 is represented by formula (4). Formula (4) is a branched terminal group containing two or three primary hydroxyl groups and having a carbon atom as a branch point. R 3 The multiple primary hydroxyl groups contained in the compound are involved in the formation of intermolecular hydrogen bonds between fluorine-containing ether compounds. In formula (4), L represents an integer of 0 to 6. In formula (4), Y 1 and Y 2 are each independently a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom. 1 and Y 2 The hydrocarbon group represented by Y may be linear or branched, and preferably does not contain a secondary hydroxyl group or a tertiary hydroxyl group. 3 is a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom, or a hydrogen atom. 3 The hydrocarbon group represented by may be linear or branched, and preferably does not contain a secondary hydroxyl group or a tertiary hydroxyl group.

[0052] R 3 Preferably, R contains three or more ether bonds (—O—). 3 Since the lubricating layer containing the fluorine-containing ether compound represented by formula (1) has an appropriate flexibility, the lubricating layer has even better adhesion to the protective layer. R 3 has a plurality of ether bonds, adjacent ether bonds are preferably linked via a linking group having two or more carbon atoms linked together. In this case, the distance between adjacent ether bonds becomes appropriate, resulting in a fluorine-containing ether compound that is less likely to aggregate.

[0053] R 3 is preferably a branched terminal group of any one of the following formulas (5-1) to (5-3):3 is a branched terminal group of any one of formulas (5-1) to (5-3), R 3 The carbon atoms to which the primary hydroxyl groups in R are bonded are bonded via a linking group containing a methine group and / or a methylene group and an ether bond. 3 The distance between adjacent primary hydroxyl groups in R 3 The multiple primary hydroxyl groups of R are arranged in a way that makes it easy to form hydrogen bonds between molecules of the fluorine-containing ether compound. 3 is a branched terminal group of any one of the following formulas (5-1) to (5-3), R 3 When the molecular weight of R is large, the proportion of fluorine atoms in the fluorine-containing ether compound molecule decreases, and the surface free energy of the entire molecule can be prevented from increasing. 3 is more preferably the formula (5-1) or (5-2), since it is possible to prevent the surface free energy of the entire molecule from increasing.

[0054] [ka] (In formula (5-1), g represents an integer of 1 to 6; X 1 and X 2 is expressed by equation (6); X 1 and X 2 may be the same or different.) (In formula (5-2), h represents an integer of 0 to 6; i and j each independently represent an integer of 1 to 6; X 3 and X 4 is a hydrogen atom or is represented by formula (6). 3 and X 4 may be the same or different.) (In formula (5-3), k represents an integer of 0 to 6; p, q, and r each independently represent an integer of 1 to 6; X 5 , X 6 and X 7 is a hydrogen atom or a group represented by formula (6); X 5 , X 6 and X7 may be different from each other, or some or all of them may be the same.) (In formula (6), s represents an integer of 2 to 6, and t represents 1 or 2.)

[0055] In formula (5-1), g represents an integer of 1 to 6. Since this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule, g is preferably an integer of 1 to 4, and more preferably 1 or 2. X 1 and X 2 is expressed by equation (6). X 1 and X 2 may be the same or different.

[0056] In formula (5-2), h represents an integer of 0 to 6. Since this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule, h is preferably an integer of 0 to 4, more preferably an integer of 0 to 2. i and j each independently represent an integer of 1 to 6. Since this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule, i and j each independently represent an integer of 1 to 4, more preferably 1 or 2. i and j may be the same or different. It is preferable that i and j are the same, since this makes it easier to produce the fluorine-containing ether compound. X 3 and X 4 is a hydrogen atom or is represented by formula (6). 3 and X 4 may be the same or different.

[0057] In formula (5-3), k represents an integer of 0 to 6. k is preferably an integer of 0 to 4, more preferably an integer of 0 to 2, as this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule. p, q, and r each independently represent an integer of 1 to 6. p, q, and r each independently represent an integer of 1 to 4, more preferably 1 or 2, as this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule. p, q, and r may be different from each other, or may be the same in part or in whole. p, q, and r are preferably all the same, as this makes it easier to produce the fluorine-containing ether compound. X 5 , X 6 and X 7 is a hydrogen atom or is represented by formula (6). 5 , X 6 and X 7 may be different from each other, or some or all of them may be the same.

[0058] In formula (6), s represents an integer of 2 to 6. Since this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule, s is preferably an integer of 2 to 4, more preferably 2 or 3. t represents 1 or 2. When t is 2, each [—(CH2) s In the formula, s may be the same or different. t is preferably 1, since this makes it easier to ensure the proportion of fluorine atoms in the fluorine-containing ether compound molecule.

[0059] -[C]-[D]-R in formula (1) 3 Specifically, it is preferable that the structure be one of the structures represented by the following formulas (9-1) to (9-23).

[0060] [ka]

[0061] [ka]

[0062] [ka]

[0063] [ka]

[0064] (a linking group represented by -[B]-[A]-) In the fluorinated ether compound of this embodiment represented by formula (1), [A] is represented by the formula (2-1) and [B] is represented by the formula (2-2). [A] and [B] in formula (1) are divalent linking groups. [A] and [B] may be interchanged in formula (1). a in formula (2-1) and b in formula (2-2) are integers of 0 to 3. However, the sum of the values ​​of a and b is 1 to 3. In the formulas (2-1) and (2-2), a combination in which a is 1 and b is 0, or a combination in which a is 0 and b is 1, is preferred from the viewpoint of availability of raw materials and ease of synthesis.

[0065] In addition, from the viewpoint of adhesion to the protective layer, the combination of formula (2-1) and formula (2-2) is preferably a combination where a is 2 and b is 0, or a combination where a is 1 and b is 1. In particular, when a is 2 and b is 0, in the fluorine-containing ether compound, the direction in which the two hydroxyl groups in formula (2-1) are arranged is three-dimensionally the same direction as the extending direction of the PFPE chain, and the two hydroxyl groups in formula (2-1) tend to be easily adsorbed to the protective layer. In addition, when a and b are 1 and the bonding order of [A] and [B] is R 1 When the -[A]-[B]- structure is formed from the side of the fluorine-containing ether compound, the distance between the hydroxyl groups in the -[A]-[B]- structure becomes greater, which reduces the intramolecular hydrogen bond of the fluorine-containing ether compound represented by formula (1) and increases its affinity with the protective layer.

[0066] In formula (2-2), c is an integer of 2 to 5. When b is an integer of 1 to 3, c is preferably an integer of 2 to 4, and most preferably 2.

[0067] (R 1 (end group indicated by In (1), R 1 The terminal group represented by R can be appropriately selected depending on the performance required of the lubricant containing the fluorine-containing ether compound. 1 and R 3 may be the same or different. R 1 is a branched terminal group having 3 to 30 carbon atoms, and may be a terminal group represented by the formula (4). 1 However, it contains two or three primary hydroxyl groups and forms a branched end group with a carbon atom as the branch point. 1 The multiple primary hydroxyl groups contained in the compound (II) participate in the formation of intermolecular hydrogen bonds between the fluorinated ether compounds, further strengthening the intermolecular hydrogen bonds between the fluorinated ether compounds.

[0068] R 1 is a terminal group represented by formula (4), R 1 is preferably a branched terminal group of any one of the formulas (5-1) to (5-3). In this case, preferred values ​​of g in formula (5-1), h to j in formula (5-2), k and p to r in formula (5-3), and s and t in formula (6) are 3 is the branched terminal group of any one of the formulae (5-1) to (5-3). In formula (1), R 1 is a terminal group represented by formula (4), R 1 and R 3 It is more preferable that both of the above are branched terminal groups of any one of the formulas (5-1) to (5-3).

[0069] In formula (1), R 1 is a terminal group represented by formula (4), R 1 and R 3and R are preferably the same 1 and R 3 It is more preferable that both of the above are branched terminal groups of any one of the formulas (5-1) to (5-3). In particular, R in Eq. (1) 1 -[B]-[A]- and -[C]-[D]-R 3 Since the structure of R is the same as that of 2 It is preferable that both sides of the PFPE chain represented by the following formula have a symmetric structure. In this case, production is easy, and therefore production costs are low. -[A]-[B]-R in formula (1) 1 Specifically, it is preferable that the structure be one of the structures represented by the formulas (9-1) to (9-23).

[0070] In the fluorinated ether compound of the present embodiment represented by formula (1), R 1 may be a terminal group represented by the following formula (7): 1 When the molecular weight is large, the proportion of fluorine atoms in the fluorine-containing ether compound molecule decreases, and the surface free energy of the entire molecule can be prevented from increasing.

[0071] [ka] (In formula (7), u represents an integer of 2 to 6, v represents 0 or 1; R 4 is any one of a hydrogen atom, an alkyl group which may have a substituent not containing a hydroxyl group, and an organic group which has at least one double bond or triple bond; provided that the alkyl group and the organic group may be linear or branched.

[0072] In formula (7), u represents an integer of 2 to 6, and v represents 0 or 1. When v in formula (7) is 0, the proportion of fluorine atoms in the fluorinated ether compound molecule decreases, and the surface free energy of the entire molecule can be more effectively prevented from increasing. When v is 1, the ether bond contained in formula (7) imparts flexibility to the fluorinated ether compound represented by formula (1), making it more likely to be adsorbed to the protective layer.

[0073] Furthermore, when v in formula (7) is 1, u is an integer of 2 to 6, so that R 1 The terminal group represented by the following formula becomes chemically stable and resistant to decomposition. u is preferably an integer of 2 to 4, more preferably 2 or 3. When u is 2 or 3, the proportion of fluorine atoms in the fluorinated ether compound molecule decreases, and an increase in the surface free energy of the entire molecule can be suppressed.

[0074] R in equation (7) 4 is any one of a hydrogen atom, an alkyl group which may have a substituent not containing a hydroxyl group, and an organic group which has at least one double bond or triple bond.

[0075] R 4 is a hydrogen atom, R 4 forms a hydroxyl group together with the oxygen atom in formula (7). When v in formula (7) is 1, R represented by formula (7) 1 is an alkoxy group having a terminal hydroxyl group. When v in formula (7) is 0, R represented by formula (7) 1 is a hydroxyl group. R 4 is a hydrogen atom, and v in formula (7) is 1, R represented by formula (7) 1 Preferred specific examples include -O-CH2CH2-OH (where u in formula (7) is 2) and -O-CH2CH2CH2-OH (where u in formula (7) is 3). R 4 is a hydrogen atom and v in formula (7) is 0 (i.e., R 1 is a hydroxyl group), R 1may be bonded to [A] represented by formula (2-1) or to [B] represented by formula (2-2). 1 When [B] is bonded to R 1 and the distance between the adjacent hydroxyl groups is more appropriate, which is preferred.

[0076] R 4 When the alkyl group is an alkyl group which may have a substituent and does not contain a hydroxyl group, it is preferably an alkyl group of 1 to 6 carbon atoms which does not contain a substituent, or an alkyl group of 1 to 6 carbon atoms which has a substituent. The substituent of the alkyl group of 1 to 6 carbon atoms which has a substituent is preferably a fluoro group or a cyano group, and does not contain a hydroxyl group. The alkyl group of 1 to 6 carbon atoms which has a substituent is an alkyl group in which one or more hydrogen atoms have been substituted with a substituent, and may be an alkyl group in which all hydrogen atoms have been substituted with a substituent.

[0077] The alkyl group of an unsubstituted alkyl group having 1 to 6 carbon atoms and a substituted alkyl group having 1 to 6 carbon atoms may be linear or branched. Specific examples of the alkyl group include a methyl group, an ethyl group, an n-propyl group, an isopropyl group, an n-butyl group, a sec-butyl group, an isobutyl group, a tert-butyl group, an n-pentyl group and its structural isomers, and an n-hexyl group and its structural isomers.

[0078] Examples of the alkyl group having 1 to 6 carbon atoms in which one or more hydrogen atoms have been substituted with a fluoro group include a trifluoromethyl group, a perfluoroethyl group, a perfluoropropyl group, a perfluorobutyl group, a perfluoropentyl group, a perfluorohexyl group, a 2,2,2-trifluoroethyl group, a 2,2,3,3,3-pentafluoropropyl group, a 2,2,2,2,2,2-hexafluoroisopropyl group, a 2,2,3,3,4,4,4-heptafluorobutyl group, a 2,2,3,3,4,4,5,5,5-nonafluoropentyl group, and a 2,2,3,3,4,4,5,5,6,6,6-undecafluorohexyl group.

[0079] The number of cyano groups contained in the alkyl group having 1 to 6 carbon atoms in which one or more hydrogen atoms have been substituted with a cyano group may be 1 or 2 or more. If the number of cyano groups is too large, the polarity of the fluorine-containing ether compound becomes too high, so the number of cyano groups is preferably 2 or less, and most preferably 1. Examples of the alkyl group having 1 to 6 carbon atoms in which one or more hydrogen atoms have been substituted with a cyano group include a 2-cyanoethyl group, a 3-cyanopropyl group, a 4-cyanobutyl group, a 5-cyanopentyl group, a 6-cyanohexyl group, a 2-cyano-1-methylethyl group, and a 2,2'-dicyanoisopropyl group.

[0080] The organic group having at least one double bond or triple bond is preferably any one of an organic group having an aromatic hydrocarbon and having 6 to 12 carbon atoms, an organic group having an aromatic heterocycle and having 3 to 10 carbon atoms, an alkenyl group having 2 to 8 carbon atoms, and an alkynyl group having 3 to 8 carbon atoms. The organic group having at least one double bond or triple bond may be linear or branched.

[0081] Examples of the organic group having 6 to 12 carbon atoms and having an aromatic hydrocarbon include a phenyl group, a methoxyphenyl group, a dimethoxyphenyl group, a cyanophenyl group, a dicyanophenyl group, a fluorinated phenyl group, a naphthyl group, a methoxynaphthyl group, a benzyl group, a methoxybenzyl group, a phenethyl group, a methoxyphenethyl group, a fluorinated phenethyl group, a naphthylmethyl group, and a naphthylethyl group. When the aromatic hydrocarbon has a substituent, the position to which the substituent is bonded may be anywhere.

[0082] Examples of the organic group having 3 to 10 carbon atoms and having an aromatic heterocycle include a pyrrolyl group, a pyrazolyl group, a methylpyrazolylmethyl group, an imidazolyl group, a furyl group, a furfuryl group, an oxazolyl group, an isoxazolyl group, a thienyl group, a thienylmethyl group, a thienylethyl group, a thiazolyl group, a methylthiazolylethyl group, an isothiazolyl group, a pyridyl group, a pyrimidinyl group, a pyridazinyl group, a pyrazinyl group, an indolinyl group, a benzofuranyl group, a benzothienyl group, a benzimidazolyl group, a benzoxazolyl group, a benzothiazolyl group, a benzopyrazolyl group, a benzisoxazolyl group, a benzisothiazolyl group, a quinolyl group, an isoquinolyl group, a quinazolinyl group, a quinoxalinyl group, a phthalazinyl group, and a cinnolinyl group.

[0083] Examples of alkenyl groups having 2 to 8 carbon atoms include vinyl groups, allyl groups, 1-propenyl groups, isopropenyl groups, 3-butenyl groups and structural isomers thereof, 4-pentenyl groups and structural isomers thereof, 5-hexenyl groups and structural isomers thereof, 6-heptenyl groups and structural isomers thereof, and 7-octenyl groups and structural isomers thereof.

[0084] Examples of the alkynyl group having 3 to 8 carbon atoms include a 1-propynyl group, a propargyl group, a 3-butynyl group and its structural isomers, a 4-pentynyl group and its structural isomers, a 5-hexynyl group and its structural isomers, a 6-heptynyl group and its structural isomers, and a 7-octynyl group and its structural isomers.

