Dihydroxybiphenyl compound, bisphosphite compound, catalyst, catalyst composition, method for producing aldehyde, and method for producing alcohol

A novel dihydroxybiphenyl compound with bulky substituents and an asymmetric structure addresses the selectivity issue in hydroformylation reactions, producing catalysts that enhance linear aldehyde isomer selectivity and activity.

JP7761142B2Active Publication Date: 2025-10-28MITSUBISHI CHEM CORP
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Patent Information

Application Number
JP2024522144
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2024-02-02
Filing Date
2024-04-10
Publication Date
2025-10-28
Estimated Expiration
2044-04-10

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Patent Text Reader

Abstract

Disclosed is a dihydroxybiphenyl compound which is represented by general formula (1). (In the formula, X represents an alkylene group having 4 to 20 carbon atoms. R1, R11, R3 and R13 each represent a tertiary alkyl group having 4 to 7 carbon atoms, or the like, and preferably represent a t-butyl group. R2 and R12 each represent a hydrogen atom or the like. R4 and R14 each represent an alkyl group having 1 to 3 carbon atoms, or the like, and preferably represent a methyl group. R1 and X-R11 are different from each other.)
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Description

[Technical Field]

[0001] The present invention relates to a novel dihydroxybiphenyl compound and a novel bisphosphite compound which is a derivative thereof. Furthermore, the present invention relates to catalysts and catalyst compositions containing said bisphosphite compounds. Furthermore, the present invention relates to a method for producing an aldehyde and a method for producing an alcohol using the bisphosphite compound or the catalyst. [Background technology]

[0002] The process of producing aldehydes or their hydrogenated alcohols by reacting olefinic compounds with synthesis gas (a mixture of carbon monoxide and hydrogen) in the presence of a catalyst is known as the hydroformylation process (reaction). The catalyst used for the hydroformylation reaction is usually a soluble complex of a long-form Group 8 metal of the periodic table with an organophosphorus compound as a ligand.

[0003] In general, the ligand used together with the metal component of the catalyst has a significant effect on the catalytic reaction. It is widely known that the activity and selectivity of the hydroformylation reaction also vary greatly depending on the ligand. To carry out the hydroformylation reaction industrially and advantageously, it is important to improve the selectivity for linear aldehyde isomers while maintaining good reaction activity, and therefore, the design of ligands for this purpose has been actively pursued.

[0004] Various phosphite compounds are known as a group of phosphorus compounds used as ligands in hydroformylation reactions. In addition to simple monophosphites such as trialkyl phosphites and triaryl phosphites, polyphosphites containing multiple coordinating phosphorus atoms in the molecule have also been proposed.

[0005] In recent years, bisphosphite compounds have been reported as polyphosphite compounds having multiple coordinating phosphorus atoms in the molecule, which are produced from dihydroxybiphenyl compounds having bulky substituents in the ring structure and an asymmetric structure (Patent Document 1). Such bisphosphite compounds are known to provide extremely excellent selectivity for linear aldehyde isomers in hydroformylation reactions.

[0006] In light of this background technology, if a novel dihydroxybiphenyl compound having a bulky substituent in the ring structure and an asymmetric structure can be obtained, a catalyst using a bisphosphite compound derived from the dihydroxybiphenyl compound as a raw material and a metal component as a ligand is expected to provide extremely excellent selectivity for linear aldehyde isomers in a hydroformylation reaction. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] International Publication No. 2019 / 039565 Summary of the Invention [Problem to be solved by the invention]

[0008] The present invention has been made in view of the above-mentioned problems of the prior art, and an object of the present invention is to provide a novel dihydroxybiphenyl compound which has a bulky substituent in a ring structure, has an asymmetric structure, and can be used as a raw material for a bisphosphite compound which can provide excellent linear aldehyde isomer selectivity in the hydroformylation reaction of an olefin compound.

[0009] Another object of the present invention is to provide a novel bisphosphite compound which is prepared from the above-mentioned novel bisphosphite compound as a starting material and which gives extremely excellent selectivity for linear aldehyde isomers in the hydroformylation reaction of an olefin compound. A further object of the present invention is to provide a catalyst and a catalyst composition containing the bisphosphite compound. A further object of the present invention is to provide a method for producing an aldehyde, which comprises reacting an olefin compound with carbon monoxide and hydrogen using the bisphosphite compound or the catalyst to obtain an aldehyde. A further object of the present invention is to provide a method for producing an alcohol, which comprises using the aldehyde obtained by the method for producing an aldehyde. [Means for solving the problem]

[0010] The present inventors have conducted extensive research to solve the above problems, and as a result have succeeded in synthesizing a novel dihydroxybiphenyl compound, thereby completing the present invention.

[0011] [1] A dihydroxybiphenyl compound represented by the following general formula (1):

[0012] [ka]

[0013] (In formula (1), X is an alkylene group having 4 to 20 carbon atoms; R 1 and R 11 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, and a cycloalkyl group having 3 to 20 carbon atoms; R 1 and XR 11 are different from each other. R 2 and R 12each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, an alkylaryloxy group having 7 to 20 carbon atoms, an arylalkyl group having 7 to 20 carbon atoms, an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom; R 3 and R 13 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, and an arylalkyl group having 7 to 20 carbon atoms; R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom.

[0014] [2] The dihydroxybiphenyl compound according to [1], wherein in the general formula (1), X is an alkylene group having 4 to 20 carbon atoms including a quaternary carbon atom.

[0015] [3] The dihydroxybiphenyl compound according to [2], wherein X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom.

[0016] [4] The dihydroxybiphenyl compound according to [3], wherein X is an alkylene group having a structural unit represented by the following formula (1X): -C(CH3)2-CH2- (1X)

[0017] [5] R 1 and R 11 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; R 2 and R 12 is a hydrogen atom, R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom.

[0018] [6] R 1 , R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms; R 4 and R 14 are each independently an alkyl group having 1 to 3 carbon atoms.

[0019] [7] R 1 , R 11 , R 3 and R 13 is a t-butyl group, and said R 4 and R 14 The dihydroxybiphenyl compound according to [6], wherein

[0020] [8] A bisphosphite compound represented by the following general formula (2):

[0021] [ka]

[0022] (In formula (2), X is an alkylene group having 4 to 20 carbon atoms; R 1 and R 11 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, and a cycloalkyl group having 3 to 20 carbon atoms; R 1 and XR 11 are different from each other. R 2 and R 12 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, an alkylaryloxy group having 7 to 20 carbon atoms, an arylalkyl group having 7 to 20 carbon atoms, an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom; R 3 and R 13 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, and an arylalkyl group having 7 to 20 carbon atoms; R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom. Z 1 ~Z 4each independently represents an aryl group having 6 to 20 carbon atoms, and may have a substituent, and the substituents may be bonded to each other to form a ring. 1 and Z 2 , and Z 3 and Z 4 may not be bonded to each other, or may be bonded to each other to form a ring structure.

[0023] [9] The bisphosphite compound according to [8], wherein X is an alkylene group having 4 to 20 carbon atoms including a quaternary carbon atom.

[0024]

[10] The bisphosphite compound according to [9], wherein X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom.

[0025]

[11] The bisphosphite compound according to

[10] , wherein X is an alkylene group having a structural unit represented by the following formula (1X): -C(CH3)2-CH2- (1X)

[0026]

[12] R 1 and R 11 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; R 2 and R 12 is a hydrogen atom, and the R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom.

[0027]

[13] Said Z 1 ~Z 4wherein each independently has no substituent on an aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom, or has a substituent having 0 to 2 carbon atoms on the aromatic ring carbon atom.

[0028]

[14] R 1 , R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms; R 4 and R 14 are each independently an alkyl group having 1 to 3 carbon atoms.

[0029]

[15] Said Z 1 ~Z 4 are each independently a 1-naphthyl group or a 2-naphthyl group.

[0030]

[16] R 1 , R 11 , R 3 and R 13 is a t-butyl group, and the R 4 and R 14

[14] or

[15] , wherein is a methyl group.

[0031]

[17] A catalyst comprising a complex of the bisphosphite compound according to any one of [8] to

[16] and a metal of Groups 8 to 10.

[0032]

[18] The catalyst according to

[17] , wherein the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is 0.00004 to 500.

[0033]

[19] The catalyst according to

[18] , wherein the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is 0.0002 to 100.

[0034]

[20] The catalyst according to

[19] , wherein the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is 0.001 to 50.

[0035]

[21] A catalyst composition comprising a bisphosphite compound represented by the following general formula (3) and the bisphosphite compound according to any one of [8] to

[16] :

[0036] [ka]

[0037] (In formula (3), R 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 are R in the general formula (2), respectively. 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 is equivalent to

[0038]

[22] The catalyst composition according to

[21] , wherein the content of the bisphosphite compound represented by the general formula (3) is 80.0 mass% or more, and the content of the bisphosphite compound according to any one of [8] to

[16] is 0.01 mass% or more.

[0039]

[23] A method for producing an aldehyde, comprising reacting an olefin compound with carbon monoxide and hydrogen in the presence of a Group 8 to 10 metal compound and the bisphosphite compound according to any one of [8] to

[16] .

[0040]

[24] The method for producing an aldehyde according to

[23] , wherein the concentration of the Group 8 to 10 metal compound in the reaction solution is 0.05 to 5000 mg / L in terms of metal atom.

[0041]

[25] A method for producing an alcohol, comprising producing an aldehyde by the method for producing an aldehyde according to

[23] or

[24] , and then reacting the aldehyde with hydrogen.

[0042]

[26] A method for producing an aldehyde, comprising reacting an olefin compound with carbon monoxide and hydrogen in the presence of the catalyst according to any one of

[17] to

[20] .

[0043]

[27] A method for producing an alcohol, comprising producing an aldehyde by the method for producing an aldehyde according to

[26] above, and then reacting the aldehyde with hydrogen. [Effects of the Invention]

[0044] According to the present invention, it is possible to provide a novel dihydroxybiphenyl compound which has a bulky substituent in the ring structure, has an asymmetric structure, and can be used as a bisphosphite compound which can provide extremely excellent selectivity for a linear aldehyde isomer in the hydroformylation reaction of an olefin compound.

[0045] The catalyst and catalyst composition using the bisphosphite compound of the present invention, which is produced from the dihydroxybiphenyl compound of the present invention as a raw material, as a ligand together with a metal component can obtain extremely excellent selectivity for linear aldehyde isomers in the hydroformylation reaction of olefin compounds while maintaining good reaction activity. Therefore, according to the present invention, it is possible to provide a bisphosphite compound which can provide extremely excellent selectivity for a straight-chain aldehyde isomer in the hydroformylation reaction of an olefin compound.

[0046] Furthermore, according to the present invention, there can be provided a method for producing an aldehyde, which comprises reacting an olefin compound with carbon monoxide and hydrogen using the bisphosphite compound or the catalyst to obtain an aldehyde with excellent selectivity for a linear aldehyde isomer. Furthermore, according to the present invention, there can be provided a method for producing an alcohol, in which an aldehyde obtained by the method for producing an aldehyde is used to produce an alcohol. [Brief explanation of the drawings]

[0047] [Figure 1] Figure 1(a) is the 1H-NMR spectrum of Compound A prepared in Experimental Example 1. Figure 1(b) is the 13C-NMR spectrum of Compound A. [Figure 2] 2(a) is the 1H-NMR spectrum of Compound B prepared in Experimental Example 2. FIG. 2(b) is the 13C-NMR spectrum of Compound B. DETAILED DESCRIPTION OF THE INVENTION

[0048] The present invention will be described in detail below with reference to the preferred embodiments. The present invention is not limited to the following description, and can be modified in any manner without departing from the spirit and scope of the present invention.

[0049] In this specification, unless otherwise specified, a numerical range expressed using "to" means a range that includes the numerical values ​​written before and after "to" as the lower and upper limits. "A to B" means A or more and B or less.

[0050] In this specification, unless otherwise specified, "including A or B" means "including A," "including B," or "including A and B."

[0051] In this specification, "GC area %" refers to the composition ratio of each component measured using a gas chromatogram (GC) measurement device and a gas chromatography total area method, and is calculated as the area content ratio (unit: GC area %) of each peak component when the total area of ​​the GC peaks of all products on the gas chromatogram is taken as 100%. Details of the GC measurement conditions will be explained in the experimental examples below. In this specification, "LC area %" refers to the composition ratio of each component measured using a liquid chromatogram (LC) measurement device and a liquid chromatography (LC) total area method, and is calculated as the area content ratio (unit: LC area %) of each peak component when the total area of ​​the LC peaks of all products on the liquid chromatogram is taken as 100%. Details of the LC measurement conditions will be explained in the experimental examples below.