[0085] R in Equation (7) 4is preferably one group selected from the group consisting of a hydrogen atom, a methyl group, an ethyl group, an n-propyl group, an isopropyl group, a 2,2,2-trifluoroethyl group, a 2,2,3,3,3-pentafluoropropyl group, a 2,2,2,2,2,2-hexafluoroisopropyl group, a 2-cyanoethyl group, a 3-cyanopropyl group, a 4-cyanobutyl group, a phenyl group, a methoxyphenyl group, a cyanophenyl group, a phenethyl group, a thienylethyl group, an N-methylpyrazolylmethyl group, an allyl group, a 3-butenyl group, a 4-pentenyl group, a propargyl group, a 3-butynyl group, and a 4-pentynyl group, from the viewpoint of ease of availability and / or synthesis. Among these, it is more preferable that the alkyl group be one group selected from the group consisting of a hydrogen atom, a methyl group, an ethyl group, an n-propyl group, a 2,2,2-trifluoroethyl group, a 2,2,3,3,3-pentafluoropropyl group, a 3-cyanopropyl group, a 4-cyanobutyl group, a methoxyphenyl group, a cyanophenyl group, an allyl group, and a 3-butenyl group.

[0086] Specifically, the fluorine-containing ether compound represented by formula (1) is preferably a compound represented by the following formula (AA1) or (BA1). The repeating numbers represented by ma1, na1, pa1, and qa1 in formulae (AA1) and (BA1) are all values ​​indicating the average degree of polymerization, and are therefore not necessarily integers.

[0087] [ka] (In formula (AA1), ma1 and na1 represent average degrees of polymerization, ma1 being 0.1 to 30, and na1 being 0.1 to 30.) (In formula (BA1), pa1 and qa1 represent average degrees of polymerization, pa1 being 0.1 to 30, and qa1 being 0.1 to 30.)

[0088] The compounds represented by formula (AA1) and (BA1) are both -[C]-[D]-R in formula (1). 3 is the structure represented by formula (9-1). The compounds represented by formula (AA1) and (BA1) are both R 2 is the structure represented by formula (8-1). The compound represented by formula (AA1) is a compound represented by formula (2-1) in which a is 1, and formula (2-2) in which b is 1 and c is 2, and R 1 The compound represented by formula (AA1) is arranged in the order of -[A]-[B]-. 1 is expressed by equation (7), where v in equation (7) is 0, and R 4 is a 3-butenyl group. The compound represented by formula (BA1) is one in which a in formula (2-1), which is [A] in formula (1), is 2, and b in formula (2-2), which is [B], is 0. The compound represented by formula (BA1) is R 1 is expressed by equation (7), where v in equation (7) is 0, and R 4 is an allyl group. The ma1, na1, pa1, and qa1 may be 0.1 to 1, 1 to 3, 3 to 5, 5 to 10, 10 to 15, 15 to 20, 20 to 30, etc., respectively, as necessary.

[0089] When the fluorine-containing ether compound represented by formula (1) is a compound represented by the above formula (AA1) or (BA1), it is preferable because it can form a lubricating layer that has good adhesion to the protective layer and can suppress pick-up and spin-off.

[0090] The fluorine-containing ether compound represented by formula (1) may be a compound represented by the following formulae (AA2) to (AV1), (BA2) to (BR1), (CA1) to (CT1), or (DA1) to (DG1). The repeat numbers indicated by na2 to na4, nm2 to nm4, mb1 to mv1, and nb1 to nv1 in formulas (AA2) to (AV1), qa2 to qa4, pb1 to pr1, and qb1 to qr1 in formulas (BA2) to (BR1), va2 to va3, vb2 to vb3, vg2 to vg3, vh2 to vh3, ua1 to ut1, and va1 to vt1 in formulas (CA1) to (CT1), and xa1 to xg1 and ya1 to yg1 in formulas (DA1) to (DG1) are all values ​​that indicate the average degree of polymerization, and are therefore not necessarily integers.

[0091] [ka] (In formula (AA2), na2 represents the average degree of polymerization, and na2 is 0.1 to 30.) (In formula (AA3), na3 represents the average degree of polymerization, and na3 is 0.1 to 30.) (In formula (AA4), na4 represents the average degree of polymerization, and na4 is 0.1 to 30.) (In formula (AB1), mb1 and nb1 represent average degrees of polymerization, mb1 being 0.1 to 30, and nb1 being 0.1 to 30.)

[0092] [ka] (In formula (AC1), mc1 and nc1 represent average degrees of polymerization, mc1 being 0.1 to 30, and nc1 being 0.1 to 30.) (In formula (AD1), md1 and nd1 represent average degrees of polymerization, md1 being 0.1 to 30, and nd1 being 0.1 to 30.) (In formula (AE1), me1 and ne1 represent the average degree of polymerization, me1 is 0.1 to 30, and ne1 is 0.1 to 30.) (In formula (AF1), mf1 and nf1 represent average degrees of polymerization, mf1 being 0.1 to 30, and nf1 being 0.1 to 30.)

[0093] [ka] (In formula (AG1), mg1 and ng1 represent the average degree of polymerization, mg1 being 0.1 to 30, and ng1 being 0.1 to 30.) (In formula (AH1), mh1 and nh1 represent average degrees of polymerization, mh1 being 0.1 to 30, and nh1 being 0.1 to 30.) (In formula (AI1), mi1 and ni1 represent average degrees of polymerization, mi1 being 0.1 to 30, and ni1 being 0.1 to 30.) (In formula (AJ1), mj1 and nj1 represent average degrees of polymerization, mj1 being 0.1 to 30, and nj1 being 0.1 to 30.)

[0094] [ka] (In formula (AK1), mk1 and nk1 represent average degrees of polymerization, mk1 being 0.1 to 30, and nk1 being 0.1 to 30.) (In formula (AL1), ml1 and nl1 represent the average degree of polymerization, ml1 being 0.1 to 30, and nl1 being 0.1 to 30.) (In formula (AM1), mm1 and nm1 represent the average degree of polymerization, mm1 being 0.1 to 30, and nm1 being 0.1 to 30.) (In formula (AM2), nm2 represents the average degree of polymerization, and nm2 is 0.1 to 30.)

[0095] [ka] (In formula (AM3), nm3 represents the average degree of polymerization, and nm3 is 0.1 to 30.) (In formula (AM4), nm4 represents the average degree of polymerization, and nm4 is 0.1 to 30.) (In formula (AN1), mn1 and nn1 represent the average degree of polymerization, mn1 being 0.1 to 30, and nn1 being 0.1 to 30.) (In formula (AO1), mo1 and no1 represent average degrees of polymerization, mo1 being 0.1 to 30, and no1 being 0.1 to 30.)

[0096] [ka] (In formula (AP1), mp1 and np1 represent the average degree of polymerization, mp1 being 0.1 to 30, and np1 being 0.1 to 30.) (In formula (AQ1), mq1 and nq1 represent the average degree of polymerization, mq1 is 0.1 to 30, and nq1 is 0.1 to 30.) (In formula (AR1), mr1 and nr1 represent the average degree of polymerization, mr1 being 0.1 to 30, and nr1 being 0.1 to 30.) (In formula (AS1), ms1 and ns1 represent the average degrees of polymerization, ms1 being 0.1 to 30, and ns1 being 0.1 to 30.)

[0097] [ka] (In formula (AT1), mt1 and nt1 represent the average degree of polymerization, mt1 being 0.1 to 30, and nt1 being 0.1 to 30.) (In formula (AU1), mu1 and nu1 represent the average degrees of polymerization, mu1 being 0.1 to 30, and nu1 being 0.1 to 30.) (In formula (AV1), mv1 and nv1 represent the average degree of polymerization, mv1 being 0.1 to 30, and nv1 being 0.1 to 30.) (In formula (BA2), qa2 represents the average degree of polymerization, and qa2 is 0.1 to 30.)

[0098] [ka] (In formula (BA3), qa3 represents the average degree of polymerization, and qa3 is 0.1 to 30.) (In formula (BA4), qa4 represents the average degree of polymerization, and qa4 is 0.1 to 30.) (In formula (BB1), pb1 and qb1 represent the average degrees of polymerization, pb1 being 0.1 to 30, and qb1 being 0.1 to 30.) (In formula (BC1), pc1 and qc1 represent the average degrees of polymerization, pc1 being 0.1 to 30, and qc1 being 0.1 to 30.)

[0099] [ka] (In formula (BD1), pd1 and qd1 represent average degrees of polymerization, pd1 being 0.1 to 30, and qd1 being 0.1 to 30.) (In formula (BE1), pe1 and qe1 represent the average degree of polymerization, pe1 being 0.1 to 30, and qe1 being 0.1 to 30.) (In formula (BF1), pf1 and qf1 represent the average degree of polymerization, pf1 being 0.1 to 30, and qf1 being 0.1 to 30.) (In formula (BG1), pg1 and qg1 represent average degrees of polymerization, pg1 being 0.1 to 30, and qg1 being 0.1 to 30.)

[0100] [ka] (In formula (BH1), ph1 and qh1 represent the average degree of polymerization, ph1 being 0.1 to 30, and qh1 being 0.1 to 30.) (In formula (BI1), pi1 and qi1 represent the average degrees of polymerization, pi1 being 0.1 to 30, and qi1 being 0.1 to 30.) (In formula (BJ1), pj1 and qj1 represent average degrees of polymerization, pj1 being 0.1 to 30, and qj1 being 0.1 to 30.) (In formula (BK1), pk1 and qk1 represent the average degree of polymerization, pk1 is 0.1 to 30, and qk1 is 0.1 to 30.)

[0101] [ka] (In formula (BL1), p11 and q11 represent the average degree of polymerization, p11 being 0.1 to 30, and q11 being 0.1 to 30.) (In formula (BM1), pm1 and qm1 represent the average degrees of polymerization, pm1 being 0.1 to 30, and qm1 being 0.1 to 30.) (In formula (BN1), pn1 and qn1 represent the average degree of polymerization, pn1 being 0.1 to 30, and qn1 being 0.1 to 30.) (In formula (BO1), po1 and qo1 represent average degrees of polymerization, po1 being 0.1 to 30, and qo1 being 0.1 to 30.)

[0102] [ka] (In formula (BP1), pp1 and qp1 represent the average degrees of polymerization, pp1 being 0.1 to 30, and qp1 being 0.1 to 30.) (In formula (BQ1), pq1 and qq1 represent the average degree of polymerization, pq1 is 0.1 to 30, and qq1 is 0.1 to 30.) (In formula (BR1), pr1 and qr1 represent the average degrees of polymerization, pr1 being 0.1 to 30, and qr1 being 0.1 to 30.) (In formula (CA1), ua1 and va1 represent the average degrees of polymerization, ua1 being 0.1 to 30, and va1 being 0.1 to 30.)

[0103] [ka] (In formula (CA2), va2 represents the average degree of polymerization, and va2 is 0.1 to 30.) (In formula (CA3), va3 represents the average degree of polymerization, and va3 is 0.1 to 30.) (In formula (CB1), ub1 and vb1 represent the average degrees of polymerization, ub1 being 0.1 to 30, and vb1 being 0.1 to 30.) (In formula (CB2), vb2 represents the average degree of polymerization, and vb2 is 0.1 to 30.)

[0104] [ka] (In formula (CB3), vb3 represents the average degree of polymerization, and vb3 is 0.1 to 30.) (In formula (CC1), uc1 and vc1 represent the average degree of polymerization, uc1 being 0.1 to 30, and vc1 being 0.1 to 30.) (In formula (CD1), ud1 and vd1 represent the average degrees of polymerization, ud1 being 0.1 to 30, and vd1 being 0.1 to 30.) (In formula (CE1), ue1 and ve1 represent average degrees of polymerization, ue1 being 0.1 to 30, and ve1 being 0.1 to 30.)

[0105] [ka] (In formula (CF1), uf1 and vf1 represent the average degrees of polymerization, uf1 being 0.1 to 30, and vf1 being 0.1 to 30.) (In formula (CG1), ug1 and vg1 represent the average degrees of polymerization, ug1 being 0.1 to 30, and vg1 being 0.1 to 30.) (In formula (CG2), vg2 represents the average degree of polymerization, and vg2 is 0.1 to 30.) (In formula (CG3), vg3 represents the average degree of polymerization, and vg3 is 0.1 to 30.)

[0106] [ka] (In formula (CH1), uh1 and vh1 represent the average degree of polymerization, uh1 being 0.1 to 30, and vh1 being 0.1 to 30.) (In formula (CH2), vh2 represents the average degree of polymerization, and vh2 is 0.1 to 30.) (In formula (CH3), vh3 represents the average degree of polymerization, and vh3 is 0.1 to 30.) (In formula (CI1), ui1 and vi1 represent average degrees of polymerization, ui1 being 0.1 to 30, and vi1 being 0.1 to 30.)

[0107] [ka] (In formula (CJ1), uj1 and vj1 represent the average degrees of polymerization, uj1 being 0.1 to 30, and vj1 being 0.1 to 30.) (In formula (CK1), uk1 and vk1 represent the average degree of polymerization, uk1 is 0.1 to 30, and vk1 is 0.1 to 30.) (In formula (CL1), ul1 and vl1 represent the average degree of polymerization, ul1 being 0.1 to 30, and vl1 being 0.1 to 30.) (In formula (CM1), um1 and vm1 represent the average degrees of polymerization, um1 being 0.1 to 30, and vm1 being 0.1 to 30.)

[0108] [ka] (In formula (CN1), un1 and vn1 represent the average degree of polymerization, un1 being 0.1 to 30, and vn1 being 0.1 to 30.) (In formula (CO1), uo1 and vo1 represent the average degrees of polymerization, uo1 being 0.1 to 30, and vo1 being 0.1 to 30.) (In formula (CP1), up1 and vp1 represent the average degrees of polymerization, up1 being 0.1 to 30, and vp1 being 0.1 to 30.) (In formula (CQ1), uq1 and vq1 represent the average degrees of polymerization, uq1 being 0.1 to 30, and vq1 being 0.1 to 30.)

[0109] [ka] (In formula (CR1), ur1 and vr1 represent the average degree of polymerization, ur1 being 0.1 to 30, and vr1 being 0.1 to 30.) (In formula (CS1), us1 and vs1 represent the average degree of polymerization, us1 being 0.1 to 30, and vs1 being 0.1 to 30.) (In formula (CT1), ut1 and vt1 represent the average degrees of polymerization, ut1 being 0.1 to 30, and vt1 being 0.1 to 30.) (In formula (DA1), xa1 and ya1 represent the average degree of polymerization, where xa1 is 0.1 to 30 and ya1 is 0.1 to 30.)

[0110] [ka] (In formula (DB1), xb1 and yb1 represent the average degree of polymerization, xb1 is 0.1 to 30, and yb1 is 0.1 to 30.) (In formula (DC1), xc1 and yc1 represent the average degree of polymerization, xc1 is 0.1 to 30, and yc1 is 0.1 to 30.) (In formula (DD1), xd1 and yd1 represent the average degree of polymerization, xd1 being 0.1 to 30, and yd1 being 0.1 to 30.)

[0111] [ka] (In formula (DE1), xe1 and ye1 represent the average degree of polymerization, xe1 being 0.1 to 30, and ye1 being 0.1 to 30.) (In formula (DF1), xf1 and yf1 represent the average degree of polymerization, and xf1 is 0.1 to 30, and yf1 is 0.1 to 30.) (In formula (DG1), xg1 and yg1 represent the average degree of polymerization, and xg1 is 0.1 to 30, and yg1 is 0.1 to 30.)

[0112] The compounds represented by formulas (AA2) to (AV1) are all compounds in which a in formula (2-1) which is [A] in the above formula (1) is 1, b in formula (2-2) which is [B] is 1, c is 2, and R 1 The compounds represented by formulae (AA2) to (AV1) are all arranged in the order of R 1 is expressed by equation (7), where v in equation (7) is 0, and R 4 is a 3-butenyl group.

[0113] The compounds represented by formulae (AA2) to (AF1), (AR1), (AS1), and (AV1) are all the same as -R in formula (1). 3 The compounds represented by formulas (AG1) to (AP1), (AT1), and (AU1) are all the same as those represented by the -R 3 The compound represented by formula (AQ1) is a compound represented by formula (5-2) in which -R 3 is the structure represented by formula (5-3).

[0114] The compounds represented by formulae (BA2) to (BR1) are all the same as -[C]-[D]-R in formula (1). 3 is the structure represented by formula (9-1). The compounds represented by formulas (BA2) to (BQ1) are all compounds in which a in formula (2-1), which is [A] in the above formula (1), is 2, and b in formula (2-2), which is [B], is 0. The compound represented by (BR1) is a compound in which a in formula (2-1), which is [A] in the above formula (1), is 3, and b in formula (2-2), which is [B], is 0.

[0115] The compounds represented by formulas (BA2) to (BR1) are all R 1 is represented by formula (7), and v in formula (7) is 0 or 1. The compounds represented by formulas (BA2) to (BI1), (BQ1), and (BR1) are all R 4 is an organic group having at least one double bond or triple bond. 4is an alkyl group which may have a substituent that does not contain a hydroxyl group.

[0116] The compounds represented by formulae (CA1) to (CQ1) are all -[C]-[D]-R in formula (1). 3 is the structure represented by formula (9-1). The compounds represented by formulas (CA1) to (CF1), (CP1), and (CQ1) are all R 1 is represented by formula (7), in which u is 2 to 6, v is 1, and R 4 is a hydrogen atom. The compounds represented by formulas (CG1) to (CO1) are all R 1 is a hydroxyl group (R 1 is expressed by equation (7), where v in equation (7) is 0, and R 4 is a hydrogen atom).

[0117] The compound represented by formula (CR1) is a compound represented by the formula (1) -[C]-[D]-R 3 The compound represented by formula (CS1) is a compound represented by the formula (9-10) in which -[C]-[D]-R 3 The compound represented by formula (CT1) is a compound represented by the formula (9-11) in which -[C]-[D]-R 3 is the structure represented by formula (9-17). The compounds represented by formulas (CR1) to (CT1) are all R 1 is expressed by formula (7), where u is 2, v is 1, and R 4 is a hydrogen atom.

[0118] The compounds represented by formulae (DA1) to (DG1) are all R 1 and R 3 is a branched terminal group of formula (5-1) or a branched terminal group of formula (5-2). 1 -[B]-[A]- and -[C]-[D]-R 3 is the same as

[0119] When the fluorine-containing ether compound represented by formula (1) is a compound represented by any one of the above formulae (AA2) to (AV1), (BA2) to (BR1), (CA1) to (CT1), and (DA1) to (DG1), it is possible to form a lubricating layer that has good adhesion to the protective layer and can suppress pick-up and spin-off, which is preferable.

[0120] It is particularly preferred that the fluorine-containing ether compound represented by formula (1) is a compound represented by any one of the above formulae (AA1) to (AQ1), (BA1) to (BR1), (CA1) to (CT1), and (DA1) to (DG1), since the adhesion to the protective layer is even better.

[0121] The fluorine-containing ether compound of the present embodiment preferably has a number average molecular weight (Mn) in the range of 500 to 10,000, more preferably in the range of 700 to 7,000, and particularly preferably in the range of 800 to 4,000. When the number-average molecular weight is 500 or more, the lubricant containing the fluorinated ether compound of this embodiment is less likely to evaporate. Therefore, when the number-average molecular weight is 500 or more, a lubricating layer capable of suppressing pickup and spin-off can be formed. Furthermore, when the number-average molecular weight is 10,000 or less, the viscosity of the fluorinated ether compound is not too high, resulting in a viscosity suitable for use as a lubricant. The number-average molecular weight of the fluorinated ether compound is more preferably 4,000 or less, since this results in a viscosity that is easy to handle when applied to a lubricant. The molecular weight may be 500 to 9,000, 600 to 7,000, 700 to 5,000, 800 to 3,000, 900 to 2,000, 1,000 to 1,800, 1,100 to 1,600, or 1,200 to 1,400, as needed.

[0122] The fluorine-containing ether compound of this embodiment preferably has a number-average molecular weight in the range of 1000 to 3000, because raw materials for the PFPE chain are readily available. When the number-average molecular weight is in the range of 1000 to 3000, the coating rate does not deteriorate even when the film thickness of the lubricating layer is thinned, and chemical resistance and wear resistance can be maintained. Furthermore, when the number-average molecular weight is in the range of 1000 to 3000, the best balance of performance is achieved in terms of suppressing pickup and spin-off and thinning the lubricating layer.

[0123] The fluorine-containing ether compound of the present embodiment has R 2 The ratio of the number average molecular weight of the PFPE chains (PFPE chains / whole molecule) represented by is preferably 0.45 to 0.90, more preferably 0.55 to 0.85. The ratio may be 0.48 to 0.80, 0.50 to 0.75, 0.53 to 0.70, or 0.57 to 0.65. 2 When the ratio of the number average molecular weight of the PFPE chain represented by the formula (1) is 0.45 or more, the proportion of fluorine atoms in the molecule of the fluorine-containing ether compound is reduced, and the surface free energy of the entire molecule can be prevented from increasing. Also, when the ratio is 0.90 or less, the ratio of R 1 -[B]-[A]- and -[C]-[D]-R 3 Therefore, a lubricating layer having better adhesion to the protective layer can be formed.

[0124] Here, we will explain why, when a lubricating layer is formed on the protective layer of a magnetic recording medium using a lubricant containing the fluorine-containing ether compound of this embodiment, a lubricating layer that has good adhesion to the protective layer and can suppress pick-up and spin-off can be formed.

[0125] In the fluorine-containing ether compound of this embodiment represented by formula (1), [A], [B], [C], and [D] are each a divalent linking group having a secondary hydroxyl group. In the fluorine-containing ether compound of this embodiment, a -[B]-[A]- structure containing 1 to 3 secondary hydroxyl groups (hereinafter sometimes abbreviated as "BA structure") and a -[C]-[D]- structure containing 1 to 2 secondary hydroxyl groups (hereinafter sometimes abbreviated as "CD structure") are connected to R via a methylene group (-CH2-). 2 The ether oxygen atoms in the BA and CD structures are arranged in a balanced manner at both ends of the PFPE chain. Furthermore, the ether oxygen atoms in the BA and CD structures give the molecular structure of the fluorine-containing ether compound represented by formula (1) a moderate degree of flexibility.

[0126] Furthermore, when the BA structure and / or CD structure contains multiple secondary hydroxyl groups, the carbon atoms to which the secondary hydroxyl groups are bonded are bonded via a linking group consisting of a methylene group (-CH2-) and an ether bond (-O-). Therefore, even when the BA structure and / or CD structure contains multiple secondary hydroxyl groups, the distance between adjacent secondary hydroxyl groups is appropriate, and the secondary hydroxyl groups are arranged in a manner that allows them to easily adsorb to the protective layer. From these facts, when a lubricating layer containing the fluorine-containing ether compound of this embodiment is formed on a protective layer, the secondary hydroxyl groups contained in the BA structure and the secondary hydroxyl groups contained in the CD structure effectively participate in bonding with the active sites on the protective layer.

[0127] Furthermore, R in formula (1) 3 is a branched terminal group containing two or three primary hydroxyl groups. Primary hydroxyl groups have less steric hindrance than secondary and tertiary hydroxyl groups, and therefore are more effective in forming intermolecular hydrogen bonds between fluorine-containing ether compounds. As described above, in the fluorinated ether compound of the present embodiment represented by formula (1), <1> The secondary hydroxyl groups contained in the BA structure and the CD structure are effectively involved in bonding with the active sites on the protective layer, and <2> R 3The multiple primary hydroxyl groups contained in the compound are involved in the formation of intermolecular hydrogen bonds between fluorine-containing ether compounds.

[0128] In other words, the lubricating layer containing the fluorine-containing ether compound of this embodiment effectively balances the excellent adsorption force toward the protective layer exhibited by the secondary hydroxyl groups located at both ends of the PFPE chain and the excellent intermolecular force exhibited by the primary hydroxyl groups possessed by the branched terminal groups. As a result, the lubricating layer containing the fluorine-containing ether compound of this embodiment has excellent adhesion to the protective layer. As a result, the fluorine-containing ether compound that is present without adhering (adsorbing) to the protective layer can be prevented from adhering to the magnetic head as foreign matter (smear), thereby suppressing pickup. In addition, spin-off, in which the lubricant is scattered or evaporated due to centrifugal force and / or heat generated by rotating the magnetic recording medium at high speed, resulting in a decrease in the film thickness of the lubricating layer, is suppressed.

[0129] "Manufacturing method" The method for producing the fluorinated ether compound of the present embodiment is not particularly limited, and the compound can be produced by a conventionally known production method. The fluorinated ether compound of the present embodiment can be produced, for example, by the production method shown below.

[0130] First, R in Equation (1) 2 A fluorine-based compound having a PFPE chain corresponding to the above and having a hydroxymethyl group (-CHOH) at each end of the molecule is prepared. Next, the hydroxyl group of the hydroxymethyl group located at one end of the fluorine-based compound is converted to R 1 The hydroxyl group of the hydroxymethyl group at the other end is then substituted with a group consisting of -[C]-[D]-R in formula (1) 3 (second reaction) The first and second reactions can be carried out using conventionally known methods and can be appropriately determined depending on the type of terminal group in formula (1), etc. In addition, either the first or second reaction can be carried out first. By the above method, the fluorine-containing ether compound represented by formula (1) can be obtained.

[0131] [Lubricants for magnetic recording media] The lubricant for a magnetic recording medium of this embodiment contains a fluorine-containing ether compound represented by formula (1). The lubricant of the present embodiment can be used by mixing, as needed, known materials used as lubricant materials, as long as the properties resulting from the inclusion of the fluorinated ether compound represented by formula (1) are not impaired.

[0132] Specific examples of known materials include FOMBLIN (registered trademark) ZDIAC, FOMBLIN ZDEAL, FOMBLIN AM-2001 (all manufactured by Solvay Solexis), Moresco A20H (manufactured by Moresco), etc. The known material to be mixed with the lubricant of the present embodiment preferably has a number average molecular weight of 1,000 to 10,000.

[0133] When the lubricant of this embodiment contains materials other than the fluorinated ether compound represented by formula (1), the content of the fluorinated ether compound represented by formula (1) in the lubricant of this embodiment is preferably 50% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, or even 90% by mass or more.

[0134] The lubricant of this embodiment contains the fluorine-containing ether compound represented by formula (1), and therefore has good adhesion to the protective layer, and a lubricating layer capable of suppressing pick-up and spin-off can be obtained.

[0135] [Magnetic recording media] The magnetic recording medium of this embodiment has at least a magnetic layer, a protective layer, and a lubricating layer provided in this order on a substrate. In the magnetic recording medium of this embodiment, one or more underlayers may be provided between the substrate and the magnetic layer, if necessary. An adhesive layer and / or a soft magnetic layer may also be provided between the underlayer and the substrate.

[0136] FIG. 1 is a schematic cross-sectional view showing one embodiment of the magnetic recording medium of the present invention. The magnetic recording medium 10 of this embodiment has a structure in which an adhesive layer 12, a soft magnetic layer 13, a first underlayer 14, a second underlayer 15, a magnetic layer 16, a protective layer 17, and a lubricating layer 18 are sequentially provided on a substrate 11.

[0137] "substrate" The substrate 11 may be, for example, a non-magnetic substrate in which a film made of NiP or a NiP alloy is formed on a base made of a metal or alloy material such as Al or an Al alloy. The substrate 11 may be a non-magnetic substrate made of a non-metallic material such as glass, ceramics, silicon, silicon carbide, carbon, or resin, or may be a non-magnetic substrate having a NiP or NiP alloy film formed on a base made of any of these non-metallic materials.

[0138] Glass substrates are suitable for achieving high recording densities because they are rigid and have excellent smoothness. Examples of glass substrates include aluminosilicate glass substrates. Chemically strengthened aluminosilicate glass substrates are particularly suitable. The main surface of the substrate 11 is preferably ultra-smooth with a roughness of Rmax of 6 nm or less and Ra of 0.6 nm or less. The surface roughnesses Rmax and Ra mentioned here are based on the JIS B0601 standard.

[0139] "Adhesion layer" The adhesive layer 12 prevents the progress of corrosion of the substrate 11, which occurs when the substrate 11 and the soft magnetic layer 13 provided on the adhesive layer 12 are disposed in contact with each other. The material of the adhesive layer 12 can be appropriately selected from, for example, Cr, a Cr alloy, Ti, a Ti alloy, CrTi, NiAl, an AlRu alloy, etc. The adhesive layer 12 can be formed by, for example, a sputtering method.

[0140] "Soft magnetic layer" The soft magnetic layer 13 preferably has a structure in which a first soft magnetic film, an intermediate layer made of a Ru film, and a second soft magnetic film are laminated in this order. That is, the soft magnetic layer 13 preferably has a structure in which the intermediate layer made of a Ru film is sandwiched between two soft magnetic films, and the soft magnetic films above and below the intermediate layer are antiferro-coupling (AFC).

[0141] The first and second soft magnetic films may be made of a material such as a CoZrTa alloy or a CoFe alloy. It is preferable to add Zr, Ta, or Nb to the CoFe alloy used in the first and second soft magnetic films. This promotes the amorphization of the first and second soft magnetic films, improving the orientation of the first underlayer (seed layer). This also reduces the flying height of the magnetic head. The soft magnetic layer 13 can be formed by, for example, a sputtering method.

[0142] "First base layer" The first underlayer 14 is a layer for controlling the orientation and crystal size of the second underlayer 15 and magnetic layer 16 provided thereon. The first underlayer 14 may be, for example, a Cr layer, a Ta layer, a Ru layer, a CrMo alloy layer, a CoW alloy layer, a CrW alloy layer, a CrV alloy layer, or a CrTi alloy layer. The first underlayer 14 can be formed by, for example, a sputtering method.

[0143] "Second base layer" The second underlayer 15 is a layer that controls the orientation of the magnetic layer 16. The second underlayer 15 is preferably a layer made of Ru or a Ru alloy. The second underlayer 15 may be a single layer or may be composed of multiple layers. When the second underlayer 15 is composed of multiple layers, all of the layers may be composed of the same material, or at least one layer may be composed of a different material. The second underlayer 15 can be formed by, for example, a sputtering method.

[0144] "Magnetic layer" The magnetic layer 16 is a magnetic film whose easy axis of magnetization is oriented perpendicular or parallel to the substrate surface. The magnetic layer 16 contains Co and Pt, and may also contain oxides, Cr, B, Cu, Ta, Zr, etc. to improve the SNR (Signal to Noise Ratio) characteristics. Examples of oxides contained in the magnetic layer 16 include SiO2, SiO, Cr2O3, CoO, Ta2O3, and TiO2.

[0145] The magnetic layer 16 may be composed of a single layer, or may be composed of multiple magnetic layers made of materials with different compositions. For example, when the magnetic layer 16 is composed of three layers, namely, a first magnetic layer, a second magnetic layer, and a third magnetic layer stacked in this order from the bottom, the first magnetic layer preferably has a granular structure made of a material containing Co, Cr, and Pt and further containing an oxide. The oxide contained in the first magnetic layer is preferably an oxide of Cr, Si, Ta, Al, Ti, Mg, Co, or the like. Among these, TiO2, Cr2O3, SiO2, and the like are particularly suitable. Furthermore, the first magnetic layer is preferably made of a composite oxide containing two or more types of oxides. Among these, Cr2O3-SiO2, Cr2O3-TiO2, SiO2-TiO2, and the like are particularly suitable.