[0052] In this specification, "mass %" indicates the content ratio of a specific component contained in a total amount of 100 mass %. Furthermore, "mass %" and "weight %" have the same meaning. As used herein, "optional" or "optionally" means that the subsequently described situation may or may not occur, and therefore the description includes both the occurrence and non-occurrence of the situation.

[0053] As used herein, the term "about" can mean a value above or below 20% of the stated value. For example, a temperature of about 75°C relative to 0°C includes a range of 60°C to 90°C. All steps described herein can be performed in any suitable order unless otherwise stated herein or clearly contradicted by context.

[0054] The following describes in detail the embodiments of the present invention. The following description of the components is an example of an embodiment of the present invention, and the present invention is not limited to these.

[0055] Hereinafter, the phrase "a catalyst using a bisphosphite compound derived from the dihydroxybiphenyl compound of the present invention as a starting material, as a ligand, together with a metal component, exhibits excellent linear aldehyde isomer selectivity in a hydroformylation reaction" may be simply abbreviated as "excellent aldehyde isomer selectivity."

[0056] [Dihydroxybiphenyl compounds] The dihydroxybiphenyl compounds of the present invention are novel dihydroxybiphenyl compounds each represented by the following general formula (1).

[0057] [ka]

[0058] (In formula (1), X is an alkylene group having 4 to 20 carbon atoms; R 1 and R 11 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, and a cycloalkyl group having 3 to 20 carbon atoms; R 1 and XR 11 are different from each other. R 2 and R 12 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, an alkylaryloxy group having 7 to 20 carbon atoms, an arylalkyl group having 7 to 20 carbon atoms, an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom; R 3 and R 13each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, and an arylalkyl group having 7 to 20 carbon atoms; R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom.

[0059] <Structural features> As shown in the above general formula (1), the dihydroxybiphenyl compound of the present invention has a biphenyl skeleton in the molecule, and has -R 1 and -XR 11 The different substituents, -XR, give the compound an asymmetric structure. 11 is a bulky substituent. The dihydroxybiphenyl compound of the present invention has such structural features and therefore can provide the following effects. (1) Asymmetric structure and bulky substituent (-XR 11 ) provides a stabilizing effect against hydrolysis to the bisphosphite compound of the present invention, which is synthesized using the dihydroxybiphenyl compound as a precursor and will be described later. (2) This asymmetric structure and bulky substituent (-XR 11 ) provides a stabilizing effect against hydrolysis even in the catalyst using the bisphosphite compound, and also serves to prevent the bulky substituent (-XR 11 ) controls the orientation of the olefinic compound when it coordinates to the metal, resulting in excellent linear aldehyde isomer selectivity.

[0060] <x> In the general formula (1), X is an alkylene group having 4 to 20 carbon atoms. X is preferably an alkylene group having 4 to 20 carbon atoms including a quaternary carbon atom. In the present invention, a quaternary carbon atom means a carbon atom in which all of the bonds of the carbon atom are bonded to other carbon atoms.

[0061] X is not particularly limited, and examples thereof include alkylene groups represented by the following general formula (11). (Benz)-(CH2) d -C(C a H 2a+1 )(C b H 2b+1 )-(CH2) c -(R 11 ) (11) In formula (11), a, b, c, and d are integers that satisfy the following conditions: 1≦a, 1≦b, 1≦c, 0≦d, 3≦a+b+c+d≦19. 11 is R in the formula (1). 11 Benz is the benzene ring in the formula (1) to which X is bonded. In the above formula (11), it is preferable that a=1 and b=1, and it is particularly preferable that X is an alkylene group having a structural unit represented by the following formula (1X), from the viewpoint of obtaining excellent aldehyde isomer selectivity. -C(CH3)2-CH2- (1X)

[0062] Furthermore, from the viewpoint of achieving better aldehyde isomer selectivity, X is preferably an alkylene group having 4 to 20 carbon atoms including a quaternary carbon atom, more preferably an alkylene group having 4 to 10 carbon atoms including a quaternary carbon atom, still more preferably an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom, and particularly preferably an alkylene group represented by the following general formula (12), i.e., a 1,1-dimethylethylene group. (Benz)-C(CH3)2-CH2-(R 11 ) (12) In formula (12), R 11 is R in the formula (1). 11 Benz is the benzene ring in the formula (1) to which X is bonded.

[0063] <R 1 and R 11 > R 1 and R 11 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, and a cycloalkyl group having 3 to 20 carbon atoms.

[0064] Examples of alkyl groups having 1 to 20 carbon atoms include straight-chain or branched-chain alkyl groups such as methyl, ethyl, n-propyl, i-propyl, s-butyl, t-butyl, isopentyl, neopentyl, t-pentyl, t-hexyl, and 1,1,2-trimethylpropyl. Among these, alkyl groups having 3 to 20 carbon atoms are preferred, those having 4 to 20 carbon atoms are more preferred, and those having 4 to 10 carbon atoms are particularly preferred. Furthermore, when X(R 11 ) or benzene ring (R 1 In the case of (a), the carbon atom bonded to the alkyl group is preferably a tertiary group, and examples of such alkyl groups include a t-butyl group, a t-pentyl group, and a t-hexyl group.

[0065] Furthermore, examples of cycloalkyl groups having 3 to 20 carbon atoms include a cyclohexyl group, a cyclooctyl group, an adamantyl group, etc. Among these, cycloalkyl groups having 6 to 14 carbon atoms are preferred, and cycloalkyl groups having 6 to 10 carbon atoms are more preferred.

[0066] R 1 and R 11 As the alkyl group, a tertiary alkyl group having 4 to 20 carbon atoms is preferred, a tertiary alkyl group having 4 to 7 carbon atoms is more preferred, and a t-butyl group is particularly preferred.

[0067] R 1 and R 11 may be the same or different.

[0068] R 1 and R 11 If R is a t-butyl group, the compound represented by general formula (1) can be easily synthesized by reacting a phenol such as phenol or cresol, which is a raw material for the compound, with an inexpensive raw material such as isobutylene gas or t-butyl alcohol. 1 and R 11 If is a t-butyl group, the bulkiness of the t-butyl group will provide a sufficient stabilizing effect against hydrolysis of the bisphosphite compound represented by the general formula (2) described below. For these reasons, R 1 and R 11 is particularly preferably a t-butyl group.

[0069] <-XR 11 > -XR 11 A more specific embodiment of the present invention, from the viewpoint of achieving better aldehyde isomer selectivity, includes groups represented by formulas (a), (a'), and (b) to (g) in the following Table 1. In the following formulas (a), (a'), and (b) to (g), "*" indicates the bonding site of X to the benzene ring in the above formula (1).

[0070] [Table 1]

[0071] <R 2 and R 12 > R 2 and R 12 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group and an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group and a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group and an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group, an alkylaryloxy group, an arylalkyl group and an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom.

[0072] Examples of alkyl groups having 1 to 20 carbon atoms include linear or branched alkyl groups such as methyl, ethyl, n-propyl, i-propyl, n-butyl, s-butyl, t-butyl, n-pentyl, isopentyl, neopentyl, t-pentyl, and t-hexyl. Examples of the cycloalkyl group having 3 to 20 carbon atoms include a cyclohexyl group, a cyclooctyl group, and an adamantyl group.

[0073] Examples of alkoxy groups having 1 to 20 carbon atoms include straight-chain or branched-chain alkoxy groups such as methoxy, ethoxy, isopropoxy, t-butoxy, etc. Among these, alkoxy groups having 1 to 12 carbon atoms are preferred. Examples of the cycloalkoxy group having 3 to 20 carbon atoms include a cyclopentyloxy group.

[0074] Examples of the dialkylamino group having 2 to 20 carbon atoms include a dimethylamino group and a diethylamino group. Examples of the aryl group having 6 to 20 carbon atoms include a phenyl group and a naphthyl group. Examples of the aryloxy group having 6 to 20 carbon atoms include a phenoxy group and a naphthoxy group. Examples of the alkylaryl group having 7 to 20 carbon atoms include a p-tolyl group and an o-tolyl group.

[0075] Examples of the alkylaryloxy group having 7 to 20 carbon atoms include a 2,3-xylenoxy group. An example of the arylalkyl group having 7 to 20 carbon atoms is a benzyl group. Examples of the arylalkoxy group having 7 to 20 carbon atoms include a 2-(2-naphthyl)ethoxy group. Examples of the halogen atom include a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom.

[0076] R 2 and R 12 may be the same or different.

[0077] R 2 and R 12 is preferably a hydrogen atom. A substituent at this position makes little contribution to improving the reactivity in the hydroformylation reaction or to stabilizing the bisphosphite compound itself represented by general formula (2) described below. Therefore, from the viewpoint of reducing the production cost of the compound, a hydrogen atom, which is the simplest substituent, is preferred.

[0078] <R 3 and R 13 > R 3 and R 13 represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, and an alkylaryl group and arylalkyl group having 7 to 20 carbon atoms.

[0079] Examples of alkyl groups having 1 to 20 carbon atoms include straight-chain or branched-chain alkyl groups such as methyl, ethyl, n-propyl, i-propyl, s-butyl, t-butyl, isopentyl, neopentyl, t-pentyl, and t-hexyl. Among these, alkyl groups having 4 to 20 carbon atoms are preferred, and alkyl groups having 4 to 10 carbon atoms are particularly preferred. Furthermore, alkyl groups in which the carbon atom bonded to the aromatic ring is tertiary are preferred, and examples thereof include t-butyl, t-pentyl, and t-hexyl.

[0080] Examples of cycloalkyl groups having 3 to 20 carbon atoms include a cyclohexyl group, a cyclooctyl group, an adamantyl group, etc. Among these, cycloalkyl groups having 6 to 14 carbon atoms are preferred, and cycloalkyl groups having 6 to 10 carbon atoms are more preferred. Examples of the aryl group having 6 to 20 carbon atoms include a phenyl group and a naphthyl group. Examples of the alkylaryl group having 7 to 20 carbon atoms include a p-tolyl group and an o-tolyl group. An example of the arylalkyl group having 7 to 20 carbon atoms is a benzyl group.

[0081] R 3 and R 13 is preferably a tertiary alkyl group having 4 to 20 carbon atoms, more preferably a tertiary alkyl group having 4 to 7 carbon atoms, and particularly preferably a t-butyl group.

[0082] R 3 and R 13 may be the same or different.

[0083] R 3 and R 13 is particularly preferably a t-butyl group, for example, because the dihydroxybiphenyl compound represented by general formula (1) can be easily synthesized by reacting a phenol such as phenol or cresol, which is a raw material for the dihydroxybiphenyl compound, with an inexpensive raw material such as isobutylene gas or t-butyl alcohol.

[0084] <R 4 and R 14 > R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom.

[0085] Examples of the alkyl group having 1 to 12 carbon atoms include linear or branched alkyl groups such as methyl, ethyl, n-propyl, isopropyl, t-butyl, and decyl groups. Examples of the cycloalkyl group having 3 to 12 carbon atoms include a cyclopropyl group and a cyclohexyl group. Examples of the alkoxy group having 1 to 12 carbon atoms include linear or branched alkoxy groups such as a methoxy group, an ethoxy group, and a t-butoxy group.

[0086] The silyl group includes, for example, a trimethylsilyl group. Examples of the siloxy group include a siloxy group and a trimethylsiloxy group. Examples of the halogen atom include a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom.

[0087] R 4 and R 14 may be the same or different.

[0088] Of these, R 4 and R 14 are each independently preferably a hydrogen atom, an alkyl group having 1 to 3 carbon atoms such as a methyl group or an ethyl group, an alkoxy group having 1 to 3 carbon atoms such as a methoxy group or an ethoxy group, or a halogen atom, more preferably an alkyl group having 1 to 3 carbon atoms, and particularly preferably a methyl group.

[0089] R 4 and R 14 The reason why a small group such as an alkyl group having 1 to 3 carbon atoms, and in particular a methyl group, is preferred as the phosphate group is that it allows the coupling reaction described below to proceed smoothly and also improves the stability of the bisphosphite compound represented by general formula (2) described below.

[0090] <Preferred embodiment> The dihydroxybiphenyl compound represented by the general formula (1) includes: X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom, and R 1 and R 11 are each independently a tertiary alkyl group having 4 to 20 carbon atoms, and R 2 and R 12 is a hydrogen atom, and R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms, and R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom. is preferred. The dihydroxybiphenyl compound represented by the general formula (1) includes: X is an alkylene group having a structural unit represented by the formula (1X), and R 1 and R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms, and R 2 and R 12 is a hydrogen atom, and R 4 and R 14 are each independently an alkyl group having 1 to 3 carbon atoms, is more preferred. The dihydroxybiphenyl compound represented by the general formula (1) includes: X is a 1,1-dimethylethylene group, and R 1 , R 11 , R 3 and R 13 is a t-butyl group, and R 2 and R 12 is a hydrogen atom, and R 4 and R 14 Dihydroxybiphenyl compounds in which is particularly preferred.

[0091] <Specific examples of dihydroxybiphenyl compounds> Specific embodiments of the dihydroxybiphenyl compound of the present invention are not particularly limited, and examples thereof include compounds in which the phosphate ester group moiety of the compounds exemplified below as specific embodiments of the bisphosphite compound of the present invention is replaced with a hydroxyl group.

[0092] <Method of producing dihydroxybiphenyl compound> The method for producing the dihydroxybiphenyl compound of the present invention represented by the general formula (1) is not particularly limited. For example, as shown in the following reaction formula (X), the compound can be synthesized by applying the Suzuki-Miyaura cross-coupling reaction. That is, the compound can be synthesized by reacting a boronic acid derivative of the corresponding phenol compound with a halide of the corresponding phenol compound in the presence of a basic compound such as sodium carbonate using a palladium catalyst having a phosphine ligand.

[0093] [ka]

[0094] In the above reaction formula (X), X and R 1 ~R 4 and R 11 ~R 14 are X and R in general formula (1), respectively. 1 ~R 4 and R 11 ~R 14 Also, B represents a boron atom, and Br represents a bromine atom.

[0095] The dihydroxybiphenyl compound of the present invention represented by the general formula (1) can also be synthesized by an oxidative coupling reaction using a copper catalyst in the presence of methanol and air.

[0096] An example of a method for producing the dihydroxybiphenyl compound of the present invention will be described below using a production example of compound A represented by the following formula (A), which is one embodiment of the dihydroxybiphenyl compound of the present invention.

[0097] [ka]

[0098] The method for producing a dihydroxybiphenyl compound of the present invention is not limited to these explanations. In addition to the examples below, a person skilled in the art can use well-known techniques to appropriately modify the method within the scope of the present invention and produce Compound A and dihydroxybiphenyl compounds other than Compound A.

[0099] First, a method for producing a compound (AR) having a phenol structure on the right side of compound A represented by formula (A) will be described. First, a phenolic compound with no substitution at the ortho- and para-positions of the hydroxy group is used as the starting material. This compound is alkylated with isobutene to introduce tert-butyl groups at the ortho- and para-positions of the hydroxy group. This alkylation reaction of phenols can generally be carried out using the Friedel-Crafts reaction in the presence of an acid catalyst. For example, as described in Japanese Patent Laid-Open Publication No. 55-81829, m-cresol and isobutene are reacted in the presence of 70% perchloric acid and 85% phosphoric acid catalysts to produce 4,6-di-tert-butyl-m-cresol (hereinafter referred to as "phenol-a"). This compound is designated as compound (AR) (Reaction Scheme 1).

[0100] [ka]

[0101] Next, a method for producing a compound (AL) having a phenol structure on the left side of a compound A represented by formula (A) will be described. First, the production of 2,4,4-trimethyl-1-pentene, which is the source of the 1,1,3,3-tetramethylbutyl group attached to the ortho position of the hydroxy group of compound (AL), will be described. The dimerization reaction of isobutene can be used to produce 2,4,4-trimethyl-1-pentene. For example, as described in German Patent Application Publication No. 3542171, isobutene is reacted at high temperature over a zeolite catalyst to which bismuth or lead has been added to produce a mixture containing 2,4,4-trimethyl-1-pentene (hereinafter referred to as "diisobutene-a") and 2,4,4-trimethyl-2-pentene (hereinafter referred to as "diisobutene-b") represented by the following formula (Reaction Scheme 2).

[0102] [ka]

[0103] The mixture obtained by the above-mentioned operation can be purified or separated using a known purification method or a known separation method to obtain diisobutene-a. Next, m-cresol is used as a starting material and alkylated with diisobutene-a, thereby introducing diisobutene groups into only the ortho-position, only the para-position, or both the ortho- and para-positions of the hydroxyl group. This alkylation reaction of phenols can generally be carried out using the Friedel-Crafts reaction in the presence of an acid catalyst. For example, the Friedel-Crafts reaction of m-cresol with diisobutene-a can produce a mixture containing 4-(1,1,3,3-tetramethylbutyl)-m-cresol (hereinafter referred to as "phenol-b"), 6-(1,1,3,3-tetramethylbutyl)-m-cresol (hereinafter referred to as "phenol-c"), and 4,6-di-(1,1,3,3-tetramethylbutyl)-m-cresol (hereinafter referred to as "phenol-d") (Reaction Scheme 3).

[0104] [ka]

[0105] The mixture obtained by the above-mentioned procedure can be purified or separated using a known purification method or a known separation method to obtain phenol-c.

[0106] Next, phenol-c is used as the starting material and is alkylated with isobutene to introduce an isobutene group into the para-position of the hydroxy group. This alkylation reaction of phenol-c can generally be carried out using the Friedel-Crafts reaction in the presence of an acid catalyst. For example, phenol-c and isobutene can be subjected to the Friedel-Crafts reaction to produce 4-tert-butyl-6-(1,1,3,3-tetramethylbutyl)-m-cresol (hereinafter referred to as "phenol-e"), which is then converted into the compound (AL) (Reaction Scheme 4).

[0107] [ka]

[0108] Compound A, which is one embodiment of the dihydroxybiphenyl compound of the present invention, can be produced by subjecting phenol-a (compound (AR)) and phenol-e (compound (AL)) to an oxidative coupling reaction. The oxidative coupling reaction can be carried out by a method described in The Journal of Organic Chemistry 1984, 49(23), 4456-4459 or The Journal of Organic Chemistry 1983, 48(25), 4948-4950, which can be suitably optimized by a person skilled in the art based on well-known techniques.

[0109] For example, phenol-a and phenol-e can be subjected to an oxidative coupling reaction in the presence of a copper chloride-tetramethylethylenediamine catalyst while blowing in air to produce a mixture containing 3,3',5,5'-tetra-tert-butyl-6,6'-dimethyl-1,1'-biphenyl-2,2'-diol (hereinafter referred to as "biphenol-a"), 3-(1,1,3,3-tetramethylbutyl)-3'-tert-butyl-5,5'-di-tert-butyl-6,6'-dimethyl-1,1'-biphenyl-2,2'-diol (corresponding to compound A), and 3,3'-di-(1,1,3,3-tetramethylbutyl)-5,5'-di-tert-butyl-6,6'-dimethyl-1,1'-biphenyl-2,2'-diol (hereinafter referred to as "biphenol-b") (Reaction Scheme 5).

[0110] [ka]

[0111] The mixture obtained by the above-described procedure can be purified or separated using a known purification method such as recrystallization or column purification or a known separation method to obtain Compound A, which is a dihydroxybiphenyl compound of the present invention.

[0112] Alternatively, another method for producing compound A may be as follows. That is, when phenol-a is produced according to the above-mentioned Reaction Scheme-1, a small amount of phenol-e or 4-(1,1,3,3-tetramethylbutyl)-6-tert-butyl-m-cresol (hereinafter referred to as "phenol-f") shown below may be produced as an impurity. As described above, the produced phenol-e can be subjected to an oxidative coupling reaction with phenol-a to produce compound A. Furthermore, when phenol-f is contained, a small amount of 3,3'-di-tert-butyl-5-(1,1,3,3-tetramethylbutyl)-5'-tert-butyl-6,6'-dimethyl-1,1'-biphenyl-2,2'-diol (hereinafter referred to as "biphenol-g") shown below may be produced from phenol-f.

[0113] [ka]

[0114] [ka]

[0115] [Bisphosphite compounds] The bisphosphite compound of the present invention is a novel bisphosphite compound represented by the following general formula (2).

[0116] [ka]

[0117] (In the above formula (2), X and R 1 ~R 4 and R 11 ~R 14 respectively represent X and R in the formula (1). 1 ~R 4 and R 11 ~R 14 It is synonymous with R. 1 and XR 11 are different from each other. Z 1 ~Z 4 each independently represents an aryl group having 6 to 20 carbon atoms, and may have a substituent, and the substituents may be bonded to each other to form a ring. 1 and Z 2 , and Z 3 and Z 4 may not be bonded to each other, or may be bonded to each other to form a ring structure.

[0118] <Z 1 ~Z 4 > Z 1 ~Z 4 are each independently an aryl group having 6 to 20 carbon atoms, and the aryl group may have a substituent. The substituents may be bonded to each other to form a ring. 1 and Z 2 and Z 3 and Z 4 may be unbonded to each other or may be bonded to each other to form a ring structure containing -OPO-.

[0119] In particular, Z 1 ~Z 4 Preferably, Z each independently has no substituent on the aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom, or even if the aromatic ring carbon atom has a substituent, the substituent has 0 to 2 carbon atoms. 1 ~Z 4 When has a substituent, it is preferable that the substituent is at the m-position or p-position relative to the carbon atom bonded to the oxygen atom.

[0120] Z 1 ~Z 4 When the aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom has a substituent, the substituent is preferably selected from the group consisting of alkyl groups each having 1 to 2 carbon atoms, such as a methyl group and an ethyl group, a trifluoromethyl group, a cyano group, a nitro group, and halogen atoms, such as a chlorine atom and a fluorine atom.

[0121] Z 1 ~Z 4 When Z has a substituent at a position other than the aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom, the substituent may be a linear or branched alkyl group having 1 to 12 carbon atoms, preferably 1 to 8 carbon atoms, such as a methyl group, ethyl group, n-propyl group, i-propyl group, n-butyl group, s-butyl group, t-butyl group, n-pentyl group, isopentyl group, neopentyl group, or t-pentyl group; a linear or branched alkoxy group having 1 to 12 carbon atoms, preferably 1 to 8 carbon atoms, such as a methoxy group or ethoxy group; or an aryl group having 6 to 18 carbon atoms, preferably 6 to 10 carbon atoms, such as a phenyl group or naphthyl group. Other examples of the substituent may include a halogen atom, a cyano group, a nitro group, a trifluoromethyl group, a hydroxyl group, an amino group, an acyl group, a carbonyloxy group, an oxycarbonyl group, an amido group, a sulfonyl group, a sulfinyl group, a silyl group, or a thionyl group. 1 ~Z 4 may each have 1 to 5 of these substituents. In addition, adjacent substituents may form a ring. Examples of such a ring include Z 1 ~Z 4 Examples of the aromatic ring include a saturated hydrocarbon ring condensed with the aromatic ring.

[0122] Z 1 ~Z 4 Suitable examples of the alkyl group include a phenyl group, a 1-naphthyl group, a 2-naphthyl group, a p-trifluoromethylphenyl group, a 2-ethylphenyl group, a 2-methylphenyl group, a 3-methylphenyl group, a 4-methylphenyl group, a 2,3-dimethylphenyl group, a 2,4-dimethylphenyl group, a 2,5-dimethylphenyl group, a 3,4-dimethylphenyl group, a 3,5-dimethylphenyl group, a 2-chlorophenyl group, a 3-chlorophenyl group, a 4-chlorophenyl group, a 2,3-dichlorophenyl group, a 2,4-dichlorophenyl group, a 2,5-dichlorophenyl group, a 3,4-dichlorophenyl group, a Examples of the phenyl group include a chlorophenyl group, a 3,5-dichlorophenyl group, a 2-methoxyphenyl group, a 3-methoxyphenyl group, a 4-methoxyphenyl group, a 2,3-dimethoxyphenyl group, a 3,4-dimethoxyphenyl group, a 3,5-dimethoxyphenyl group, a 4-cyanophenyl group, a 4-nitrophenyl group, a 4-phenylphenyl group, a 5,6,7,8-tetrahydro-1-naphthyl group, a 5,6,7,8-tetrahydro-2-naphthyl group, a 2-methyl-1-naphthyl group, a 4-chloro-1-naphthyl group, a 2-nitro-1-naphthyl group, and a 7-methoxy-2-naphthyl group. Z 1 and Z 2 , and Z 3 and Z 4 When these are bonded to each other to form a ring structure containing -OPO-, preferred examples include a 1,1'-biphenyl-2,2'-diyl group and a 1,1'-binaphthyl-2,2'-diyl group.