[0146] The first magnetic layer may contain one or more elements selected from B, Ta, Mo, Cu, Nd, W, Nb, Sm, Tb, Ru, and Re in addition to Co, Cr, Pt, and oxides. The second magnetic layer can be made of the same material as the first magnetic layer, and preferably has a granular structure.

[0147] The third magnetic layer preferably has a non-granular structure made of a material containing Co, Cr, and Pt and not containing oxides, and may contain one or more elements selected from B, Ta, Mo, Cu, Nd, W, Nb, Sm, Tb, Ru, Re, and Mn in addition to Co, Cr, and Pt.

[0148] When magnetic layer 16 is formed of multiple magnetic layers, it is preferable to provide a non-magnetic layer between adjacent magnetic layers. When magnetic layer 16 is formed of three layers, namely, a first magnetic layer, a second magnetic layer, and a third magnetic layer, it is preferable to provide a non-magnetic layer between the first magnetic layer and the second magnetic layer and between the second magnetic layer and the third magnetic layer.

[0149] The non-magnetic layer provided between adjacent magnetic layers of the magnetic layer 16 can suitably be made of, for example, Ru, a Ru alloy, a CoCr alloy, or a CoCrX1 alloy (X1 represents one or more elements selected from Pt, Ta, Zr, Re, Ru, Cu, Nb, Ni, Mn, Ge, Si, O, N, W, Mo, Ti, V, and B).

[0150] The non-magnetic layer provided between adjacent magnetic layers of the magnetic layer 16 preferably uses an alloy material containing an oxide, metal nitride, or metal carbide. Specifically, oxides that can be used include, for example, SiO2, Al2O3, Ta2O5, Cr2O3, MgO, Y2O3, and TiO2. Metal nitrides that can be used include, for example, AlN, Si3N4, TaN, and CrN. Metal carbides that can be used include, for example, TaC, BC, and SiC. The non-magnetic layer can be formed by, for example, a sputtering method.

[0151] To achieve higher recording density, the magnetic layer 16 is preferably a magnetic layer for perpendicular magnetic recording, in which the axis of easy magnetization is oriented perpendicular to the substrate surface, but may also be a magnetic layer for longitudinal magnetic recording. The magnetic layer 16 may be formed by any conventionally known method such as vapor deposition, ion beam sputtering, magnetron sputtering, etc. The magnetic layer 16 is usually formed by sputtering.

[0152] "Protective layer" The protective layer 17 protects the magnetic layer 16. The protective layer 17 may be made of a single layer or multiple layers. Examples of materials for the protective layer 17 include carbon, carbon containing nitrogen, and silicon carbide. A carbon-based protective layer, particularly an amorphous carbon protective layer, can be preferably used as the protective layer 17. A carbon-based protective layer is preferred as the protective layer 17 because it further enhances the interaction with the polar groups (particularly hydroxyl groups) contained in the fluorine-containing ether compound in the lubricating layer 18.

[0153] The adhesion between the carbon-based protective layer and the lubricating layer 18 can be controlled by making the carbon-based protective layer hydrogenated carbon and / or nitrogenated carbon and adjusting the hydrogen content and / or nitrogen content in the carbon-based protective layer. The hydrogen content in the carbon-based protective layer is preferably 3 to 20 atomic % when measured by hydrogen forward scattering (HFS), and the nitrogen content in the carbon-based protective layer is preferably 4 to 15 atomic % when measured by X-ray photoelectron spectroscopy (XPS).

[0154] The hydrogen and / or nitrogen contained in the carbon-based protective layer does not need to be uniformly contained throughout the carbon-based protective layer. It is preferable that the carbon-based protective layer be a compositionally graded layer, for example, in which nitrogen is contained on the lubricating layer 18 side of the protective layer 17 and hydrogen is contained on the magnetic layer 16 side of the protective layer 17. In this case, the adhesion between the magnetic layer 16 and the lubricating layer 18 and the carbon-based protective layer is further improved. This is because the nitrogen in the protective layer 17 acts as an active site, promoting bonding with the lubricating layer. The hydrogen or nitrogen in the carbon-based protective layer acts as an active site.

[0155] The thickness of the protective layer 17 can be selected arbitrarily, but is preferably 1 nm to 7 nm. If the thickness of the protective layer 17 is 1 nm or more, sufficient performance as the protective layer 17 can be obtained. If the thickness of the protective layer 17 is 7 nm or less, it is preferable from the viewpoint of making the protective layer 17 thinner.

[0156] The protective layer 17 can be formed by sputtering using a target material containing carbon, chemical vapor deposition (CVD) using a hydrocarbon raw material such as ethylene or toluene, or ion beam deposition (IBD). When a carbon-based protective layer is formed as protective layer 17, it can be deposited by, for example, DC magnetron sputtering. In particular, when a carbon-based protective layer is formed as protective layer 17, it is preferable to deposit an amorphous carbon protective layer by plasma CVD. The amorphous carbon protective layer deposited by plasma CVD has a uniform surface with little roughness.

[0157] "Lubricating layer" The lubricating layer 18 prevents contamination of the magnetic recording medium 10. The lubricating layer 18 also reduces the frictional force of the magnetic head of the magnetic recording / reproducing device that slides on the magnetic recording medium 10, thereby improving the durability of the magnetic recording medium 10. 1, the lubricating layer 18 is formed on and in contact with the protective layer 17. The lubricating layer 18 contains the above-mentioned fluorine-containing ether compound.

[0158] When the protective layer 17 disposed below the lubricating layer 18 is a carbon-based protective layer, the lubricating layer 18 bonds with the protective layer 17 with particularly high bonding strength. As a result, even if the thickness of the lubricating layer 18 is thin, it becomes easier to obtain a magnetic recording medium 10 in which the surface of the protective layer 17 is covered with a high coverage, and contamination of the surface of the magnetic recording medium 10 can be effectively prevented.

[0159] The average thickness of the lubricating layer 18 is preferably 0.5 nm (5 Å) to 2.0 nm (20 Å), and more preferably 0.5 nm (5 Å) to 1.0 nm (10 Å). When the average thickness of the lubricating layer 18 is 0.5 nm or more, the lubricating layer 18 is formed with a uniform thickness without forming an island or mesh-like structure. This allows the lubricating layer 18 to cover the surface of the protective layer 17 with a high coverage. Furthermore, by setting the average thickness of the lubricating layer 18 to 2.0 nm or less, the lubricating layer 18 can be made sufficiently thin, and the flying height of the magnetic head can be sufficiently reduced.

[0160] If the surface of the protective layer 17 is not covered with the lubricating layer 18 at a sufficiently high coverage rate, environmental substances adsorbed to the surface of the magnetic recording medium 10 will pass through the gaps in the lubricating layer 18 and penetrate underneath the lubricating layer 18. The environmental substances that penetrate underneath the lubricating layer 18 will adsorb and bond with the protective layer 17, generating contaminants. During magnetic recording and reproduction, these contaminants (aggregated components) will then adhere (transfer) to the magnetic head as smear, damaging the magnetic head or degrading the magnetic recording and reproduction characteristics of the magnetic recording and reproduction device.

[0161] Environmental substances that generate contaminants include, for example, siloxane compounds (cyclic siloxanes, linear siloxanes), ionic impurities, hydrocarbons with relatively high molecular weights such as octacosane, and plasticizers such as dioctyl phthalate. Examples of metal ions contained in ionic impurities include sodium ions and potassium ions. Examples of inorganic ions contained in ionic impurities include chloride ions, bromide ions, nitrate ions, sulfate ions, and ammonium ions. Examples of organic ions contained in ionic impurities include oxalate ions and formate ions.

[0162] "Method for forming lubricating layer" A method for forming the lubricating layer 18 includes, for example, preparing a magnetic recording medium in the middle of manufacturing in which the layers up to the protective layer 17 are formed on the substrate 11, applying a solution for forming the lubricating layer onto the protective layer 17, and drying the solution.

[0163] The lubricant layer-forming solution can be obtained, for example, by dispersing and dissolving the magnetic recording medium lubricant of the above-described embodiment in a solvent as needed, and adjusting the viscosity and concentration to suit the coating method. Examples of the solvent used in the lubricant layer-forming solution include fluorine-based solvents such as Vertrel (registered trademark) XF (trade name, manufactured by DuPont-Mitsui Fluorochemicals Co., Ltd.).

[0164] The method for applying the lubricating layer-forming solution is not particularly limited, but examples thereof include spin coating, spraying, paper coating, and dipping. When using the dipping method, for example, the following method can be used. First, the substrate 11 on which each layer up to the protective layer 17 has been formed is immersed in a lubricant layer-forming solution placed in an immersion tank of a dip coating device. Next, the substrate 11 is lifted from the immersion tank at a predetermined speed. In this way, the lubricant layer-forming solution is applied to the surface of the substrate 11 above the protective layer 17. By using the dipping method, the lubricating layer forming solution can be applied uniformly to the surface of the protective layer 17, and the lubricating layer 18 can be formed on the protective layer 17 with a uniform thickness.

[0165] In this embodiment, it is preferable to perform a heat treatment on the substrate 11 on which the lubricating layer 18 is formed. By performing the heat treatment, the adhesion between the lubricating layer 18 and the protective layer 17 is improved, and the adhesive force between the lubricating layer 18 and the protective layer 17 is also improved. The heat treatment temperature is preferably 100 to 180° C. If the heat treatment temperature is 100° C. or higher, the effect of improving the adhesion between the lubricating layer 18 and the protective layer 17 can be sufficiently obtained. Furthermore, by setting the heat treatment temperature to 180° C. or lower, thermal decomposition of the lubricating layer 18 can be prevented. The heat treatment time is preferably 10 to 120 minutes.

[0166] In this embodiment, in order to further improve the adhesion of the lubricating layer 18 to the protective layer 17, the lubricating layer 18 on the substrate 11 may be irradiated with ultraviolet (UV) rays before or after the heat treatment.

[0167] The magnetic recording medium 10 of this embodiment has at least a magnetic layer 16, a protective layer 17, and a lubricating layer 18 formed in this order on a substrate 11. In the magnetic recording medium 10 of this embodiment, the lubricating layer 18 containing the above-mentioned fluorine-containing ether compound is formed on and in contact with the protective layer 17. Therefore, the magnetic recording medium 10 of this embodiment has a lubricating layer 18 that has good adhesion to the protective layer 17 and is less susceptible to pickup and spin-off, and is therefore excellent in reliability and durability. The magnetic recording medium 10 of this embodiment has a lubricating layer 18 that is less susceptible to pickup, which allows for a further reduction in magnetic spacing. Furthermore, the magnetic recording medium 10 of this embodiment has a lubricating layer 18 that is less susceptible to spin-off, which allows for an increase in the rotation speed of the magnetic recording medium. For these reasons, the magnetic recording medium 10 of this embodiment can contribute to an increase in the capacity of magnetic recording media. Therefore, the magnetic recording medium 10 of this embodiment is particularly suitable as a magnetic disk to be mounted in a magnetic disk device using the LUL (Load Unload) method.

[0168] In contrast, conventional magnetic recording media have problems in that the adhesion of the lubricant to the protective layer is insufficient, making pickup more likely to occur when the magnetic spacing is reduced, and spin-off more likely to occur when the rotation speed of the magnetic recording medium is increased. For this reason, it has been difficult to reduce the magnetic spacing or increase the rotation speed of the magnetic recording medium while maintaining reliability and durability. [Example]

[0169] The present invention will be described in more detail below with reference to examples and comparative examples, but the present invention is not limited to the following examples.

[0170] [NMR measurement method] The structures of the compounds obtained in the following examples were identified using AVANCE III-400 manufactured by Bruker Biospin. 1 H-NMR measurement and 19The NMR measurements were carried out by F-NMR measurement. For the NMR measurements, approximately 10 mg of the sample was weighed and dissolved in approximately 0.5 mL of deuterated acetone (with hexafluorobenzene added as a reference substance). 1 The reference for H-NMR chemical shifts was the acetone peak at 2.05 ppm. 19 The reference for F-NMR chemical shifts was set to −164.7 ppm for the hexafluorobenzene peak.

[0171] The number average molecular weight (Mn) of each compound is: 19 It was calculated from the results of F-NMR measurement. 19 The number of repeating units of the PFPE chain was calculated from the integrated intensity of the fluorine atom measured by F-NMR, and the number average molecular weight of the PFPE chain and the number average molecular weight of the whole molecule were calculated for each compound, and the ratio (PFPE ratio = PFPE chain / whole molecule) was calculated. The results are shown in Tables 1 to 5.

[0172] [Example 1] Compound (AA1) represented by the above formula (AA1) (in formula (AA1), ma1 indicating the average degree of polymerization is 3.4, and na1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (11-2) was synthesized by the method shown below. Two equivalents of 3-buten-1-ol were reacted with one equivalent of epichlorohydrin to synthesize a compound represented by the following formula (11-1). The resulting compound represented by formula (11-1) was reacted with 3,4-dihydro-2H-pyran to protect the hydroxyl group with a tetrahydropyranyl group, and then one double bond was oxidized using m-chloroperbenzoic acid to synthesize a compound represented by the following formula (11-2).

[0173] [ka]

[0174] The compound represented by the following formula (11-4) was synthesized by the following method. 1 equivalent of 3-allyloxy-1,2-propanediol was reacted with 2 equivalents of 2-(2-bromoethoxy)tetrahydro-2H-pyran to synthesize the compound represented by the following formula (11-3). The double bond of the obtained compound represented by formula (11-3) was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-4).

[0175] [ka]

[0176] In a 200 mL recovery flask, add HOCH2CF2O (CF2CF2O) m (CF2O) n CF2CH2OH (where m, the average degree of polymerization, is 3.4, and n, the average degree of polymerization, is 3.4) fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) (40.0 g), the compound represented by formula (11-2) (9.01 g), and t-BuOH (tertiary butyl alcohol) (40.0 mL) were charged and stirred at room temperature until homogenous. Furthermore, t-BuOK (potassium tertiary butoxide) (1.68 g) was added to the above-mentioned recovery flask, heated to 70 °C, and stirred for 12 hours to react.

[0177] The resulting reaction product was then cooled to 25°C, water was added, and then Vertrel (registered trademark) XF (hereinafter sometimes referred to as "Vertrel XF") manufactured by DuPont-Mitsui Fluorochemicals Co., Ltd. was added as a solvent to extract the organic layer, which was then washed with water. Anhydrous sodium sulfate was added to the organic layer to dehydrate it, and the desiccant was filtered off, after which the filtrate was concentrated. The residue was purified by silica gel column chromatography to obtain the compound (22.0 g) represented by the following formula (11-5).

[0178] [ka] (In formula (11-5), m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4.)

[0179] Under a nitrogen gas atmosphere, a 200 mL recovery flask was charged with 22.0 g of the compound represented by formula (11-5), 8.90 g of the compound represented by formula (11-4), and 65.0 mL of tertiary butyl alcohol (t-BuOH) and stirred at room temperature until the mixture was homogenous. 0.67 g of potassium tertiary butoxide (t-BuOK) was then added to the recovery flask, heated to 70°C, and stirred for 16 hours.