[0123] Among them, Z 1 ~Z 4 As each independently, a 1-naphthyl group or a 2-naphthyl group is preferred from the viewpoint of improving the thermal stability of the ligand and improving the selectivity for the production of a straight-chain aldehyde when producing an aldehyde by a hydroformylation reaction.

[0124] Z 1 ~Z 4 may be the same or different. As will be described later, from the viewpoint of ease of synthesis, Z 1 and Z 2 , Z 3 and Z 4 are preferably the same, and Z 1 ~Z 4 It is more preferable that all of are the same.

[0125] <Preferred embodiment> In the bisphosphite compound represented by the general formula (2), X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom, and R 1 and R 11 are each independently a tertiary alkyl group having 4 to 20 carbon atoms, and R 1 and XR 11 are different from each other, R 2 and R 12 is a hydrogen atom, and R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms, and R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom. Among the bisphosphite compounds represented by the general formula (2), Z 1 ~Z 4 each independently has no substituent on the aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom, or has a substituent having 1 to 2 carbon atoms on the aromatic ring carbon atom, and Z 1 ~Z 4 Preferred are bisphosphite compounds in which none of the groups are bonded to each other.

[0126] Furthermore, the bisphosphite compound represented by the general formula (2) may be such that X is an alkylene group having a structural unit represented by the formula (1X), and R 1 , R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms, and R 1 and XR 11 are different from each other, R 2 and R 12 is a hydrogen atom, and R 4 and R 14 However, more preferred are bisphosphite compounds in which each independently is an alkyl group having 1 to 3 carbon atoms. Among the bisphosphite compounds represented by the general formula (2), Z 1 ~Z 4 are each independently a 1-naphthyl group or a 2-naphthyl group, and more preferably, X is a 1,1-dimethylethylene group and R 1 , R 11 , R 3 and R 13 is a t-butyl group, and R 2 and R 12 is a hydrogen atom, and R 4 and R 14 is a methyl group, and Z 1 ~Z 4 However, bisphosphite compounds in which each independently represents a 1-naphthyl group or a 2-naphthyl group are particularly preferred.

[0127] <Specific examples of bisphosphite compounds> Specific embodiments of the bisphosphite compound of the present invention include compounds represented by the following formulas (L-1-x) to (L-80-x), but are not limited to these compounds. The symbol "x" in the formulae (L-1-x) to (L-80-x) is any one of the formulae (a), (a'), and (b) to (g) shown in Table 1 above.

[0128] For example, the compound of the following formula (L-1-a) is a bisphosphite compound represented by the general formula (2) in which -XR 11 This means that the substituent corresponding to the following formula is the substituent represented by formula (a) in Table 1 above.

[0129] In the compounds represented by the following formulas (L-1-x) to (L-80-x) (x is a, a', b to g), x can be replaced with one selected from the group consisting of a, a', and b to g. For example, in the compound of formula (L-1-a), "-a" is replaced with "-b" to form -XR of the bisphosphite compound represented by the general formula (2). 11 The substituent represented by formula (a) in Table 1 above can be replaced with the substituent represented by formula (b). The other substituents represented by formulas (a'), (c) to (g) can also be replaced in the same way. For example, the structural formula of a compound in which "-a" in the compound of the following formula (L-1-a) is replaced with "-a'", "-b", "-c", "-d", "-e", and "-f" is shown below.

[0130] [ka]

[0131] [ka]

[0132] [ka]

[0133] [ka]

[0134] [ka]

[0135] [ka]

[0136] [ka]

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[0141] <Method for producing bisphosphite compound> The method for producing the bisphosphite compound of the present invention represented by the general formula (2) is not particularly limited, and the compound can be synthesized by reacting an alkali metal salt or alkaline earth metal salt of a dihydroxybiphenyl compound represented by the following general formula (4) with a phosphorus compound represented by the following general formula (5A) and / or (5B) (bidentate phosphite synthesis method 1). In addition, X and R in the general formula (4) 1 ~R 4 and R 11 ~R 14 respectively represent X and R in general formula (2). 1 ~R 4 and R 11 ~R 14 In addition, M is an alkali metal or an alkaline earth metal. In addition, in the general formulas (5A) and (5B), Z 1 ~Z 4 is Z in general formula (2) 1 ~Z 4 are synonymous with each other.

[0142] [ka]

[0143] Alternatively, the bisphosphite compound of the present invention represented by the general formula (2) can be synthesized by reacting an alkali metal salt or alkaline earth metal salt of a dihydroxybiphenyl compound represented by the general formula (4) with a bis(dialkylamino)chlorophosphine represented by the following general formula (6) to obtain a biphenyldioxy intermediate having two bis(dialkylamino)phosphino groups, which is then reacted with hydrogen chloride to obtain a biphenyldioxy intermediate having two dichlorophosphino groups, which is then reacted with a phenol in the presence of a base catalyst (bidentate phosphite synthesis method 2). In general formula (6), R 20 represents a linear or branched alkyl group having 1 to 5 carbon atoms, such as a methyl group, an ethyl group, an n-propyl group, or an i-propyl group.

[0144] [ka]

[0145] Bidentate phosphite synthesis method 1 will be described in detail below. Bidentate phosphite synthesis method 2 is described in detail in JP-A-2000-53688.

[0146] The alkali metal salt or alkaline earth metal salt of the dihydroxybiphenyl compound represented by the general formula (4) can be synthesized by reacting the dihydroxybiphenyl compound of the present invention represented by the general formula (1) with an alkali metal compound such as n-BuLi (normal butyl lithium), Na, NaH, or KH, or an alkaline earth metal compound such as methylmagnesium bromide or ethylmagnesium bromide, in a solvent, preferably in an inert gas atmosphere such as nitrogen.

[0147] The amount of the alkali metal compound or alkaline earth metal compound used is usually 2 moles per mole of the dihydroxybiphenyl compound represented by the general formula (1), but more may be used if desired.

[0148] Suitable solvents include ethers such as tetrahydrofuran and diethyl ether, hydrocarbons such as hexane and toluene, nitrogen-containing compounds such as pyridine, triethylamine and N,N,N',N'-tetramethylethylenediamine, and mixtures thereof.

[0149] The reaction temperature can be appropriately selected within the range of -70°C to the boiling point of the solvent. A method can also be adopted in which the reaction is started at a lower temperature, for example, between -30°C and 10°C, and then gradually increased to the boiling point of the solvent. From the viewpoint of reaction operation, it is preferable to carry out the reaction using n-BuLi or NaH and tetrahydrofuran as a solvent.

[0150] The reaction time can usually be selected within a range of 1 minute to 48 hours, and is preferably about 10 minutes to 4 hours. After synthesizing the alkali metal salt or alkaline earth metal salt of the dihydroxybiphenyl compound represented by general formula (4), the reaction solution may be used directly in the next step without further purification. After synthesizing the alkali metal salt or alkaline earth metal salt of the dihydroxybiphenyl compound represented by general formula (4), the compound may be used in the next step after previously undergoing treatment such as washing with a poor solvent or isolation by recrystallization.

[0151] The phosphorus compound represented by the general formula (5A) or (5B) is usually prepared by the reaction of phosphorus trichloride (PCl3) with Z 1 -OH, Z 2 -OH, Z 3 -OH or Z 4 -OH(in the formula, Z 1 ~Z 4 is Z in the general formula (2). 1 ~Z 4 The compound can be synthesized by reacting a phenol represented by the formula (I) in the presence or absence of a base, preferably in an inert gas atmosphere such as nitrogen, in a solvent or without a solvent.

[0152] Z 1 and Z 2 or Z 3 and Z 4 Phosphorus compounds in which Z is the same are preferred because they can be easily synthesized. 1 and Z 2 , Z 3 and Z 4 It is preferable that both of Z are identical to each other, and particularly preferable that Z 1 ~Z 4 are preferably all the same.

[0153] When a base is used, examples of the base include nitrogen-containing bases such as pyridine, triethylamine, and diethylamine, and inorganic bases such as sodium carbonate and potassium carbonate. Among them, nitrogen-containing bases are preferably used because of the ease of reaction operation. The amount of base used is usually 2 moles per mole of PCl3. If the amount of base is too much or too little, unnecessary P(OZ) 1 )2(OZ 2 ), P(OZ 1 )(OZ 2 )2, P(OZ 1 )3, P(OZ 2 )3 and other phosphites such as Cl2P(OZ 1 This is not preferable because it increases the amount of by-product dichloro compounds such as chloroform.

[0154] The reaction temperature can be selected arbitrarily. For example, when a nitrogen-containing base is used as the base, the reaction is preferably carried out at a temperature of 0 to 5°C. The reaction time can be selected within the range of 1 minute to 48 hours, and for example, a reaction time of about 5 minutes to 10 hours is preferred.

[0155] When the reaction is carried out in the presence of a base, a salt of hydrogen chloride and a base, which is produced as a by-product as the reaction proceeds, usually exists as a solid in the reaction solution. The by-product salt of hydrogen chloride and a base can be removed from the reaction system by a method such as filtration, preferably under an inert gas atmosphere such as nitrogen. When the reaction is carried out in the absence of a base, the by-product hydrogen chloride can be removed from the reaction system by bubbling an inert gas such as nitrogen gas or argon gas into the reaction system.

[0156] The phosphorus compound represented by the general formula (5A) or (5B) may be obtained as a mixture with the unnecessary phosphites and dichloro compounds. These may be used in the next step without separation. Methods for separating the phosphorus compound represented by the general formula (5A) or (5B) from these by-products include recrystallization using an aliphatic hydrocarbon solvent such as hexane or heptane, and distillation.

[0157] The bisphosphite compound of the present invention represented by the general formula (2) can be synthesized by contacting the compound represented by the general formula (4) with the compound represented by the general formula (5A) and / or (5B) in a solvent or without a solvent at a temperature of 20°C or less for 1 minute or more.

[0158] The contact is preferably carried out in an inert gas atmosphere such as nitrogen, and the target bisphosphite compound can be synthesized by mixing the compound represented by the general formula (4) with the compound represented by the general formula (5A) and / or (5B) at a temperature of preferably 0°C or lower, more preferably -30°C or lower, and most preferably -50°C or lower, maintaining the temperature for 1 minute or more, preferably 3 to 60 minutes, and then gradually increasing the temperature.

[0159] The rate of temperature increase can be appropriately selected from the range of 0.1 to 20°C / min, and is preferably 0.5 to 10°C / min.

[0160] When a solvent is used, examples of the solvent that can be used include ethers such as tetrahydrofuran, diethyl ether, and dioxane, hydrocarbons such as hexane and toluene, nitrogen-containing compounds such as pyridine, triethylamine, and N,N,N',N'-tetramethylethylenediamine, and mixtures thereof.

[0161] The amount of solvent used is preferably the minimum amount necessary to dissolve the target product, but a larger amount may also be used.

[0162] The bisphosphite compound of the present invention represented by the general formula (2) can be purified by column chromatography, suspension washing, recrystallization, or the like.

[0163] Examples of column development methods include those using silica gel, alumina, etc. as packing materials. Examples of developing solutions for the column include ethers such as tetrahydrofuran and dioxane, aliphatic hydrocarbons such as hexane and heptane, aromatic hydrocarbons such as toluene and xylene, esters such as ethyl acetate and methyl acetate, and halogenated hydrocarbons such as chloroform and dichloromethane. These developing solutions are used alone or in combination with two or more solvents to suit the purification of the target substance.

[0164] Examples of the suspension washing method include a method in which, after completion of the synthesis reaction of a bisphosphite compound, by-produced metal chlorides (MCl or MCl2:M is an alkali metal or alkaline earth metal) are removed from the reaction solution by filtration or with a polar solvent such as water, the solution is evaporated to dryness, and the residue is stirred in a solvent such as acetonitrile, aliphatic hydrocarbons such as hexane or heptane, ketones such as acetone or diethyl ketone, or alcohols such as methanol or ethanol. In this way, the target product can be purified by dissolving unnecessary substances in a solvent without dissolving the target product in the solvent.

[0165] Examples of the recrystallization method include a method in which, after completion of the synthesis reaction of the bisphosphite compound, by-produced metal chlorides are removed from the reaction solution by filtration or with a polar solvent such as water, the solution is evaporated to dryness, the residue is dissolved in the minimum amount of solvent that can dissolve it, and then cooled; or a method in which the residue is dissolved in the minimum amount of solvent that can dissolve it, a solvent in which the target bisphosphite compound is insoluble or slightly soluble is added, and the solution is cooled as desired, to precipitate a solid, which is then separated by a method such as filtration, and further washed with a solvent that does not dissolve the solid.

[0166] Examples of solvents in which the bisphosphite compound is soluble include aromatic hydrocarbons such as benzene, toluene, and xylene, and ethers such as tetrahydrofuran and dioxane. Examples of solvents in which the bisphosphite compound is insoluble or hardly soluble include, in addition to acetonitrile, aliphatic hydrocarbons such as hexane and heptane, ketones such as acetone and diethyl ketone, and alcohols such as methanol and ethanol.

[0167] In the present invention, by carrying out a hydroformylation reaction using the above-mentioned novel bisphosphite compound, it is possible to achieve excellent selectivity to the target product.

[0168] Compositions containing the bisphosphite compound of the present invention, such as mixtures of the novel bisphosphite compound of the present invention with other bisphosphite compounds, are included in the embodiments of the present invention. In this case, the mixing ratio is not particularly limited. Examples of such mixtures include a mixture of the bisphosphite compound of the present invention with the bisphosphite compound shown below, which is derived from the crosslinked structure of the above-mentioned (biphenol-a) or (biphenol-g), which is a by-product produced during the production of the dihydroxybiphenyl compound (A) of the present invention.

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[0170] [ka]

[0171] [catalyst] The catalyst of the present invention contains a complex of the bisphosphite compound of the present invention and a metal of Groups 8 to 10. The catalyst of the present invention is useful as a catalyst for producing an aldehyde by reacting an olefin compound with carbon monoxide and hydrogen. Examples of the olefin include those described in the section on the production method of aldehydes below.

[0172] The complex containing the bisphosphite compound of the present invention and a Group 8 to 10 metal can be easily prepared from a Group 8 to 10 metal compound and the bisphosphite compound of the present invention by a known complex formation method.

[0173] Examples of Group 8-10 metal compounds used in the preparation of the complex include hydrides, halides, organic acid salts, inorganic acid salts, oxides, carbonyl compounds, amine compounds, olefin coordination compounds, phosphine coordination compounds, and phosphite coordination compounds of Group 8-10 metals. Examples include ruthenium compounds such as ruthenium trichloride, dichloro(p-cymene)ruthenium dimer, and dichlorotris(triphenylphosphine)ruthenium; palladium compounds such as palladium acetate and palladium chloride; osmium compounds such as osmium trichloride; iridium compounds such as iridium trichloride and iridium carbonyl; platinum compounds such as platinic acid, sodium hexachloroplatinate, and potassium platinate; cobalt compounds such as dicobalt octacarbonyl and cobalt stearate; rhodium trichloride, rhodium nitrate, rhodium acetate, Rh(acac)(CO)2, [Rh(OAc)(cod)]2, and Rh4(CO) 12 , Rh6(CO) 16 rhodium compounds such as HRh(CO(PPh3)3, [Rh(OAc)(CO)2]2, [Rh(μ-S(t-Bu))(CO)2]2, and [RhCl(cod)]2 (in this specification, acac represents an acetylacetonato group, OAc represents an acetyl group, cod represents 1,5-cyclooctadiene, Ph represents a phenyl group, and t-Bu represents a t-butyl group). However, the present invention is not limited to these. These compounds may be used alone or in combination of two or more. Of these, cobalt, rhodium or ruthenium compounds are preferred, with rhodium compounds being particularly preferred.

[0174] In the catalyst of the present invention, the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is preferably 0.00004 to 500, more preferably 0.0002 to 100, even more preferably 0.001 to 50, and particularly preferably 0.01 to 30. When the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is within the above range, an excellent balance between catalyst cost and reaction efficiency improvement effect is achieved.

[0175] [Catalyst composition] The catalyst composition of the present invention is one embodiment of a catalyst composition utilizing the bisphosphite compound of the present invention, and contains a bisphosphite compound represented by the following general formula (3) and the bisphosphite compound of the present invention represented by the general formula (2). The catalyst composition of the present invention is useful as a catalyst composition for producing aldehydes by reacting olefinic compounds with carbon monoxide and hydrogen.

[0176] [ka]

[0177] (In formula (3), R 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 are R in the general formula (2), respectively. 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 is equivalent to

[0178] Examples of the olefin include those described in the section on the method for producing an aldehyde below.

[0179] More specifically, the catalyst composition of the present invention includes a catalyst composition containing a complex of the bisphosphite compound represented by the general formula (3) and a metal belonging to Groups 8 to 10, and a complex of the bisphosphite compound of the present invention represented by the formula (2) and a metal belonging to Groups 8 to 10.

[0180] The catalyst composition of the present invention can be easily prepared from a Group 8 to 10 metal compound, a bisphosphite compound represented by the general formula (3) above, and the bisphosphite compound of the present invention represented by the formula (2) above by a known complex formation method.

[0181] The Group 8 to 10 metal compound used in the production of the catalyst composition of the present invention has the same meaning as the Group 8 to 10 metal compound in the catalyst of the present invention.

[0182] In the catalyst composition of the present invention, the molar ratio of the bisphosphite compound of the present invention represented by the formula (2) to the Group 8-10 metal is the same as the molar ratio of the bisphosphite compound of the present invention to the Group 8-10 metal compound in the catalyst of the present invention. In addition, in the catalyst composition of the present invention, the molar ratio of the bisphosphite compound represented by the general formula (3) to the Group 8-10 metal is the same as the molar ratio of the bisphosphite compound represented by the general formula (3) to the Group 8-10 metal compound in the catalyst of the present invention.

[0183] The lower limit of the content of the bisphosphite compound represented by the general formula (3) in the catalyst composition of the present invention is not particularly limited, but is preferably 100% by mass of the total catalyst composition. It can be 80.00% by mass or more, More preferably 90.00% by mass or more, More preferably, 95.00% by mass or more, It is particularly preferably 98.00% by mass or more. More preferably, it is 99.00% by mass or more. It is even more preferable that the content is 99.40 mass % or more. On the other hand, the lower limit of the content of the bisphosphite compound represented by the general formula (3) in the catalyst composition of the present invention is not particularly limited, but is preferably 100% by mass of the total catalyst composition. It can be 99.99% by mass or less, 99.98% by mass or less is more preferable, More preferably, 99.97% by mass or less, 99.95% by mass or less is particularly preferred, 99.90% by mass or less is particularly preferred, It is most preferably 99.85% by mass or less. The above upper and lower limits can be combined in any way. For example, the content of the bisphosphite compound represented by the general formula (3) in the catalyst composition of the present invention is not particularly limited, but may be, for example, 100% by mass of the total catalyst composition. It can be 80.00% by mass or more and 99.99% by mass or less, More preferably, the content is 90.00% by mass or more and 99.98% by mass or less. More preferably, the content is 95.00% by mass or more and 99.97% by mass or less. Particularly preferably 98.00% by mass or more and 99.95% by mass or less, Particularly preferably 99.00% by mass or more and 99.90% by mass or less, The most preferable range is 99.40% by mass or more and 99.85% by mass or less.

[0184] The lower limit of the content of the bisphosphite compound of the present invention represented by the formula (2) in the catalyst composition of the present invention is not particularly limited, but is preferably 100% by mass of the total catalyst composition. It can be 0.01% by mass or more, More preferably, 0.02% by mass or more, More preferably, 0.03% by mass or more, An amount of 0.05 mass % or more is particularly preferred. 0.10% by mass or more is particularly preferred, It is most preferably 0.15 mass % or more. On the other hand, the lower limit of the content of the bisphosphite compound of the present invention represented by the formula (2) in the catalyst composition of the present invention is not particularly limited, but is preferably 100% by mass of the total catalyst composition. It can be 20.00% by mass or less, 10.00% by mass or less is more preferable, More preferably, 5.00% by mass or less, 2.00% by mass or less is particularly preferable, 1.00% by mass or less is particularly preferred, The most preferable content is 0.60 mass % or less. The above upper and lower limits can be combined in any way. For example, the content of the bisphosphite compound of the present invention represented by the formula (2) in the catalyst composition of the present invention is not particularly limited, but may be, for example, 100% by mass of the total catalyst composition. It can be 0.01% by mass or more and 20.00% by mass or less, More preferably, the content is 0.02% by mass or more and 10.00% by mass or less. More preferably, the content is 0.03% by mass or more and 5.00% by mass or less. Particularly preferably, 0.05% by mass or more and 2.00% by mass or less, Particularly preferably, the content is 0.10% by mass or more and 1.00% by mass or less. The most preferable range is 0.15% by mass or more and 0.60% by mass or less.

[0185] The catalyst of the present invention and the catalyst composition of the present invention are used, for example, in the production of aldehydes from olefins, as shown below.

[0186] [Method for producing aldehydes] The method for producing an aldehyde of the present invention is characterized by reacting an olefin compound with carbon monoxide and hydrogen in the presence of a Group 8 to 10 metal compound and the bisphosphite compound of the present invention. Alternatively, the method for producing an aldehyde of the present invention is characterized by reacting an olefin compound with carbon monoxide and hydrogen in the presence of the above-mentioned catalyst of the present invention.

[0187] The olefin compound is not particularly limited as long as it is an organic compound having at least one olefinic double bond in the molecule. Specific examples include ethylene, propylene, butene, butadiene, pentene, hexene, hexadiene, octene, octadiene, decene, hexadecene, octadecene, icosene, docosene, styrene, α-methylstyrene, cyclohexene, and lower olefin mixtures such as mixtures of propylene and butene, mixtures of 1-butene, 2-butene and isobutylene, and mixtures of 1-butene, 2-butene, isobutylene and butadiene; olefin oligomer isomer mixtures such as dimers, trimers and tetramers of lower olefins such as propylene, n-butene and isobutylene; acrylonitrile, allyl alcohol, 1-hydroxy-2,7-octadiene, 3-hydroxy-1,7-octadiene, oleyl alcohol, 1-methoxy-2,7-octadiene, methyl acrylate, methyl methacrylate, methyl oleate and other polar group-substituted olefins.

[0188] The olefin compounds described above can be used to carry out a hydroformylation reaction to produce the corresponding aldehydes. Generally, the production ratio (L-isomer) of the linear aldehyde (L-isomer) to the branched aldehyde (B-isomer) (L-isomer / B-isomer) is preferably 1 or more, more preferably 5 or more, and even more preferably 10 or more.

[0189] In the method for producing an aldehyde of the present invention, the Group 8 to 10 metal compound used as a catalyst or a precursor thereof may be a Group 8 to 10 metal hydride, halide, organic acid salt, inorganic acid salt, oxide, carbonyl compound, amine compound, olefin coordination compound, phosphine coordination compound, phosphite coordination compound, or the like. For example, ruthenium compounds such as ruthenium trichloride, dichloro(p-cymene)ruthenium dimer, and dichlorotris(triphenylphosphine)ruthenium; palladium compounds such as palladium acetate and palladium chloride; osmium compounds such as osmium trichloride; iridium compounds such as iridium trichloride and iridium carbonyl; platinum compounds such as platinic acid, sodium hexachloroplatinate, and potassium platinic acid; cobalt compounds such as dicobalt octacarbonyl and cobalt stearate; rhodium trichloride, rhodium nitrate, rhodium acetate, Rh(acac)(CO)2, [Rh(OAc)(cod)]2, Rh4(CO) 12 , Rh6(CO) 16 rhodium compounds such as HRh(CO(PPh3)3, [Rh(OAc)(CO)2]2, [Rh(μ-S(t-Bu))(CO)2]2, and [RhCl(cod)]2 (in this specification, acac represents an acetylacetonato group, OAc represents an acetyl group, cod represents 1,5-cyclooctadiene, Ph represents a phenyl group, and t-Bu represents a t-butyl group), but are not necessarily limited to these. Among these, cobalt, rhodium, or ruthenium compounds are preferred, and rhodium compounds are particularly preferred.