[0180] Thereafter, the resulting reaction product was cooled to 25°C, and a 7% hydrogen chloride / methanol reagent (104.2 g) was added, followed by stirring at room temperature for 3 hours to carry out a deprotection reaction. The resulting reaction product was neutralized by adding 7% aqueous sodium bicarbonate (250 mL), and then Vertrel XF was added to extract the organic layer, which was then washed with water. Anhydrous sodium sulfate was added to the organic layer to dehydrate it, and the desiccant was filtered off, after which the filtrate was concentrated. The residue was purified by silica gel column chromatography to obtain 17.5 g of compound (AA1).

[0181] The obtained compound (AA1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0182] [Example 2] A compound (AA2) represented by the above formula (AA2) (in formula (AA2), na2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 1, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 1 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, to obtain 17.3 g of compound (AA2).

[0183] The obtained compound (AA2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0184] [Example 3] A compound (AA3) represented by the above formula (AA3) (in formula (AA3), na3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 1, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) xThe same procedure as in Example 1 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 17.4 g of compound (AA3) was obtained.

[0185] The obtained compound (AA3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0186] [Example 4] A compound (AA4) represented by the above formula (AA4) (in formula (AA4), na4 representing the average degree of polymerization is 2.0) was obtained by the method shown below. In Example 1, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2CF2O(CF2CF2CF2CF2O) y The same procedure as in Example 1 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CF2CH2OH (wherein y, representing the average degree of polymerization, is 2.0) was used, and 17.6 g of compound (AA4) was obtained.

[0187] The obtained compound (AA4) 1 H-NMR and 19F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-83.70(12F), -123.32(4F), -125.85(8F), -127.63(4F)

[0188] [Example 5] Compound (AB1) represented by the above formula (AB1) (in formula (AB1), mb1 indicating the average degree of polymerization is 3.4, and nb1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-6) was synthesized by the following method: 1 equivalent of 3-allyloxy-1,2-propanediol was reacted with 2 equivalents of 2-(3-bromopropoxy)tetrahydro-2H-pyran, and then the double bond of the resulting compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-6).

[0189] [ka]

[0190] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-6) (9.21 g), to give 17.9 g of compound (AB1).

[0191] The obtained compound (AB1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=1.58-1.82(6H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0192] [Example 6] Compound (AC1) represented by the above formula (AC1) (in formula (AC1), mc1 indicating the average degree of polymerization is 3.4, and nc1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-7) was synthesized by the following method: 1 equivalent of 3-allyloxy-1,2-propanediol was reacted with 2 equivalents of 2-(4-bromobutoxy)tetrahydro-2H-pyran, and the double bond of the resulting compound was then oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-7).

[0193] [ka]

[0194] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced by the compound represented by formula (11-7) (9.82 g), to give 18.3 g of compound (AC1).

[0195] The obtained compound (AC1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(10H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0196] [Example 7] Compound (AD1) represented by the above formula (AD1) (in formula (AD1), md1 indicating the average degree of polymerization is 3.4, and nd1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-8) was synthesized by the following method. Allyl glycidyl ether was reacted with tetrahydropyranylethylene glycol, followed by reaction with 2-(3-bromopropoxy)tetrahydro-2H-pyran. The double bond of the obtained compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-8).

[0197] [ka]

[0198] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced by the compound represented by formula (11-8) (9.70 g), to give 17.9 g of compound (AD1).

[0199] The obtained compound (AD1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(4H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0200] [Example 8] Compound (AE1) represented by the above formula (AE1) (in formula (AE1), me1 indicating the average degree of polymerization is 3.4, and ne1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-10) was synthesized by the following method. One double bond of di(3-butenyl) ether was oxidized using one equivalent of m-chloroperbenzoic acid, and then the epoxy was ring-opened using concentrated sulfuric acid to synthesize the compound represented by the following formula (11-9). The obtained compound represented by formula (11-9) was reacted with two equivalents of 2-(2-bromoethoxy)tetrahydro-2H-pyran, and then oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-10).

[0201] [ka]

[0202] [ka]

[0203] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-10) (10.01 g), to give 18.2 g of compound (AE1).

[0204] The obtained compound (AE1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=1.58-1.82(6H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0205] [Example 9] Compound (AF1) represented by the above formula (AF1) (in formula (AF1), mf1 indicating the average degree of polymerization is 3.4, and nf1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-11) was synthesized by the following method: After reacting the compound represented by the above formula (11-4) with allyl alcohol, the double bond of the obtained compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-11).

[0206] [ka]

[0207] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-11) (10.21 g), to obtain 19.1 g of compound (AF1).

[0208] The obtained compound (AF1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(45H), 4.98(1H), 5.05(1H), 5.82(1H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0209] [Example 10] Compound (AG1) represented by the above formula (AG1) (in formula (AG1), mg1 indicating the average degree of polymerization is 3.4, and ng1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-13) was synthesized by the following method. The carbonyl moiety of 2,2-dimethyl-1,3-dioxane-5-one was reduced with lithium aluminum hydride to synthesize the compound represented by the following formula (11-12). The obtained compound represented by formula (11-12) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-13).

[0210] [ka]

[0211] [ka]

[0212] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-13) (7.80 g), to obtain 15.2 g of compound (AG1).

[0213] The obtained compound (AG1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(31H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0214] [Example 11] Compound (AH1) represented by the above formula (AH1) (in formula (AH1), mh1 indicating the average degree of polymerization is 3.4, and nh1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-14) was synthesized by the following method: 5-hydroxymethyl-2,2-dimethyl-1,3-dioxane was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-14).

[0215] [ka]

[0216] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-14) (7.87 g), to give 15.5 g of compound (AH1).

[0217] The obtained compound (AH1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.10(1H), 2.34(2H), 3.40-4.20(32H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0218] [Example 12] Compound (AI1) represented by the above formula (AI1) (in formula (AI1), mi1 indicating the average degree of polymerization is 3.4, and ni1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-15) was synthesized by the following method: 5-hydroxyethyl-2,2-dimethyl-1,3-dioxane was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-15).

[0219] [ka]

[0220] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-15) (7.95 g), to give 16.1 g of compound (AI1).

[0221] The obtained compound (AI1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(4H), 2.10(1H), 2.34(2H), 3.40-4.20(32H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0222] [Example 13] Compound (AJ1) represented by the above formula (AJ1) (in formula (AJ1), mj1 indicating the average degree of polymerization is 3.4, and nj1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-16) was synthesized by the following method: The compound represented by the above formula (11-12) was reacted with 3-butenyl bromide, and then oxidized with m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-16).

[0223] [ka]

[0224] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-16) (7.14 g), to give 14.8 g of compound (AJ1).

[0225] The obtained compound (AJ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(4H), 2.34(2H), 3.40-4.20(31H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0226] [Example 14] Compound (AK1) represented by the above formula (AK1) (in formula (AK1), mk1 indicating the average degree of polymerization is 3.4, and nk1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-17) was synthesized by the following method: After reacting the compound represented by the above formula (11-13) with allyl alcohol, the double bond of the obtained compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-17).

[0227] [ka]

[0228] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-17) (8.23 g), to give 16.6 g of compound (AK1).

[0229] The obtained compound (AK1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(37H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0230] [Example 15] Compound (AL1) represented by the above formula (AL1) (in formula (AL1), ml1 indicating the average degree of polymerization is 3.4, and nl1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-18) was synthesized by the following method: The compound represented by the above formula (11-13) was reacted with 3-butene-1-ol, and then the double bond of the resulting compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-18).

[0231] [ka]

[0232] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced by the compound represented by formula (11-18) (8.31 g), to give 15.6 g of compound (AL1).

[0233] The obtained compound (AL1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(4H), 2.34(2H), 3.40-4.20(37H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0234] [Example 16] A compound (AM1) represented by the above formula (AM1) (in formula (AM1), mm1 indicating the average degree of polymerization is 3.4, and nm1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-20) was synthesized by the following method. Two equivalents of tetrahydropyranylethylene glycol were reacted with one equivalent of epichlorohydrin to synthesize the compound represented by the following formula (11-19). The obtained compound represented by formula (11-19) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-20).

[0235] [ka]

[0236] [ka]

[0237] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-20) (8.90 g), to give 16.3 g of compound (AM1).

[0238] The obtained compound (AM1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0239] [Example 17] A compound (AM2) represented by the above formula (AM2) (in formula (AM2), nm2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 16, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 16 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, and 17.6 g of compound (AM2) was obtained.

[0240] The obtained compound (AM2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0241] [Example 18] A compound (AM3) represented by the above formula (AM3) (in formula (AM3), nm3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 16, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 16 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 17.1 g of compound (AM3) was obtained.

[0242] The obtained compound (AM3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0243] [Example 19] A compound (AM4) represented by the above formula (AM4) (in formula (AM4), nm4 representing the average degree of polymerization is 2.0) was obtained by the method shown below. In Example 16, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2CF2O(CF2CF2CF2CF2O) y The same procedure as in Example 16 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CF2CH2OH (wherein y, representing the average degree of polymerization, is 2.0) was used, and 17.0 g of compound (AM4) was obtained.

[0244] The obtained compound (AM4) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-83.70(12F), -123.32(4F), -125.85(8F), -127.63(4F)

[0245] [Example 20] The compound (AN1) represented by the above formula (AN1) (in formula (AN1), mn1 indicating the average degree of polymerization is 3.4, and nn1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-22) was synthesized by the following method. Two equivalents of tetrahydropyranyltrimethylene glycol were reacted with one equivalent of epichlorohydrin to synthesize the compound represented by the following formula (11-21). The obtained compound represented by formula (11-21) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-22).

[0246] [ka]

[0247] [ka]

[0248] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-22) (9.11 g), to give 16.8 g of compound (AN1).

[0249] The obtained compound (AN1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(6H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0250] [Example 21] Compound (AO1) represented by the above formula (AO1) (in formula (AO1), mo1 indicating the average degree of polymerization is 3.4, and no1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-24) was synthesized by the following method. Two equivalents of tetrahydropyranyltetramethylene glycol were reacted with one equivalent of epichlorohydrin to synthesize the compound represented by the following formula (11-23). ​​The resulting compound represented by formula (11-23) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-24).

[0251] [ka]

[0252] [ka]

[0253] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-24) (9.31 g), to give 16.4 g of compound (AO1).

[0254] The obtained compound (AO1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(10H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0255] [Example 22] Compound (AP1) represented by the above formula (AP1) (in formula (AP1), mp1 indicating the average degree of polymerization is 3.4, and np1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-26) was synthesized by the following method. Two equivalents of tetrahydropyranyldiethylene glycol were reacted with one equivalent of epichlorohydrin to synthesize the compound represented by the following formula (11-25). The obtained compound represented by formula (11-25) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-26).

[0256] [ka]

[0257] [ka]

[0258] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced by the compound represented by formula (11-26) (9.10 g), to give 16.9 g of compound (AP1).

[0259] The obtained compound (AP1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(47H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0260] [Example 23] Compound (AQ1) represented by the above formula (AQ1) (in formula (AQ1), mq1 indicating the average degree of polymerization is 3.4, and nq1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-28) was synthesized by the method shown below. 2-(bromomethyl)-2-(hydroxymethyl)-1,3-propanediol was reacted with 3,4-dihydro-2H-pyran, and the hydroxyl group was protected with a tetrahydropyranyl group to synthesize the compound represented by the following formula (11-27). The obtained compound represented by formula (11-27) was reacted with allyl alcohol, and then the double bond of the obtained compound was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-28).

[0261] [ka]

[0262] [ka]

[0263] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-28) (7.91 g), to give 15.9 g of compound (AQ1).

[0264] The obtained compound (AQ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(2H), 2.34(2H), 3.40-4.20(35H), 4.98(1H), 5.05(1H), 5.82(1H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0265] [Example 24] A compound (AR1) represented by the above formula (AR1) (in formula (AR1), mr1 indicating the average degree of polymerization is 3.4, and nr1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-30) was synthesized by the following method. One equivalent of 4-allyloxy-1,2-butanediol was reacted with two equivalents of 2-(6-bromohexyloxy)tetrahydro-2H-pyran to synthesize the compound represented by the following formula (11-29). The double bond of the obtained compound represented by formula (11-29) was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-30).

[0266] [ka]

[0267] [ka]

[0268] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-30) (10.61 g), to give 18.1 g of compound (AR1).

[0269] The obtained compound (AR1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=1.58-1.82(20H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0270] [Example 25] Compound (AS1) represented by the above formula (AS1) (in formula (AS1), ms1 indicating the average degree of polymerization is 3.4, and ns1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-32) was synthesized by the following method. One equivalent of 8-allyloxy-1,2-octanediol was reacted with two equivalents of 2-(6-bromohexyloxy)tetrahydro-2H-pyran to synthesize the compound represented by the following formula (11-31). The double bond of the obtained compound represented by formula (11-31) was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-32).

[0271] [ka]

[0272] [ka]

[0273] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-32) (10.98 g), to give 17.7 g of compound (AS1).

[0274] The obtained compound (AS1) 1 H-NMR and 19F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(28H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0275] [Example 26] Compound (AT1) represented by the above formula (AT1) (in formula (AT1), mt1 indicating the average degree of polymerization is 3.4, and nt1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-33) was synthesized by the following method: 5-hydroxyhexyl-2,2-dimethyl-1,3-dioxane was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-33).

[0276] [ka]

[0277] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-33) (7.21 g), to give 15.2 g of compound (AT1).

[0278] The obtained compound (AT1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=1.58-1.82(12H), 2.10(1H), 2.34(2H), 3.40-4.20(32H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0279] [Example 27] Compound (AU1) represented by the above formula (AU1) (in formula (AU1), mu1 indicating the average degree of polymerization is 3.4, and nu1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-35) was synthesized by the following method. Two equivalents of tetrahydropyranylhexamethylene glycol were reacted with one equivalent of epichlorohydrin to synthesize the compound represented by the following formula (11-34). The resulting compound represented by formula (11-34) was reacted with epibromohydrin to synthesize the compound represented by the following formula (11-35).

[0280] [ka]

[0281] [ka]

[0282] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-35) (9.41 g), to give 16.2 g of compound (AU1).

[0283] The obtained compound (AU1) 1 H-NMR and 19F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(18H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0284] [Example 28] Compound (AV1) represented by the above formula (AV1) (in formula (AV1), mv1 indicating the average degree of polymerization is 3.4, and nv1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (11-37) was synthesized by the following method. One double bond of di(6-heptenyl) ether was oxidized using one equivalent of m-chloroperbenzoic acid, and then the epoxy was ring-opened using concentrated sulfuric acid to synthesize the compound represented by the following formula (11-36). The obtained compound represented by formula (11-36) was reacted with two equivalents of 2-(2-bromoethoxy)tetrahydro-2H-pyran, and then oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (11-37).

[0285] [ka]

[0286] [ka]

[0287] The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-4) used in Example 1 was replaced with the compound represented by formula (11-37) (10.11 g), to give 18.6 g of compound (AV1).

[0288] The obtained compound (AV1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.58-1.82(18H), 2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0289] [Example 29] Compound (BA1) represented by the above formula (BA1) (in formula (BA1), pa1 indicating the average degree of polymerization is 3.4, and qa1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (12-2) was synthesized by the following method. 1,3-Diallyloxy-2-propanol was reacted with 3,4-dihydro-2H-pyran to synthesize a compound represented by the following formula (12-1). One double bond of the obtained compound represented by formula (12-1) was oxidized using m-chloroperbenzoic acid to synthesize a compound represented by formula (12-2).

[0290] [ka]

[0291] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-2) (8.17 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.7 g of compound (BA1).

[0292] The obtained compound (BA1) 1 H-NMR and 19F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(39H), 5.10(1H), 5.25(1H), 5.91(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0293] [Example 30] A compound (BA2) represented by the above formula (BA2) (in formula (BA2), qa2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 29, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 29 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, and 17.5 g of compound (BA2) was obtained.