[0190] The method for producing an aldehyde of the present invention can be carried out in the presence of a catalyst containing a complex formed by first complexing the bisphosphite compound of the present invention with the above-mentioned Group 8 to 10 metal. The Group 8 to 10 metal complex containing the bisphosphite compound of the present invention can be easily prepared from a Group 8 to 10 metal compound and the bisphosphite compound by a known complex formation method. In some cases, the Group 8 to 10 metal compound and the bisphosphite compound may be fed to the hydroformylation reaction zone to form a complex within the hydroformylation reaction system.

[0191] When a complex of a bisphosphite compound with a Group 8 to 10 metal is formed in advance and the aldehyde production method of the present invention is carried out in the presence of a catalyst containing the complex, the molar ratio of the bisphosphite compound to the Group 8 to 10 metal is preferably 0.00004 to 500, more preferably 0.0002 to 100, even more preferably 0.001 to 50, and particularly preferably 0.01 to 30, for reasons similar to those for the molar ratio of the bisphosphite compound to the Group 8 to 10 metal in the catalyst of the present invention described above.

[0192] In the method for producing an aldehyde of the present invention, the amount of the complex to be used is not particularly limited, and there are limits to be considered in terms of catalytic activity, economy, etc., but the complex may generally be supplied to the reaction zone so that the concentration of the Group 8 to 10 metal in the reaction solution in the hydroformylation reaction zone is preferably 0.05 to 5000 mg / L, more preferably 0.5 to 1000 mg / L, and even more preferably 5 to 500 mg / L, calculated as the metal atom.

[0193] If the concentration of the catalyst, Group 8-10 metal, is too low, there is a concern that sufficient reactivity will not be achieved. If the concentration of the Group 8-10 metal is too high, there is a concern that the cost of the catalyst will be too high. Furthermore, if the amount of bisphosphite compound used is too small, there is a concern that sufficient reactivity will not be achieved. If the amount of bisphosphite compound used is too large, there is a concern that the cost of the bisphosphite compound will be too high.

[0194] Similarly, when a Group 8-10 metal compound and a bisphosphite compound are supplied to a hydroformylation reaction zone to form a complex therein, the amount of the Group 8-10 metal compound used is not particularly limited, and there are limits taken into consideration in terms of catalyst activity, economy, etc., but in the present invention, the concentration of the Group 8-10 metal compound in the reaction solution in the hydroformylation reaction zone is usually preferably 0.05 to 5000 mg / L, more preferably 0.5 to 1000 mg / L, and even more preferably 5 to 500 mg / L, calculated as metal atoms.

[0195] If the concentration of the catalyst, which is a Group 8 to 10 metal, is too low, there is a concern that sufficient reactivity will not be achieved, whereas if the concentration of the Group 8 to 10 metal is too high, there is a concern that the cost of the catalyst will be too high.

[0196] The amount of the bisphosphite compound used is not particularly limited and is appropriately set so as to obtain the desired results in terms of catalyst activity and selectivity. It is usually 0.00004 to 500 moles, preferably 0.0002 to 100 moles, more preferably 0.001 to 50 moles, and most preferably 0.01 to 30 moles per mole of Group 8 to 10 metal. If the amount of the bisphosphite compound used is too small, there is a concern that sufficient reactivity will not be obtained. If the amount of the bisphosphite compound used is too large, there is a concern that the cost of the bisphosphite compound will be too high.

[0197] In the process for producing an aldehyde of the present invention, the use of a reaction solvent is not essential, but a solvent inert to the hydroformylation reaction can be present if necessary. Specific examples of preferred solvents include aromatic hydrocarbons such as toluene, xylene, and todecylbenzene; ketones such as acetone, diethyl ketone, and methyl ethyl ketone; ethers such as tetrahydrofuran and dioxane; esters such as ethyl acetate and di-n-octyl phthalate; high-boiling components by-produced during the hydroformylation reaction, such as aldehyde condensates; and olefin compounds that are reaction raw materials.

[0198] The reaction conditions for carrying out the method for producing an aldehyde of the present invention are similar to those conventionally used, and the reaction temperature is usually selected from the range of 15 to 200° C., preferably 50 to 150° C. The carbon monoxide partial pressure and hydrogen partial pressure are usually selected from the range of 0.0001 to 20 MPaG, preferably 0.01 to 10 MPaG, particularly preferably 0.1 to 5 MPaG.

[0199] The molar ratio of carbon monoxide to hydrogen (H2 / CO) is usually selected from the range of 10 / 1 to 1 / 10, preferably 3 / 1 to 1 / 3. The reaction can be carried out in a stirred reactor or a bubble column reactor either continuously or batchwise.

[0200] The reaction time is not particularly limited as long as it is a time that satisfactorily achieves the production of the target aldehyde, and can be appropriately selected based on the catalyst concentration, reaction conditions, reactor size, etc. The reaction time is generally 1 minute to 100 hours, preferably 5 minutes to 20 hours, and more preferably 20 minutes to 10 hours.

[0201] In the method for producing an aldehyde of the present invention, the produced aldehyde is separated by a method such as distillation, and then the recovered liquid containing the Group 8 to 10 metal and the bisphosphite compound can be used to carry out the hydroformylation reaction of an olefin compound again.

[0202] Furthermore, when an olefin compound is continuously converted into an aldehyde, the reaction liquid remaining after separating a part or all of the aldehyde produced can be continuously recycled to the hydroformylation reactor as a catalyst liquid.

[0203] [Alcohol production method] The alcohol production method of the present invention is a method for producing an alcohol, which comprises producing an aldehyde by the aldehyde production method of the present invention and producing a corresponding alcohol from the aldehyde.

[0204] The method for producing an alcohol corresponding to the aldehyde is not particularly limited and can be carried out according to a conventional method. For example, according to the method described in JP-A-2001-10999, the aldehyde obtained by the method for producing an aldehyde of the present invention can be directly subjected to a known hydrogenation reaction, or the obtained aldehyde can be dimerized and then subjected to a known hydrogenation reaction to produce an alcohol.

[0205] The hydrogenation catalyst used in the hydrogenation reaction may be a known solid catalyst in which a metal such as Ru, Ni, Cr, or Cu is supported on a carrier, and Ru-based catalysts are preferred. The conditions for the hydrogenation reaction are usually a temperature of 60 to 200° C. and a hydrogen pressure of about 0.1 to 20 MPaG. [Example]

[0206] The present invention will be explained in more detail below by way of experimental examples that serve as alternatives to working examples, but the present invention is not limited to these experimental examples. The following examples are merely illustrative and are not intended to limit any of the embodiments described herein. The following examples do not limit the present invention in any way. The values ​​of various manufacturing conditions and evaluation results in the following experimental examples are meant as preferred upper or lower limit values ​​in the embodiments of the present invention, and a preferred range may be defined by a combination of the above-mentioned upper or lower limit value and the values ​​of the following experimental examples or values ​​of the experimental examples.

[0207] [raw materials] The abbreviations for the compounds used in the experimental examples are as follows: DBMC: 4,6-di-t-butyl-m-cresol [Rh(OAc)(cod)]2: (1,5-cyclooctadiene) acetate rhodium dimer (trade name: Rh2(cod)2(OAc)2, manufactured by N.E. Chemcat Corporation) Phosphite ligand A: A symmetric bisphosphite compound having only a t-Bu group at the o-position of the phosphite substituent, represented by the following structural formula, produced by the method described in Example 11 of Japanese Patent No. 3812046.

[0208] [ka]

[0209] [Evaluation method] In the following experimental examples, various physical properties were measured by the following methods.

[0210] <Molecular weight measurement of compound A> The molecular weight of Compound A was measured using high performance liquid chromatography mass spectrometry (LC / MS) under the following measurement conditions. (LC measurement conditions) High-performance liquid chromatograph: Agilent 1260 (manufactured by Agilent Technologies, Inc.) Analytical column: CAPCELLPAK C18 MGIII (trade name, manufactured by Osaka Soda Co., Ltd., size: inner diameter 4.6 mm x length 75 mm, film thickness 3 μm) Eluent: acetonitrile Flow rate: 1.0mL / min Detector: UV detector (wavelength 210 nm) Injection volume: 2μL (MS measurement conditions) Mass spectrometer: Agilent LC / MS 6130 (manufactured by Agilent Technologies, Inc.) Ion source: Electrospray ionization (ESI) method (Positive / Negative; AJS probe used) As an ionization aid, a 20 mM aqueous solution of ammonium formate was added to the post-column at a rate of 0.1 mL / min.

[0211] <Structural analysis of compound A> Nuclear magnetic resonance spectrometer (JNM-ECS400 model, manufactured by JEOL Ltd.) 1 H): 400 MHz, probe: H5XAT / FG2 (inverse)) was used to carry out structural analysis of Compound A according to the following procedure. The isolated compound A was dissolved in deuterated chloroform (CDCl 3 ) containing a small amount of tetramethylsilane (TMS), and this was used as a sample for NMR measurement. ( 1 H-NMR measurement) The obtained NMR measurement sample was measured using a nuclear magnetic resonance spectrometer under the conditions of a measurement temperature of 25°C and an accumulation number of 128. 1 H-NMR measurements were carried out. ( 13 C-NMR measurement) The obtained NMR measurement sample was measured using a nuclear magnetic resonance spectrometer at a measurement temperature of 25°C under the following measurement conditions: 13 Measurements were carried out using C-NMR (accumulation number: 3000), DEPT (flip angle: 135°, accumulation number: 3000), HMQC (accumulation number: 16), and HMBC (accumulation number: 8).

[0212] <Accurate mass measurement of compound B> The exact mass of the isolated compound B was measured using a liquid chromatograph / time-of-flight mass spectrometer (LC / ToFMS) under the following measurement conditions. (Measurement conditions) High-performance liquid chromatogram measuring device: Waters Acquity H-Class (device name, manufactured by Nihon Waters Co., Ltd.) Analytical column: ACQUITY UPLC BEH C8 (product name, column size: inner diameter: 2.1 mm × column length: 100 mm, film thickness: 1.7 μm, manufactured by Nihon Waters K.K.) Eluent: acetonitrile Eluent flow rate: 0.4 mL / min Mass spectrometer: Quadrupole time-of-flight mass spectrometer Waters Xevo G2-XS Qtof (device name, manufactured by Waters Japan Co., Ltd.) Ionization method: Electrospray ionization (ESI) method (Positive Mode) Mass calibrant: leucine enkephalin (RE)

[0213] <Structural analysis of compound B> Nuclear magnetic resonance spectrometer (device name: Bruker AVANCE NEO 600 type device, manufactured by Bruker Corporation, resonance frequency ( 1 H): 600 MHz, probe: 5 mm BBO Cryo), the structure of Compound B was analyzed by the following procedure. The isolated compound B was dissolved in deuterated chloroform (CDCl3) containing a small amount of tetramethylsilane (TMS), and this was used as a sample for NMR measurement. ( 1 H-NMR measurement) The obtained NMR measurement sample was measured using a nuclear magnetic resonance spectrometer under the conditions of a measurement temperature of 25°C and an accumulation number of 16 times. 1 H-NMR measurements were carried out. ( 13 C-NMR measurement) The obtained NMR measurement sample was measured using a nuclear magnetic resonance spectrometer at a measurement temperature of 25°C under the following measurement conditions: 13 C-NMR (accumulation number: 256), DEPT (flip angle: 135°, accumulation number: 128), HSQC (accumulation number: 16), HMBC (accumulation number: 2), 1 H- 1 H COSY measurements (number of times of accumulation: 2) were performed.