[0294] The obtained compound (BA2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(39H), 5.10(1H), 5.25(1H), 5.91(1H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0295] [Example 31] A compound (BA3) represented by the above formula (BA3) (in formula (BA3), qa3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 29, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 29 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 16.8 g of compound (BA3) was obtained.

[0296] The obtained compound (BA3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(39H), 5.10(1H), 5.25(1H), 5.91(1H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0297] [Example 32] A compound (BA4) represented by the above formula (BA4) (in formula (BA4), qa4 representing the average degree of polymerization is 2.0) was obtained by the method shown below. In Example 29, HOCHCFO(CFCFO) m (CF2O) nInstead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2CF2O(CF2CF2CF2CF2O) y The same procedure as in Example 29 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CF2CH2OH (wherein y, representing the average degree of polymerization, is 2.0) was used, and 16.5 g of compound (BA4) was obtained.

[0298] The obtained compound (BA4) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(39H), 5.10(1H), 5.25(1H), 5.91(1H) 19 F-NMR (acetone-d6): δ[ppm]=-83.70(12F), -123.32(4F), -125.85(8F), -127.63(4F)

[0299] [Example 33] Compound (BB1) represented by the above formula (BB1) (in formula (BB1), pb1 indicating the average degree of polymerization is 3.4, and qb1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (12-4) was synthesized by the method shown below. 3-Buten-1-ol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize a compound represented by the following formula (12-3). The primary hydroxyl group of the resulting compound represented by formula (12-3) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the resulting compound. Finally, the resulting primary hydroxyl group was reacted with epibromohydrin to synthesize a compound represented by the following formula (12-4).

[0300] [ka]

[0301] [ka]

[0302] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-4) (8.27 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.1 g of compound (BB1).

[0303] The obtained compound (BB1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=2.34(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0304] [Example 34] Compound (BC1) represented by the above formula (BC1) (in formula (BC1), pc1 indicating the average degree of polymerization is 3.4, and qc1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-6) was synthesized by the method shown below. 4-Penten-1-ol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-5). The primary hydroxyl group of the obtained compound represented by formula (12-5) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-6).

[0305] [ka]

[0306] [ka]

[0307] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-6) (8.54 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.3 g of compound (BC1).

[0308] The obtained compound (BC1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.67(2H), 2.15(2H), 3.40-4.20(39H), 4.98(1H), 5.05(1H), 5.82(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0309] [Example 35] Compound (BD1) represented by the above formula (BD1) (in formula (BD1), pd1 indicating the average degree of polymerization is 3.4, and qd1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-8) was synthesized by the method shown below. Propargyl alcohol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-7). The primary hydroxyl group of the obtained compound represented by formula (12-7) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-8).

[0310] [ka]

[0311] [ka]

[0312] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-8) (8.21 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.5 g of compound (BD1).

[0313] The obtained compound (BD1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=2.48(1H), 3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0314] [Example 36] Compound (BE1) represented by the above formula (BE1) (in formula (BE1), pe1 indicating the average degree of polymerization is 3.4, and qe1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-10) was synthesized by the method shown below. 4-Pentyn-1-ol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-9). The primary hydroxyl group of the obtained compound represented by formula (12-9) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-10).

[0315] [ka]

[0316] [ka]

[0317] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-10) (8.41 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.4 g of compound (BE1).

[0318] The obtained compound (BE1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.78(2H), 2.00(1H), 2.30(2H), 3.40-4.20(39H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0319] [Example 37] Compound (BF1) represented by the above formula (BF1) (in formula (BF1), pf1 indicating the average degree of polymerization is 3.4, and qf1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (12-12) was synthesized by the method shown below. 2-Thiopheneethanol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize a compound represented by the following formula (12-11). The primary hydroxyl group of the obtained compound represented by formula (12-11) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize a compound represented by the following formula (12-12).

[0320] [ka]

[0321] [ka]

[0322] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-12) (8.21 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.9 g of compound (BF1).

[0323] The obtained compound (BF1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=3.07(2H), 3.40-4.20(39H), 6.90(2H), 7.23(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0324] [Example 38] Compound (BG1) represented by the above formula (BG1) (in formula (BG1), pg1 indicating the average degree of polymerization is 3.4, and qg1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (12-14) was synthesized by the method shown below. 1-Methylpyrazole-5-methanol was reacted with epibromohydrin, and then the epoxy group was hydrolyzed under acidic conditions to synthesize a compound represented by the following formula (12-13). The primary hydroxyl group of the resulting compound represented by formula (12-13) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the resulting compound. Finally, the resulting primary hydroxyl group was reacted with epibromohydrin to synthesize a compound represented by the following formula (12-14).

[0325] [ka]

[0326] [ka]

[0327] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-14) (8.31 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.7 g of compound (BG1).

[0328] The obtained compound (BG1) 1H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(42H), 6.20(1H), 7.31(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0329] [Example 39] Compound (BH1) represented by the above formula (BH1) (in formula (BH1), ph1 indicating the average degree of polymerization is 3.4, and qh1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-15) was synthesized by the following method: 4-methoxyphenol was reacted with allyl glycidyl ether, and then the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-15).

[0330] [ka]

[0331] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-15) (8.51 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.9 g of compound (BH1).

[0332] The obtained compound (BH1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(40H), 6.85(4H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0333] [Example 40] Compound (BI1) represented by the above formula (BI1) (in formula (BI1), pi1 indicating the average degree of polymerization is 3.4, and qi1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-16) was synthesized by the following method: 3-cyanophenol was reacted with allyl glycidyl ether, and then the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-16).

[0334] [ka]

[0335] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-16) (8.11 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.1 g of compound (BI1).

[0336] The obtained compound (BI1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(37H), 7.28-7.34(3H), 7.50(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0337] [Example 41] A compound (BJ1) represented by the above formula (BJ1) (in formula (BJ1), pj1 indicating the average degree of polymerization is 3.4, and qj1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-18) was synthesized by the method shown below. 3-Cyanopropanol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-17). The primary hydroxyl group of the obtained compound represented by formula (12-17) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-18).

[0338] [ka]

[0339] [ka]

[0340] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-18) (8.26 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.9 g of compound (BJ1).

[0341] The obtained compound (BJ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.88(2H), 2.54(2H), 3.40-4.20(39H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0342] [Example 42] Compound (BK1) represented by the above formula (BK1) (in formula (BK1), pk1 indicating the average degree of polymerization is 3.4, and qk1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-20) was synthesized by the method shown below. 4-Cyanobutanol was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-19). The primary hydroxyl group of the obtained compound represented by formula (12-19) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-20).

[0343] [ka]

[0344] [ka]

[0345] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-20) (8.41 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 17.2 g of compound (BK1).

[0346] The obtained compound (BK1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR (acetone-d6): δ[ppm]=1.75(4H), 2.54(2H), 3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0347] [Example 43] A compound (BL1) represented by the above formula (BL1) (in formula (BL1), p11 indicating the average degree of polymerization is 3.4, and ql1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-21) was synthesized by the following method. After protecting the primary hydroxyl group of 3-methoxy-1,2-propanediol with a t-butyldimethylsilyl group, the secondary hydroxyl group was protected with a methoxymethyl group, and the t-butyldimethylsilyl group was removed from the resulting compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-21).

[0348] [ka]

[0349] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-21) (8.51 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 17.0 g of compound (BL1).

[0350] The obtained compound (BL1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(40H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0351] [Example 44] A compound (BM1) represented by the above formula (BM1) (in formula (BM1), pm1 indicating the average degree of polymerization is 3.4, and qm1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-22) was synthesized by the following method. After protecting the primary hydroxyl group of 3-allyloxy-1,2-propanediol with a t-butyldimethylsilyl group, the secondary hydroxyl group was protected with a methoxymethyl group, and the t-butyldimethylsilyl group was removed from the resulting compound. Finally, the resulting primary hydroxyl group was reacted with propyl bromide, and the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-22).

[0352] [ka]

[0353] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-22) (7.80 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.9 g of compound (BM1).

[0354] The obtained compound (BM1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=0.84(3H), 1.55(2H), 3.40-4.20(39H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0355] [Example 45] Compound (BN1) represented by the above formula (BN1) (in formula (BN1), pn1 indicating the average degree of polymerization is 3.4, and qn1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-23) was synthesized by the following method: 2,2,2-trifluoroethanol was reacted with allyl glycidyl ether, and then the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-23).

[0356] [ka]

[0357] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-23) (6.10 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.3 g of compound (BN1).

[0358] The obtained compound (BN1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0359] [Example 46] The compound (BO1) represented by the above formula (BO1) (in formula (BO1), po1 indicating the average degree of polymerization is 3.4, and qo1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-24) was synthesized by the following method: 2,2,3,3,3-pentafluoro-1-propanol was reacted with allyl glycidyl ether, and then the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-24).

[0360] [ka]

[0361] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-24) (6.46 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.1 g of compound (BO1).

[0362] The obtained compound (BO1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0363] [Example 47] Compound (BP1) represented by the above formula (BP1) (in formula (BP1), pp1 indicating the average degree of polymerization is 3.4, and qp1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-25) was synthesized by the following method. After protecting the primary hydroxyl group of 3-allyloxy-1,2-propanediol with a t-butyldimethylsilyl group, the secondary hydroxyl group was protected with a methoxymethyl group, and the t-butyldimethylsilyl group was removed from the resulting compound. Finally, the resulting primary hydroxyl group was reacted with 2-bromoethyl methyl ether, and the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-25).

[0364] [ka]

[0365] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-25) (6.98 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.4 g of compound (BP1).

[0366] The obtained compound (BP1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.31(3H), 3.40-4.20(41H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0367] [Example 48] Compound (BQ1) represented by the above formula (BQ1) (in formula (BQ1), pq1 indicating the average degree of polymerization is 3.4, and qq1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-27) was synthesized by the method shown below. Ethylene glycol monoallyl ether was reacted with epibromohydrin, and then the epoxy was hydrolyzed under acidic conditions to synthesize the compound represented by the following formula (12-26). The primary hydroxyl group of the obtained compound represented by formula (12-26) was protected with a t-butyldimethylsilyl group, and then the secondary hydroxyl group was protected with a methoxymethyl group. The t-butyldimethylsilyl group was then removed from the obtained compound. Finally, the generated primary hydroxyl group was reacted with epibromohydrin to synthesize the compound represented by the following formula (12-27).

[0368] [ka]

[0369] [ka]

[0370] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-27) (7.12 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.5 g of compound (BQ1).

[0371] The obtained compound (BQ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(43H), 5.10(1H), 5.26(1H), 5.91(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0372] [Example 49] A compound (BR1) represented by the above formula (BR1) (in formula (BR1), pr1 indicating the average degree of polymerization is 3.4, and qr1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (12-28) was synthesized by the following method: The compound represented by the above formula (12-2) was reacted with allyl alcohol, and then oxidized with m-chloroperbenzoic acid to synthesize the compound represented by the following formula (12-28).

[0373] [ka]

[0374] The same procedure as in Example 1 was carried out, except that the compound represented by formula (12-28) (7.02 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.6 g of compound (BR1).

[0375] The obtained compound (BR1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=3.40-4.20(45H), 5.10(1H), 5.25(1H), 5.91(1H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0376] [Example 50] Compound (CA1) represented by the above formula (CA1) (in formula (CA1), ua1 indicating the average degree of polymerization is 3.4, and va1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, ethylene glycol monoallyl ether was reacted with 3,4-dihydro-2H-pyran, and then the reaction mixture was oxidized with m-chloroperbenzoic acid to synthesize a compound represented by the following formula (13-1).

[0377] [ka]

[0378] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-1) (6.02 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.0 g of compound (CA1).

[0379] The obtained compound (CA1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0380] [Example 51] A compound (CA2) represented by the above formula (CA2) (in formula (CA2), va2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 50, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) zThe same procedure as in Example 50 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, and 15.6 g of compound (CA2) was obtained.

[0381] The obtained compound (CA2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(36H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0382] [Example 52] A compound (CA3) represented by the above formula (CA3) (in formula (CA3), va3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 50, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 50 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 15.3 g of compound (CA3) was obtained.

[0383] The obtained compound (CA3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0384] [Example 53] Compound (CB1) represented by the above formula (CB1) (in formula (CB1), ub1 indicating the average degree of polymerization is 3.4, and vb1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, a compound represented by the following formula (13-3) was synthesized by the following method. One equivalent of 1,3-propanediol was reacted with one equivalent of allyl bromide to synthesize a compound represented by the following formula (13-2). The resulting compound represented by formula (13-2) was reacted with 3,4-dihydro-2H-pyran, and then oxidized with m-chloroperbenzoic acid to synthesize a compound represented by the following formula (13-3).

[0385] [ka]

[0386] [ka]

[0387] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-3) (6.22 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.2 g of compound (CB1).

[0388] The obtained compound (CB1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.75(2H), 3.40-4.20(36H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0389] [Example 54] A compound (CB2) represented by the above formula (CB2) (in formula (CB2), vb2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 53, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 53 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, to obtain 15.9 g of compound (CB2).

[0390] The obtained compound (CB2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.75(2H), 3.40-4.20(36H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0391] [Example 55] A compound (CB3) represented by the above formula (CB3) (in formula (CB3), vb3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 53, HOCHCFO(CFCFO) m (CF2O) nInstead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 53 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 15.4 g of compound (CB3) was obtained.

[0392] The obtained compound (CB3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.75(2H), 3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0393] [Example 56] Compound (CC1) represented by the above formula (CC1) (in formula (CC1), uc1 indicating the average degree of polymerization is 3.4, and vc1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-5) was synthesized by the following method. One equivalent of 1,4-butanediol was reacted with one equivalent of allyl bromide to synthesize the compound represented by the following formula (13-4). The resulting compound represented by formula (13-4) was reacted with 3,4-dihydro-2H-pyran, and then oxidized with m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-5).

[0394] [ka]

[0395] [ka]

[0396] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-5) (6.56 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.4 g of compound (CC1).

[0397] The obtained compound (CC1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6): δ[ppm]=1.75(4H), 3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0398] [Example 57] Compound (CD1) represented by the above formula (CD1) (in formula (CD1), ud1 indicating the average degree of polymerization is 3.4, and vd1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, 1,6-hexanediol was reacted with 1 equivalent of 3,4-dihydro-2H-pyran, and the resulting compound was reacted with epibromohydrin to synthesize the compound represented by the following formula (13-6).

[0399] [ka]

[0400] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-6) (6.98 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 17.2 g of compound (CD1).

[0401] The obtained compound (CD1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=1.20-1.80(8H), 3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0402] [Example 58] Compound (CE1) represented by the above formula (CE1) (in formula (CE1), ue1, which indicates the average degree of polymerization, is 3.4, and ve1, which indicates the average degree of polymerization, is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-8) was synthesized by the following method. The primary hydroxyl group of 3-allyloxy-1,2-propanediol was protected with a t-butyldimethylsilyl group. Then, the secondary hydroxyl group was protected with a methoxymethyl group, and the t-butyldimethylsilyl group was removed from the resulting compound to synthesize the compound represented by the following formula (13-7). The resulting compound represented by formula (13-7) was reacted with 2-(2-chloroethoxy)tetrahydropyran, and the double bond was then oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-8).

[0403] [ka]

[0404] [ka]

[0405] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-8) (7.45 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 17.9 g of compound (CE1).

[0406] The obtained compound (CE1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(42H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0407] [Example 59] Compound (CF1) represented by the above formula (CF1) (in formula (CF1), uf1 indicating the average degree of polymerization is 3.4, and vf1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-10) was synthesized by the following method. The primary hydroxyl group of 3-allyloxy-1,2-propanediol was protected with a t-butyldimethylsilyl group. Then, the secondary hydroxyl group was protected with a methoxymethyl group, and the t-butyldimethylsilyl group was removed from the resulting compound to synthesize the compound represented by the following formula (13-9). The resulting compound represented by formula (13-9) was reacted with 2-(3-chloropropoxy)tetrahydropyran, and the double bond was then oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-10).

[0408] [ka]

[0409] [ka]

[0410] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-10) (7.21 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 17.7 g of compound (CF1).

[0411] The obtained compound (CF1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.75(2H), 3.40-4.20(42H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0412] [Example 60] Compound (CG1) represented by the above formula (CG1) (in formula (CG1), ug1 indicating the average degree of polymerization is 3.4, and vg1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the double bond of 2-allyloxytetrahydro-2H-pyran was oxidized using m-chloroperbenzoic acid to synthesize a compound represented by the following formula (13-11).

[0413] [ka]

[0414] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-11) (5.21 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 13.8 g of compound (CG1).

[0415] The obtained compound (CG1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0416] [Example 61] A compound (CG2) represented by the above formula (CG2) (in formula (CG2), vg2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 60, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 60 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, to obtain 15.4 g of compound (CG2).

[0417] The obtained compound (CG2) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(32H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0418] [Example 62] A compound (CG3) represented by the above formula (CG3) (in formula (CG3), vg3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 60, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 60 was carried out, except that 40.0 g of a fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, to obtain 15.3 g of compound (CG3).

[0419] The obtained compound (CG3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0420] [Example 63] Compound (CH1) represented by the above formula (CH1) (in formula (CH1), uh1 indicating the average degree of polymerization is 3.4, and vh1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, 3-buten-1-ol was reacted with 3,4-dihydro-2H-pyran, and the hydroxyl group was protected with a tetrahydropyranyl group. The resulting product was then oxidized with metachloroperbenzoic acid to synthesize the compound represented by the following formula (13-12).

[0421] [ka]

[0422] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-12) (5.98 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 14.1 g of compound (CH1).

[0423] The obtained compound (CH1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40(2H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0424] [Example 64] A compound (CH2) represented by the above formula (CH2) (in formula (CH2), vh2 representing the average degree of polymerization is 5.4) was obtained by the method shown below. In Example 63, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2O(CF2CF2O) z The same procedure as in Example 63 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (wherein z, representing the average degree of polymerization, is 5.4) was used, and 14.9 g of compound (CH2) was obtained.

[0425] The resulting compound (CH2) 1 H-NMR and19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40(2H), 3.40-4.20(32H) 19 F-NMR(acetone-d6): δ[ppm]=-78.57(4F), -88.92~-89.57(21.6F)

[0426] [Example 65] The compound (CH3) represented by the above formula (CH3) (in formula (CH3), vh3 representing the average degree of polymerization is 3.1) was obtained by the method shown below. In Example 63, HOCHCFO(CFCFO) m (CF2O) n Instead of the fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, which indicates the average degree of polymerization, is 3.4, and n, which indicates the average degree of polymerization, is 3.4), HOCH2CF2CF2O(CF2CF2CF2O) x The same procedure as in Example 63 was carried out, except that 40.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CF2CH2OH (wherein x, representing the average degree of polymerization, is 3.1) was used, and 15.1 g of compound (CH3) was obtained.

[0427] The resulting compound (CH3) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40(2H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-84.22(12.4F), -86.40(4F), -124.30(4F), -130.08(6.2F)

[0428] [Example 66] Compound (CI1) represented by the above formula (CI1) (in formula (CI1), ui1 indicating the average degree of polymerization is 3.4, and vi1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, 4-penten-1-ol was reacted with 3,4-dihydro-2H-pyran, and the hydroxyl group was protected with a tetrahydropyranyl group. The resulting product was then oxidized with metachloroperbenzoic acid to synthesize the compound represented by the following formula (13-13).

[0429] [ka]

[0430] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-13) (6.01 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 14.3 g of compound (CI1).

[0431] The obtained compound (CI1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=1.40-1.60(4H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0432] [Example 67] Compound (CJ1) represented by the above formula (CJ1) (in formula (CJ1), uj1 indicating the average degree of polymerization is 3.4, and vj1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, 5-hexen-1-ol was reacted with 3,4-dihydro-2H-pyran, and the hydroxyl group was protected with a tetrahydropyranyl group. The resulting product was then oxidized with metachloroperbenzoic acid to synthesize the compound represented by the following formula (13-14).

[0433] [ka]

[0434] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-14) (6.11 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.3 g of compound (CJ1).

[0435] The obtained compound (CJ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40-1.60(6H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0436] [Example 68] A compound (CK1) represented by the above formula (CK1) (in formula (CK1), uk1 indicating the average degree of polymerization is 3.4, and vk1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, 6-hepten-1-ol was reacted with 3,4-dihydro-2H-pyran, and the hydroxyl group was protected with a tetrahydropyranyl group. The compound was then oxidized with metachloroperbenzoic acid to synthesize the compound represented by the following formula (13-15).

[0437] [ka]

[0438] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-15) (6.45 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.9 g of compound (CK1).

[0439] The obtained compound (CK1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40-1.60(8H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0440] [Example 69] Compound (CL1) represented by the above formula (CL1) (in formula (CL1), ul1 indicating the average degree of polymerization is 3.4, and vl1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-16) was synthesized by the following method: 1 equivalent of 3-allyloxy-1,2-propanediol was reacted with 2 equivalents of 3,4-dihydro-2H-pyran, the hydroxyl group was protected with a tetrahydropyranyl group, and then the resulting mixture was oxidized with metachloroperbenzoic acid to synthesize the compound represented by the following formula (13-16).

[0441] [ka]

[0442] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-16) (6.51 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.5 g of compound (CL1).

[0443] The obtained compound (CL1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(38H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0444] [Example 70] A compound (CM1) represented by the above formula (CM1) (in formula (CM1), um1 indicating the average degree of polymerization is 3.4, and vm1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-17) was synthesized by the following method. The compound represented by the above formula (13-12) was reacted with allyl alcohol, and then reacted with 3,4-dihydro-2H-pyran to protect the secondary hydroxyl group with a tetrahydropyranyl group. Then, the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-17).

[0445] [ka]

[0446] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-17) (7.21 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.3 g of compound (CM1).

[0447] The obtained compound (CM1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40(2H), 3.40-4.20(38H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0448] [Example 71] The compound (CN1) represented by the above formula (CN1) (in formula (CN1), un1 indicating the average degree of polymerization is 3.4, and vn1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-18) was synthesized by the following method. The compound represented by the above formula (13-13) was reacted with allyl alcohol, and then reacted with 3,4-dihydro-2H-pyran to protect the secondary hydroxyl group with a tetrahydropyranyl group. Then, the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-18).

[0449] [ka]

[0450] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-18) (7.26 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.5 g of compound (CN1).

[0451] The obtained compound (CN1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1H-NMR(acetone-d6):δ[ppm]=1.40-1.60(4H), 3.40-4.20(38H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0452] [Example 72] The compound (CO1) represented by the above formula (CO1) (in formula (CO1), uo1 indicating the average degree of polymerization is 3.4, and vo1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-19) was synthesized by the following method. The compound represented by the above formula (13-14) was reacted with allyl alcohol, and then reacted with 3,4-dihydro-2H-pyran to protect the secondary hydroxyl group with a tetrahydropyranyl group. Then, the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-19).

[0453] [ka]

[0454] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-19) (7.56 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 15.3 g of compound (CO1).

[0455] The obtained compound (CO1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=1.40-1.60(6H), 3.40-4.20(38H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0456] [Example 73] Compound (CP1) represented by the above formula (CP1) (in formula (CP1), up1 indicating the average degree of polymerization is 3.4, and vp1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-20) was synthesized by the following method: 3-buten-1-ol was reacted with 2-(2-bromoethoxy)tetrahydro-2H-pyran, and then oxidized with m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-20).

[0457] [ka]

[0458] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-20) (5.98 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 14.1 g of compound (CP1).

[0459] The obtained compound (CP1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=1.58-1.82(2H), 3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0460] [Example 74] Compound (CQ1) represented by the above formula (CQ1) (in formula (CQ1), uq1 indicating the average degree of polymerization is 3.4, and vq1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. First, the compound represented by the following formula (13-21) was synthesized by the following method. The compound represented by the above formula (13-1) was reacted with 3-buten-1-ol, and then reacted with 3,4-dihydro-2H-pyran to protect the secondary hydroxyl group with a tetrahydropyranyl group. Then, the double bond was oxidized using m-chloroperbenzoic acid to synthesize the compound represented by the following formula (13-21).

[0461] [ka]

[0462] The same procedure as in Example 1 was carried out, except that the compound represented by formula (13-21) (6.24 g) was used instead of the compound represented by formula (11-2) used in Example 1, to obtain 16.1 g of compound (CQ1).

[0463] The obtained compound (CQ1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=1.58-1.82(2H), 3.40-4.20(42H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0464] [Example 75] A compound (CR1) represented by the above formula (CR1) (in formula (CR1), ur1 indicating the average degree of polymerization is 3.4, and vr1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 50 was carried out, except that the compound represented by formula (11-4) used in Example 50 was replaced with the compound represented by formula (11-13) (6.80 g), to obtain 14.2 g of compound (CR1).

[0465] The obtained compound (CR1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(28H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0466] [Example 76] The compound (CS1) represented by the above formula (CS1) (in formula (CS1), us1 indicating the average degree of polymerization is 3.4, and vs1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 50 was carried out, except that the compound represented by formula (11-4) used in Example 50 was replaced with the compound represented by formula (11-14) (6.10 g), to give 14.8 g of compound (CS1).

[0467] The obtained compound (CS1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=2.10(1H), 3.40-4.20(29H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0468] [Example 77] The compound (CT1) represented by the above formula (CT1) (in formula (CT1), ut1 indicating the average degree of polymerization is 3.4, and vt1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 50 was carried out, except that the compound represented by formula (11-4) used in Example 50 was replaced with the compound represented by formula (11-20) (6.80 g), to give 16.1 g of compound (CT1).

[0469] The obtained compound (CT1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(36H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0470] [Example 78] Compound (DA1) represented by the above formula (DA1) (in formula (DA1), xa1 representing the average degree of polymerization is 3.4, and ya1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. In a 200 mL recovery flask, add HOCH2CF2O (CF2CF2O) m (CF2O) n 10.0 g of fluoropolyether (number average molecular weight 800, molecular weight distribution 1.1) represented by CF2CH2OH (where m, indicating the average degree of polymerization, is 3.4, and n, indicating the average degree of polymerization, is 3.4), 10.1 g of the compound represented by the above formula (11-4), and 20.0 mL of tertiary butyl alcohol (t-BuOH) were charged and stirred at room temperature until homogenous. 0.84 g of potassium tertiary butoxide (t-BuOK) was then added to the recovery flask, heated to 70°C, and stirred for 16 hours to react. Thereafter, the resulting reaction product was cooled to 25°C, and a 7% hydrogen chloride / methanol reagent (45.6 g) was added, followed by stirring at room temperature for 3 hours to carry out a deprotection reaction. The resulting reaction product was neutralized by adding 7% aqueous sodium bicarbonate (150 mL), and then ethyl acetate was added to extract the organic layer, which was then washed with water. Anhydrous sodium sulfate was added to the organic layer for dehydration, and the desiccant was filtered off. The filtrate was concentrated. The residue was purified by silica gel column chromatography to obtain 10.5 g of compound (DA1).

[0471] The obtained compound (DA1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(46H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0472] [Example 79] Compound (DB1) represented by the above formula (DB1) (in formula (DB1), xb1 representing the average degree of polymerization is 3.4, and yb1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 78 was carried out, except that the compound represented by formula (11-4) used in Example 78 was replaced with the compound represented by formula (11-13) (4.71 g), to obtain 8.65 g of compound (DB1).

[0473] The obtained compound (DB1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(30H) 19F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0474] [Example 80] A compound (DC1) represented by the above formula (DC1) (in formula (DC1), xc1 representing the average degree of polymerization is 3.4, and yc1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 78 was carried out, except that the compound represented by formula (11-4) used in Example 78 was replaced with the compound represented by formula (11-14) (5.06 g), to obtain 8.77 g of compound (DC1).

[0475] The obtained compound (DC1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=2.10(2H), 3.40-4.20(32H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0476] [Example 81] Compound (DD1) represented by the above formula (DD1) (in formula (DD1), xd1 representing the average degree of polymerization is 3.4, and yd1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 78 was carried out, except that the compound represented by formula (11-4) used in Example 78 was replaced with the compound represented by formula (11-20) (10.2 g), to obtain 10.4 g of compound (DD1).

[0477] The obtained compound (DD1) 1 H-NMR and 19F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(46H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0478] [Example 82] Compound (DE1) represented by the above formula (DE1) (in formula (DE1), xe1 indicating the average degree of polymerization is 3.4, and ye1 indicating the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-2) used in Example 1 was replaced with the compound represented by formula (11-13) (7.28 g), to obtain 15.0 g of compound (DE1).

[0479] The obtained compound (DE1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR(acetone-d6):δ[ppm]=3.40-4.20(38H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0480] [Example 83] A compound (DF1) represented by the above formula (DF1) (in formula (DF1), xf1 representing the average degree of polymerization is 3.4, and yf1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 1 was carried out, except that the compound represented by formula (11-2) used in Example 1 was replaced with the compound represented by formula (11-14) (8.54 g), to obtain 15.4 g of compound (DF1).

[0481] The obtained compound (DF1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=2.10(2H), 3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0482] [Example 84] Compound (DG1) represented by the above formula (DG1) (in formula (DG1), xg1 representing the average degree of polymerization is 3.4, and yg1 representing the average degree of polymerization is 3.4) was obtained by the method shown below. The same procedure as in Example 16 was carried out, except that the compound represented by the above formula (11-14) (8.54 g) was used instead of the compound represented by formula (11-2) used in Example 16, to obtain 15.0 g of compound (DG1).

[0483] The obtained compound (DG1) 1 H-NMR and 19 F-NMR measurements were carried out and the structure was identified based on the following results. 1 H-NMR (acetone-d6): δ[ppm]=2.10(2H), 3.40-4.20(39H) 19 F-NMR (acetone-d6): δ[ppm]=-51.99~-55.72(6.8F), -78.48(2F), -80.66(2F), -89.16~-91.14(13.6F)

[0484] [Comparative Example 1] A compound (XA1) represented by the following formula (XA1) was synthesized by the method described in Patent Document 5. Comparative Example 2 A compound (XB1) represented by the following formula (XB1) was synthesized by the method described in Patent Document 4. Comparative Example 3 A compound (XC1) represented by the following formula (XC1) was synthesized by the method described in Patent Document 7. Comparative Example 4 A compound (XD1) represented by the following formula (XD1) was synthesized by the method described in Patent Document 7. Comparative Example 5 A compound (XE1) represented by the following formula (XE1) was synthesized by the method described in Patent Document 1. Comparative Example 6 A compound (XF1) represented by the following formula (XF1) was synthesized by the method described in Patent Document 8. Comparative Example 7 A compound (XG1) represented by the following formula (XG1) was synthesized by the method described in Patent Document 8.

[0485] [ka]

[0486] [ka]

[0487] [ka]

[0488] [ka]

[0489] [ka]

[0490] [ka] (In formula (XA1), maa, which indicates the average degree of polymerization, is 3.4, and naa, which indicates the average degree of polymerization, is 3.4.) (In formula (XB1), mbb, which indicates the average degree of polymerization, is 3.4, and nbb, which indicates the average degree of polymerization, is 3.4.) (In formula (XC1), mcc, which indicates the average degree of polymerization, is 3.4, and ncc, which indicates the average degree of polymerization, is 3.4.) (In formula (XD1), mdd, which indicates the average degree of polymerization, is 3.4, and ndd, which indicates the average degree of polymerization, is 3.4.) (In formula (XE1), mee, which indicates the average degree of polymerization, is 3.4, and nee, which indicates the average degree of polymerization, is 3.4.) (In formula (XF1), mff, which indicates the average degree of polymerization, is 3.4, and nff, which indicates the average degree of polymerization, is 3.4.) (In formula (XG1), mgg, which indicates the average degree of polymerization, is 3.4, and ngg, which indicates the average degree of polymerization, is 3.4.)