[0214] <IR measurement of compound B> The isolated compound B was subjected to infrared spectroscopy (IR) measurement by the attenuated total reflectance (ATR) method under the following measurement conditions using an infrared microscope (device name: Nicolet iN10MX, manufactured by Thermo Fisher Scientific) equipped with an FT-IR module (trade name: iZ10, manufactured by Thermo Fisher Scientific). (Measurement conditions) ATR: Gladi ATR vision Diamond Crystal (PIKE) Resolution: 4cm ―1 Accumulation count: 64 times

[0215] Example 1: Preparation of dihydroxybiphenyl compound (compound A) of the present invention In the production of the dihydroxybiphenyl compound (Compound A), a composition containing DBMC (DBMC composition) was used as the starting material. As a result of analyzing the composition of the DBMC composition using a gas chromatogram (GC) measuring device and the total gas chromatography area method under the following GC measurement conditions, the DBMC composition contained 97.5 GC area% of DBMC and 0.8 GC area% of the compound represented by the following formula (E) (the aforementioned "phenol-e"). Note that the composition ratio of each component in the total gas chromatography area method was calculated as the area content ratio (unit: GC area%) of each peak component when the total area of the GC peaks of all the product substances on the gas chromatogram was set to 100%.

[0216]

Chemical formula

[0217] <GC measurement conditions> GC device: GC-2025 (high-performance general-purpose gas chromatograph, manufactured by Shimadzu Corporation) Detector: Flame ionization detector (FID) Carrier gas: Nitrogen gas (column flow rate 4.07 mL / min) Column: Capillary column BPX5 (manufactured by SGE Analytical Science, size: length 60 m × inner diameter 0.32 mm, film thickness 0.25 μm) Column temperature: 50°C (holding time 5 minutes) → heating at 10°C / min → 300°C (holding time 10 minutes) Injection port temperature: 300°C Detector temperature: 300°C Sample amount: 0.5 μL (split ratio: 1 / 20)

[0218] Approximately 200 g of the DBMC composition was placed in a glass distillation apparatus. Using an oil bath set at approximately 140°C under a reduced pressure of 3 mmHg, 160 g of DBMC, the main component of the DBMC composition, was distilled off. The residue in the distillation apparatus was removed and transferred to a glass reactor equipped with an air inlet pipe, and 0.74 g of copper(II) chloride dihydrate, 0.67 g of N,N,N',N'-tetramethylethylenediamine, and 87.0 g of methanol were added. Hereinafter, the contents of the reactor will be referred to simply as the "reaction solution." Next, the reaction solution was stirred at 450 rpm and heated to 50°C. Air was then blown into the reaction solution at a rate of 24 mL / min for 24 hours while maintaining the temperature at 50°C, yielding a slurry solution. This slurry solution was filtered while being suspended and washed, yielding 17.9 g of a white solid (1) as the filtrate.

[0219] The obtained white solid (1) was analyzed by gas chromatography. It was found that the white solid (1) contained 88.6 GC area % of 3,3',5,5'-tetra-tert-butyl-6,6'-dimethyl-1,1'-biphenyl-2,2'-diol (the above-mentioned biphenol-a; hereinafter referred to as "biphenol-a") and 3.3 GC area % of a compound A presumed to have a structure represented by the following formula (A):

[0220] [ka]

[0221] <Isolation of Compound A from White Solid (1)> Compound A was separated from the resulting white solid (1) by the following procedure. A tetrahydrofuran solution (39.9 g) was added to the obtained white solid (1) (17.9 g), and the mixture was then placed in a glass reaction vessel. The mixture was stirred in an oil bath at a stirring rate of 200 rpm until the solution temperature in the reaction vessel reached 60°C, thereby dissolving the white solid (1). Next, 54 g of methanol was added dropwise to the reaction vessel at a rate of 5 mL / min, and the stirring rate was reduced to 50 rpm. The solution was cooled at a rate of 0.8°C / min until the solution temperature in the reaction vessel reached 2°C, and then stirred for another 2 hours to obtain a slurry solution. The resulting slurry was filtered while being suspended in water, and the filtrate was collected. When the resulting filtrate was analyzed by gas chromatography, it was found to contain 58.4 GC area % of biphenol-a and 12.7 GC area % of presumed compound A.

[0222] The obtained filtrate was evaporated to dryness, and tetrahydrofuran (6.2 g) was added to the dried filtrate (2.9 g), which was then placed in a glass reaction vessel. The mixture was heated to 60°C with stirring using an oil bath to dissolve the dried filtrate. Methanol was then added dropwise, and the stirring speed was reduced, and the solution temperature in the reaction vessel was cooled to 2°C, yielding a slurry solution. The obtained slurry solution was filtered while suspending and the filtrate was recovered. Gas chromatography analysis of the obtained filtrate revealed that it contained 27.6 GC area% of biphenol-a and 19.6 GC area% of presumed compound A.

[0223] The resulting filtrate was evaporated to dryness, yielding 1.2 g of a white solid. The resulting white solid (1.2 g) was dissolved in 0.5 g of toluene, and then purified by open column chromatography using a chromatographic column (internal diameter: 3.3 cm, silica gel packing length: 40 cm) packed with silica gel (trade name: Wako Gel C-200, Fujifilm Wako Pure Chemical Industries, Ltd.) and hexane / toluene = 100 / 1 as the eluent. The eluent from the chromatographic column was collected in 100 mL aliquots. Analysis of the 17th eluent by gas chromatography revealed that the eluent contained no biphenol-a and 70.7 GC area% of the presumed compound A. The eluent was concentrated using an evaporator and then dried under reduced pressure to yield 0.06 g of a white solid (2) containing the presumed compound A.

[0224] <Isolation of Compound A from White Solid (2)> About 6.4 mg of Compound A was isolated from the obtained white solid (2) using liquid chromatography (LC method) under the following conditions.

[0225] The white solid (2) was dissolved in acetonitrile, and then an eluate containing Compound A was separated using preparative liquid chromatography (preparative LC) under the following preparative LC conditions. Next, the collected eluate was concentrated using an evaporator and then dried under reduced pressure to obtain Compound A. (Preparative LC conditions) Device: LC-10A (device name, manufactured by Shimadzu Corporation) Preparative column: CAPCELLPAK C18 (trade name, manufactured by Osaka Soda Co., Ltd., size: inner diameter 20 mm x length 150 mm, film thickness 5 μm) Analysis temperature: 40℃ Eluent: acetonitrile Flow rate: 15mL / min Detector: UV detector (wavelength 210 nm) Injection volume: 1000 μL / injection, 7 times

[0226] <Structural identification of compound A> The isolated compound A was subjected to molecular weight measurement using the liquid chromatography mass spectrometry (LC / MS) method and various NMR measurements ( 1 H-NMR, 13 C-NMR, DEPT, HMQC, HMBC) were performed. 1 The H-NMR spectrum is shown in Figure 1(a). 13 The C-NMR spectrum is shown in Figure 1(b). The analytical results of Compound A were as follows:

[0227] (Molecular weight measurement results) In liquid chromatography mass spectrometry (LC / MS), positive mode 494 ([M] + ), negative mode 493 ([MH] - ) was observed, and the molecular weight of compound A was determined to be 494.

[0228] ( 1 H-NMR measurement results) Based on the structural formula represented by the following formula (α): 1 The peaks observed on the 1 H-NMR spectrum were identified. δ 0.77 (9H, s, signal of 7 in formula (α)), δ 1.40 (9H, s, signal of 2 in formula (α)), δ 1.43 (18H, s, signals of 1 and 6 in formula (α)), δ 1.45 (6H, d, J = 5.95 Hz, signal of 9 in formula (α)), δ 1.89 (2H, dd, J = 14.4 Hz, 54.3 Hz, signal of 8 in formula (α)) ), δ2.01 (3H,s, signal 10 of formula (α)), δ2.02 (3H,s, signal 3 of formula (α)), δ4.70 (1H,s, signal 5 of formula (α)), δ4.81 (1H,s, signal 12 of formula (α)), δ7.38 (1H,s, signal 4 of formula (α)), δ7.41 (1H,s, signal 11 of formula (α))

[0229] [ka]

[0230] ( 13 C-NMR measurement results) Based on the structural formula represented by the following formula (β): 13 The peaks observed on the C-NMR spectrum were identified. δ18.82 (signal of C and c in formula (β)), δ29.65 (signal of B in formula (β)), δ31.03, 31.14 (signal of i in formula (β)), δ31.53 (signal of f in formula (β)), δ31.59 (signal of a in formula (β)), δ31.69 (signal of A in formula (β)), δ32.56 (signal of g in formula (β)), δ35.06 (signal of E in formula (β)), δ35.91 (signal of d in formula (β)), δ35.94 (signal of D in formula (β)), δ39.17 (signal of j in formula (β)), δ52.42 (signal of h in formula (β)), δ123.35 (signal of O in formula (β)), δ123.37 (signal of o in formula (β)), δ125.43 (signal of L in formula (β)), δ126.73 (signal of l in formula (β)), δ131.32 (signal of k in formula (β)), δ132.50 (signal of K in formula (β)), δ133.94 (signal of N in formula (β)), δ133.97 (signal of n in formula (β)), δ140.07 (signal of M in formula (β)), δ140.30 (signal of m in formula (β)), 149.85 (signal of P in formula (β)), 150.19 (signal of p in formula (β))

[0231] [ka]

[0232] (DEPT measurement results) The aforementioned 13 In the C-NMR spectrum, the D, d, E, g, j, K, k, M, m, N, n, O, o, P, and p signals disappeared, and the h signal appeared in the opposite direction.

[0233] (HMQC and HMBC measurement results) The results of the HMQC and HMBC measurements are shown in Table 2 below.

[0234] [Table 2]

[0235] From the above analytical results, it was confirmed that Compound A obtained in Experimental Example 1 is a novel dihydroxybiphenyl compound represented by the following formula (1A), which has a bulky substituent in the ring structure and an asymmetric structure.

[0236] [ka]

[0237] [Example 2: Production of the bisphosphite compound of the present invention (compound B)] A tetrahydrofuran solution (12 mL) of Compound A (1.08 g, 2.18 mmol) obtained in Example 1 was prepared and placed in a glass reactor. Under a nitrogen atmosphere, the solution was stirred at 0° C. while a commercially available metallic sodium mineral oil dispersion (trade name: SD Super Fine TM 0.466 g (5.067 mmol as sodium) of (Sodium 25 wt % dispersion in mineral oil, manufactured by Tokyo Chemical Industry Co., Ltd.) was added dropwise thereto. Thereafter, the content of the reactor was heated for 4 hours using an oil bath set at 65°C to obtain a tetrahydrofuran solution containing the sodium form of Compound A. Next, a toluene solution (14 mL) of bisdiethylaminochlorophosphine (1.08 g, 5.126 mmol) was placed in a separately prepared glass reactor, and the resulting tetrahydrofuran solution containing the sodium form of Compound A was added dropwise to the mixture under stirring at 0° C. under a nitrogen atmosphere. After the dropwise addition, 12 mL of tetrahydrofuran contained in the content of the reactor was distilled off to obtain a toluene solution containing an aminophosphine form of Compound A.

[0238] Next, the obtained toluene solution containing the aminophosphinate of Compound A was placed in a separately prepared glass reactor, and 6.03 g (27.25 mmol as hydrochloric acid gas) of a 1,4-dioxane hydrochloric acid solution (4 mol / L) was added dropwise while stirring at 0°C under a nitrogen atmosphere, resulting in the formation of a precipitate of an amine hydrochloride. The precipitate was filtered off, and the filtrate was subjected to distillation under reduced pressure to remove excess hydrochloric acid gas and 1,4-dioxane, yielding a toluene solution containing a chlorophosphinate of Compound A.

[0239] Furthermore, a toluene solution containing the obtained chlorophosphinate of Compound A was stirred under a nitrogen atmosphere at 0°C, and a toluene solution (6.6 mL) of 1-naphthol (1.257 g, 8.72 mmol) and triethylamine (0.889 g, 8.78 mmol) was added dropwise thereto. The mixture was then allowed to stand at room temperature for 3 days, resulting in the formation of a precipitate of amine hydrochloride. The precipitate was filtered off, and the resulting filtrate was washed three times with 50 mL of pure water. The toluene phase was then dehydrated using magnesium sulfate, and the magnesium sulfate was then filtered off. The toluene phase obtained after the dehydration treatment was then concentrated using an evaporator and dried under reduced pressure to obtain 1.04 g of a white powder (3).