[0491] Next, solutions for forming lubricating layers were prepared by the method described below using the compounds obtained in Examples 1 to 84 and Comparative Examples 1 to 7. Then, using the obtained solutions for forming lubricating layers, lubricating layers for magnetic recording media were formed by the method described below, thereby obtaining the magnetic recording media of Examples 1 to 84 and Comparative Examples 1 to 7.

[0492] [Solution for forming lubricating layer] The compounds obtained in Examples 1 to 84 and Comparative Examples 1 to 7 were each dissolved in a fluorine-based solvent, Vertrel (registered trademark) XF (trade name, manufactured by Mitsui DuPont Fluorochemicals Co., Ltd.), and diluted with Vertrel XF so that the film thickness when applied to the protective layer would be 8.5 Å to 10 Å, thereby preparing a solution for forming a lubricating layer having a compound concentration of 0.001% by mass to 0.01% by mass.

[0493] [Magnetic recording media] An adhesive layer, a soft magnetic layer, a first underlayer, a second underlayer, a magnetic layer, and a protective layer were sequentially formed on a substrate having a diameter of 65 mm. The protective layer was made of nitrogenated carbon. On the protective layer of the substrate on which each layer up to the protective layer had been formed, the lubricating layer-forming solutions of Examples 1 to 84 and Comparative Examples 1 to 7 were applied by dipping.

[0494] Thereafter, the magnetic recording medium coated with the lubricating layer-forming solution was placed in a thermostatic chamber at 120°C and subjected to a heat treatment for 10 minutes, thereby forming a lubricating layer on the protective layer, and the magnetic recording media of Examples 1 to 84 and Comparative Examples 1 to 7 were obtained. The magnetic recording media thus obtained in Examples 1 to 84 and Comparative Examples 1 to 7 were evaluated by the following methods: lubricating layer thickness measurement, lubricating layer / protective layer adhesion (bond ratio) measurement, pickup characteristics test, and spin-off characteristics test. The results are shown in Tables 1 to 5.

[0495] [Lubricant layer thickness measurement] The peak height of the C-F vibrational stretching of the lubricating layer was measured using a Fourier transform infrared spectrophotometer (FT-IR, product name: Nicolet iS50, manufactured by Thermo Fisher Scientific). Next, using a correlation equation obtained by the method described below, the film thickness of the lubricating layer was calculated from the measured value of the peak height of the C-F vibrational stretching of the lubricating layer.

[0496] [Calculation method of correlation equation] A disk was prepared with an adhesive layer, a soft magnetic layer, a first underlayer, a second underlayer, a magnetic layer, and a protective layer formed in that order on a 65 mm diameter substrate. A lubricating layer was formed on the protective layer of this disk with a thickness of 6 to 20 Å (in 2 Å increments).

[0497] The thickness of the lubricating layer was measured using an ellipsometer to measure the increase in thickness from the surface of the disk without the lubricating layer, and the peak height of the CF vibrational stretching was measured using FT-IR for each disk with the lubricating layer. Then, a correlation equation was determined between the peak height obtained by FT-IR and the film thickness of the lubricating layer obtained using an ellipsometer.

[0498] [Measurement of adhesion (bond ratio) between lubricating layer and protective layer] For the magnetic recording medium on which the lubricating layer was formed, the thickness of the lubricating layer was measured using the method described above, and then the recording medium was immersed in a solvent, Vertrel XF, for 10 minutes and then removed for cleaning. The magnetic recording medium was immersed in the solvent at a speed of 10 mm / sec and removed at a speed of 1.2 mm / sec. The thickness of the lubricating layer after immersion in the solvent was then measured using the same method as that used to measure the thickness of the lubricating layer before cleaning.

[0499] The thickness of the lubricating layer before cleaning was defined as α, and the thickness of the lubricating layer after cleaning (solvent immersion) was defined as β. The bonding ratio of the lubricant was calculated from the ratio of α to β ((β / α) × 100(%)). Using the calculated bonding ratio, the adhesion between the lubricating layer and the protective layer was evaluated according to the following criteria.

[0500] The bond ratio can be used as an index of the bonding strength between the lubricating layer and the protective layer. If the adhesion between the lubricating layer and the protective layer is poor, some of the fluorine-containing ether compounds contained in the lubricating layer will dissolve into the Vertrel XF and be washed away. This reduces the thickness of the lubricating layer after cleaning and reduces the bond ratio.

[0501] "Adhesion (bond rate) evaluation criteria" ◎ (Excellent): Bond rate 75% or more Good: Bond rate 70% to 74% △(Acceptable): Bond rate 50%~69% × (Not acceptable): Bond rate 49% or less

[0502] [Pickup characteristic test] The magnetic recording medium and magnetic head were mounted on a spin stand and rotated under reduced pressure (approximately 250 torr) at room temperature, allowing the magnetic head to float at a fixed point for 10 minutes. The surface of the magnetic head facing the magnetic recording medium was then analyzed using an ESCA (Electron Spectroscopy for Chemical Analysis) analyzer. The intensity of the fluorine-derived peak (signal intensity (au)) obtained by the analysis using the ESCA analyzer indicates the amount of lubricant attached to the magnetic head. The obtained signal intensity was used to evaluate the pickup characteristics according to the following evaluation criteria.

[0503] "Evaluation criteria for pickup characteristics" ◎ (Excellent): Signal strength 160 or less (very little adhesion) Good: Signal strength 161-300 (low adhesion amount) △ (Acceptable): Signal strength 301-1000 (high adhesion amount) × (Not acceptable): Signal strength 1001 or higher (very high adhesion)

[0504] [Spin-off characteristic test] The magnetic recording medium was mounted on a spin stand and rotated at 10,000 rpm for 72 hours at 80°C. Before and after this operation, the thickness of the lubricating layer was measured using FT-IR at a position 20 mm radius from the center of the magnetic recording medium, and the reduction rate of the lubricating layer thickness before and after the test was calculated. The calculated reduction rate of the film thickness was used to evaluate the spin-off characteristics according to the following evaluation criteria.

[0505] "Evaluation criteria for spin-off characteristics" ◎(Excellent): Film thickness reduction rate 2% or less Good: Film thickness reduction rate over 2% and 3% or less △(Acceptable): Film thickness reduction rate more than 3%, less than 8% ×(Not allowed): Film thickness reduction rate exceeding 8%

[0506] From these results, a comprehensive evaluation was made according to the following evaluation criteria. "comprehensive evaluation" ◎ (Excellent): Bond rate, pick-up characteristics, and spin-off characteristics are all rated as ◎. ◯ (Good): Bond rate, pick-up characteristics, and spin-off characteristics are rated as ⊚ or ◯, with at least one of them being ◯. △ (Acceptable): One or more of the evaluations of bond rate, pick-up characteristics, and spin-off characteristics is △, and there is no ×. × (unacceptable): One or more of the evaluations of bond rate, pick-up characteristics, and spin-off characteristics is ×.

[0507] [Table 1]

[0508] [Table 2]

[0509] [Table 3]

[0510] [Table 4]

[0511] [Table 5]

[0512] As shown in Tables 1 to 5, the magnetic recording media of Examples 1 to 84, in which a lubricating layer was formed using a fluorine-containing ether compound represented by formula (1), were evaluated as ◎ (excellent) or 〇 (good) for bond ratio, pickup characteristics, and spin-off characteristics, and the overall evaluation was ◎ (excellent) or 〇 (good). In contrast, -[C]-[D]-R in the fluorine-containing ether compound represented by formula (1) 3The magnetic recording media of Comparative Examples 1 to 7, which had no structure, were inferior in all evaluations of bond ratio, pickup characteristics, and spin-off characteristics compared to the magnetic recording media of Examples 1 to 84. In the compound (XF1) of Comparative Example 6, terminal groups having two primary hydroxyl groups are arranged at both ends of the molecule, but the compound does not contain divalent linking groups corresponding to the -[B]-[A]- structure and the -[C]-[D]- structure in the fluorine-containing ether compound represented by formula (1). Therefore, it is presumed that the compound (XF1) of Comparative Example 6 has inferior adsorptivity to the protective layer compared to the compounds of Examples 1 to 84. Similarly, compound (XG1) of Comparative Example 7 has terminal groups having two primary hydroxyl groups at both ends of the molecule, but does not contain divalent linking groups corresponding to the -[B]-[A]- structure and the -[C]-[D]- structure, and is therefore presumed to have inferior adsorption power to the protective layer compared to the compounds of Examples 1 to 84. [Industrial Applicability]

[0513] The present invention provides a fluorine-containing ether compound that has good adhesion to a protective layer, can form a lubricating layer that can suppress pick-up and spin-off, and can be suitably used as a material for a lubricant for a magnetic recording medium. [Explanation of symbols]

[0514] 10...magnetic recording medium, 11...substrate, 12...adhesion layer, 13...soft magnetic layer, 14...first underlayer, 15...second underlayer, 16...magnetic layer, 17...protective layer, 18...lubricating layer.

Claims

1. A fluorine-containing ether compound represented by the following formula (1): R 1 -[B]-[A]-CH 2 -R 2 -CH 2 -[C]-[D]-R 3 (1) (In formula (1), R 2 is a perfluoropolyether chain represented by any one of the following formulas (8-1) to (8-4); [A] is represented by the following formula (2-1), in which a is an integer of 0 to 3; [B] is represented by the following formula (2-2), in which b is an integer of 0 to 3 and c is an integer of 2 to 5; provided that the sum of the values ​​of a and b is 1 to 3; in formula (1), [A] and [B] may be interchanged; [C] is represented by the following formula (3-1), in which d is an integer of 0 to 2; [D] is represented by the following formula (3-2), in which e is an integer of 0 to 2 and f is an integer of 2 to 5; provided that the sum of the values ​​of d and e is 1 or 2; in formula (1), [C] and [D] may be interchanged; R 3 is a branched terminal group having 3 to 30 carbon atoms and is represented by the following formula (4); L in formula (4) represents an integer of 0 to 6; Y in formula (4) 1 and Y 2 are each independently a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom; Y in formula (4) 3 is a hydrocarbon group containing one primary hydroxyl group and optionally containing an ether oxygen atom, or a hydrogen atom; R 1 is R 3 and is a branched terminal group having 3 to 30 carbon atoms, which is a terminal group represented by the above formula (4) or a terminal group represented by the following formula (7): 【Chemistry 1】 【change】 (In formula (7), u represents an integer of 2 to 6, v represents 0 or 1; R 4 represents a hydrogen atom, an alkyl group which may have a substituent not containing a hydroxyl group, or an organic group which has at least one double bond or triple bond; however, the alkyl group and the organic group may be linear or branched.) -CF 2 O- (CF 2 CF 2 O) m - (CF 2 O) n -CF 2 - (8-1) (In formula (8-1), m and n each represent an average degree of polymerization, and each represents 0 to 30; provided that m or n is 2 or more.) -CF(CF 3 )-(OCF(CF 3 )CF 2 ) w -OCF(CF 3 )- (8-2) (In formula (8-2), w represents the average degree of polymerization and is 2 to 30.) -CF 2 CF 2 O- (CF 2 CF 2 CF 2 O) x -CF 2 CF 2 - (8-3) (In formula (8-3), x represents the average degree of polymerization and is 2 to 30.) -CF 2 CF 2 CF 2 O- (CF 2 CF 2 CF 2 CF 2 O) y -CF 2 CF 2 CF 2 - (8-4) (In formula (8-4), y represents the average degree of polymerization and is 2 to 30.)

2. R in the formula (1) 3 is a branched terminal group represented by any one of the following formulae (5-1) to (5-3): 【Chemistry 2】 (In formula (5-1), g represents an integer of 1 to 6; X 1 and X 2 is represented by formula (6); X 1 and X 2 may be the same or different.) (In formula (5-2), h represents an integer of 0 to 6; i and j each independently represent an integer of 1 to 6; X 3 and X 4 is a hydrogen atom or a group represented by formula (6); X 3 and X 4 may be the same or different.) (In formula (5-3), k represents an integer of 0 to 6; p, q, and r each independently represent an integer of 1 to 6; X 5 , X 6 and X 7 is a hydrogen atom or a group represented by formula (6); X 5 , X 6 and X 7 may be different from each other, or some or all of them may be the same.) (In formula (6), s represents an integer of 2 to 6, and t represents 1 or 2.)

3. R in the formula (1) 1 is a branched terminal group having 3 to 30 carbon atoms, and is represented by formula (4):

4. R in the formula (1) 1 and R 3 and both of the above are branched terminal groups represented by any one of the formulae (5-1) to (5-3).

5. R in the formula (1) 1 -[B]-[A]- and -[C]-[D]-R 3 The fluorine-containing ether compound according to any one of claims 1 to 4, wherein

6. R in the formula (1) 1 3. The fluorine-containing ether compound according to claim 1 or 2, wherein: 【Transformation 3】 (In formula (7), u represents an integer of 2 to 6, v represents 0 or 1; R 4 is any one of a hydrogen atom, an alkyl group which may have a substituent not containing a hydroxyl group, and an organic group which has at least one double bond or triple bond; provided that the alkyl group and the organic group may be linear or branched.

7. R in the formula (7) 4 The fluorine-containing ether compound according to claim 6, wherein is an alkyl group having 1 to 6 carbon atoms.

8. R in the formula (7) 4 7. The fluorine-containing ether compound according to claim 6, wherein: is a substituted alkyl group having 1 to 6 carbon atoms, and the substituent is a fluoro group or a cyano group.

9. R in the formula (7) 4 is any one of an organic group having 6 to 12 carbon atoms and having an aromatic hydrocarbon, an organic group having 3 to 10 carbon atoms and having an aromatic heterocycle, an alkenyl group having 2 to 8 carbon atoms, and an alkynyl group having 3 to 8 carbon atoms.

10. R in the formula (7) 4 is one group selected from the group consisting of a methyl group, an ethyl group, an n-propyl group, an isopropyl group, a 2,2,2-trifluoroethyl group, a 2,2,3,3,3-pentafluoropropyl group, a 2,2,2,2,2,2-hexafluoroisopropyl group, a 2-cyanoethyl group, a 3-cyanopropyl group, a 4-cyanobutyl group, a phenyl group, a methoxyphenyl group, a cyanophenyl group, a phenethyl group, a thienylethyl group, an N-methylpyrazolylmethyl group, an allyl group, a 3-butenyl group, a 4-pentenyl group, a propargyl group, a 3-butynyl group, and a 4-pentynyl group.

11. R in the formula (7) 4 The fluorine-containing ether compound according to claim 6, wherein is a hydrogen atom.

12. The fluorine-containing ether compound according to any one of claims 1 to 11, which has a number average molecular weight in the range of 500 to 10,000.

13. A lubricant for magnetic recording media, comprising the fluorine-containing ether compound according to any one of claims 1 to 12.

14. A magnetic recording medium having at least a magnetic layer, a protective layer, and a lubricating layer sequentially provided on a substrate, A magnetic recording medium, wherein the lubricating layer contains the fluorine-containing ether compound according to any one of claims 1 to 12.

15. 15. The magnetic recording medium according to claim 14, wherein the average thickness of the lubricating layer is 0.5 nm to 2.0 nm.

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