[0240] <Separation of Compound B from White Solid (3)> The resulting white solid (3) (1.04 g) was dissolved in toluene (4 mL) and then purified by open column chromatography using a 3.3 cm inner diameter, 30 cm silica gel packed column (internal diameter, silica gel packed length) packed with silica gel (trade name: Wakogel C-200, Fujifilm Wako Pure Chemical Industries, Ltd.) and a 5:1 hexane / toluene mixture as the eluent. The eluent from the column was collected in 100 mL portions. The eluents from the 16th to 22nd columns were combined and analyzed by liquid chromatography. The eluent contained 89.6 LC area % of compound B. The eluent was concentrated using an evaporator and then dried under reduced pressure to obtain 0.63 g of a white solid (4) containing compound B.

[0241] <Isolation of Compound B from White Solid (4)> Compound B was isolated from the obtained white solid (4) containing Compound B by liquid chromatography (LC method) under the following conditions.

[0242] The white solid (4) was dissolved in acetonitrile, and then an eluate containing Compound B was separated using preparative liquid chromatography (preparative LC) under the following preparative LC conditions. Next, the collected eluate was concentrated using an evaporator and then dried under reduced pressure to obtain Compound B. (Preparative LC conditions) Device: LC-10A (device name, manufactured by Shimadzu Corporation) Preparative column: CAPCELLPAK C18 (trade name, manufactured by Osaka Soda Co., Ltd., size: inner diameter 20 mm x length 150 mm, film thickness 5 μm) Analysis temperature: 40℃ Eluent: isopropanol / acetonitrile (20 / 80) Flow rate: 15mL / min Detector: UV detector (wavelength 290 nm) Injection volume: 1000 μL / injection, 11 times

[0243] <Structural identification of compound B> The isolated compound B was subjected to molecular weight and accurate mass measurement using a liquid chromatograph / time-of-flight mass spectrometer (LC / TofMS) and various NMR analyses ( 1 H-NMR, 13 C-NMR, DEPT, HSQC, HMBC, 1 H- 1 H COSY) was performed. 1 The H-NMR spectrum is shown in Figure 2(a). 13 The C-NMR spectrum is shown in Figure 2(b). The analytical results of Compound B were as follows:

[0244] (Molecular weight measurement and accurate mass measurement results) Using a liquid chromatograph / time-of-flight mass spectrometer (LC / ToFMS), the compound was identified in positive mode at m / z = 1127.5507 ([M+H] + ) ion peak was observed, and the molecular weight of compound B was determined to be 1127.5. In addition, the result of accurate mass measurement for this ion peak was 1127.5508, and the error from the theoretical value was within the range of -0.1 mDa and -0.1 ppm. Therefore, the composition formula of compound B was determined to be C 74 H 80 It was estimated to be O6P2.

[0245] ( 1 H-NMR measurement results (CDCl3,TMS)) Based on the structural formula represented by the following formula (γ): 1 The peaks observed on the 1 H-NMR spectrum were identified. δ 0.75 (9H, s, signal of formula (γ) 6), δ 1.17 (18H, s, signals of formula (γ) 1 and 5), δ 1.34 (3H, s, signal of formula (γ) 8), δ 1.40 (9H, s, signal of formula (γ) 2), δ 1.43 (2H, s, signal of formula (γ) 8), δ 1.50 (1H, d, J = 14.9 Hz, signal of formula (γ) 7), δ 2.03 (3H, s, signal of formula (γ) 3) ), δ2.10 (3H, s, signal 9 of formula (γ)), ​​δ2.71 (1H, d, J = 14.6 Hz, signal 7 of formula (γ)), ​​δ6.88 (1H, d, J = 7.80 Hz, signal 12 of formula (γ)), ​​δ6.95 (1H, d, J = 7.96 Hz, signal 12 of formula (γ)), ​​δ7.02 (1H, d, J = 7.80 Hz, signal 11 of formula (γ)), ​​δ7.06-7.34 (14H, m, δ7.38 (1H,d,J=8.29, signal 13 of formula (γ)), ​​δ7.51 (1H,s, signal 4 of formula (γ)), ​​δ7.52 (1H,s, signal 10 of formula (γ)), ​​δ7.58 (1H,d,J=7.96, signal 14 of formula (γ)), ​​δ7.61 (1H,d,J=7.96, signal 14 of formula (γ)), ​​δ7.64 (1 δ7.65 (1H,d,J=7.96, signal of 14 of formula (γ)), ​​δ7.76 (1H,d,J=8.29, signal of 17 of formula (γ)), ​​δ7.82 (1H,d,J=8.29, signal of 17 of formula (γ)), ​​δ7.84 (1H,d,J=8.29, signal of 17 of formula (γ)), ​​δ7.88 (1H,d,J=8.29, signal of 17 of formula (γ))

[0246] [ka]

[0247] ( 13 C-NMR measurement results) Based on the structural formula represented by the following formula (ε), 13 The peaks observed on the C-NMR spectrum were identified. δ19.87, 19.91 (signal of C in formula (ε)), δ19.94, 19.97 (signal of c in formula (ε)), δ30.65 (signal of B in formula (ε)), 30.73 (signal of i in formula (ε)), δ31.00 (signal of f in formula (ε)), δ31.11 (signal of A in formula (ε)), δ31.87 (signal of a in formula (ε)), δ31.92 (signal of i in formula (ε)), δ32.51 (signal of g in formula (ε)), δ35.34 (signal of E in formula (ε)), δ35.81 (signal of d in formula (ε)), δ35.88 (signal of D in formula (ε)) le), δ39.73 (signal of j in formula (ε)), δ53.25 (signal of h in formula (ε)), δ112.99, δ113.09, δ113.26, δ113.37, δ113.46, δ113.56, δ113.65, δ113.74 (signal of R in formula (ε)), δ122.45 (signal of Y and T in formula (ε)), δ122.49 (signal of T in formula (ε)), δ122.53 (signal of Y in formula (ε)), δ122.61 (signal of Y and T in formula (ε)), δ122.65 (signal of Y in formula (ε)), δ124.86, δ124.96, δ12 5.03, δ125.08 (signal of X in formula (ε)), δ125.10, δ125.18, δ125.23, δ125.31 (signal of S in formula (ε)), δ125.83, δ125.97, δ126.04 (signal of W in formula (ε)), δ126.26 (signal of l in formula (ε)), δ126.52, 126.68, 126.82 (signal of Z in formula (ε)), δ127.08, δ127.11, δ127.18 (signal of V in formula (ε)), δ127.52 (signal of L in formula (ε)), δ131.72 (signal of o in formula (ε)), δ131. 87 (O signal in formula (ε)), δ134.46, δ134.56, δ134.60 (U signal in formula (ε)), δ135.71 (n signal in formula (ε)), δ135.99 (N signal in formula (ε)), δ136.31 (k signal in formula (ε)), δ137.17 (K signal in formula (ε)), δ143.38 (m signal in formula (ε)), δ143.57 (M signal in formula (ε)), δ148.13, δ148.20 (Q signal in formula (ε)), δ149.73 (p signal in formula (ε)), δ149.81 (P signal in formula (ε))

[0248] [ka]

[0249] (DEPT measurement results) The aforementioned 13 In the C-NMR spectrum, it was confirmed that the signals D, E, g, j, K, k, M, m, N, n, O, o, P, p, Q, U, and Z disappeared, and the signal h appeared in the opposite direction.

[0250] (HMQ, CHMBC and 1 H- 1 H COSY measurement results) HMQ, CHMBC and 1 H- 1 The measurement results of H COSY are shown in Table 3 below.

[0251] [Table 3]

[0252] (IR measurement results, unit: cm -1 ) The IR measurement results were as follows: 567(w),594(w),702(w),729(w),766(s),793(s),872(m),891(m),906(w),1012(s),1026(m),1039(m),1078(m),1153(w),1169 (w),1225(s),1257(s),1360(w),1388(s),1444(w),1460(m),1506(w),1574(m),1595(w),1745(m),2870(m),2951(m),3051(w)

[0253] From the above analytical results, it was confirmed that compound B obtained in Example 2 is a novel bisphosphite compound represented by the following formula (1B), which has a bulky substituent in the ring structure and an asymmetric structure.

[0254] [ka]

[0255] Example 3: Preparation of aldehyde Using the bisphosphite compound of the present invention, a hydroformylation reaction was carried out using propylene as a raw material according to the following procedure, and the production of aldehyde was evaluated.

[0256] The inside of a 50 mL stainless steel induction stirring autoclave was thoroughly dried, and then the air inside the autoclave was replaced with nitrogen three times. To a separately prepared glass vessel, under a nitrogen atmosphere, 4.84 mg (0.0179 mmol as Rh) of [Rh(OAc)(cod)]2 was added as the Rh source for the hydroformylation catalyst, and 80.4 mg (0.0713 mmol; molar ratio of the ligand L to Rh (L / Rh ratio) = 4) of compound B, a bisphosphite compound of the present invention produced in Example 2, was added as a ligand for the hydroformylation catalyst. 14.0 mL (12.040 g) of toluene was then added as a solvent, and 1.0 mL (0.750 g) of n-dodecane was added as an internal standard for gas chromatography. The mixture was then stirred to prepare a catalyst solution.

[0257] The catalyst solution was then injected into the autoclave using purified nitrogen gas, and the autoclave was then sealed. The concentration of the hydroformylation catalyst in the catalyst solution was 122 mg / L in terms of Rh. The autoclave was purged with nitrogen gas three times using nitrogen gas so that the internal pressure of the nitrogen gas was 2.0 MPaG. The nitrogen gas pressure was then released, and 1.5 g of propylene gas was injected into the autoclave. The reaction temperature in the autoclave was then raised to 70°C. Further, oxo gas (H / CO = 1 / 1, 0.6 MPaG as the oxo gas partial pressure at the initial stage of the reaction) was injected so that the reaction pressure in the autoclave, including the propylene pressure, was 1.0 MPaG. The hydroformylation reaction was carried out for 1.5 hours while maintaining this pressure and temperature. The oxo gas consumed in the hydroformylation reaction was automatically replenished into the autoclave from a pressure accumulator via a secondary pressure regulator, and the reaction was carried out so that the pressure in the autoclave was always maintained at 1.0 MPaG.

[0258] After the hydroformylation reaction was completed, the temperature inside the autoclave was cooled to room temperature (25°C), and the gas phase and liquid phase recovered from the autoclave were subjected to component analysis using gas chromatography. As a result of the analysis, the reaction rate constant (k) was 2.8 h -1 The total selectivity for n-butyraldehyde and i-butyraldehyde was 97.8%, and the molar ratio of n-butyraldehyde to i-butyraldehyde (n / i) was 75.1.

[0259] Comparative Example 1: Production of aldehyde As a comparative example, a hydroformylation reaction was carried out using a symmetric bisphosphite compound having only a t-Bu group at the o-position of the phosphite substituent, using propylene as a raw material, according to the following procedure, and the production of aldehyde was evaluated.

[0260] A hydroformylation reaction was carried out under the same conditions as in Example 3, except that 80.4 mg of compound B in Example 3 was changed to 76.4 mg of the phosphite ligand A (0.0713 mmol, ratio of ligand L to Rh = 4), to produce an aldehyde.

[0261] As a result of evaluation using the same method as in Example 3, the reaction rate constant (k) was 2.8 h -1 The total selectivity for n-butyraldehyde and i-butyraldehyde was 98.5%, and the molar ratio of n-butyraldehyde to i-butyraldehyde (n / i ratio) was 70.4.

[0262] [Examples 4 to 5, Comparative Examples 2 to 3: Production of Aldehydes] Aldehydes were produced by carrying out a hydroformylation reaction under the same conditions as in Example 3, except that the type of bisphosphite compound, the L / Rh ratio, the reaction temperature, the reaction pressure, and the reaction time were changed as shown in Table 4. The results of evaluation performed in the same manner as in Example 3 are shown in Table 4.

[0263] [Example 6] An aldehyde was produced by carrying out a hydroformylation reaction under the same conditions as in Example 3, except that compound B in Example 3 was changed to a mixture of compound B and phosphite ligand A (molar ratio: 50 / 50). The results of evaluation performed in the same manner as in Example 3 are shown in Table 4.

[0264] [Table 4]

[0265] From the above evaluation results, it is clear that when the novel bisphosphite compound of the present invention is used as a ligand for a catalyst in a hydroformylation reaction, a linear aldehyde can be efficiently produced while maintaining good reaction activity in the hydroformylation reaction.

[0266] (Thermal stability test) The following thermal stability test was conducted to examine the thermal stability of the ligand, assuming a series of steps in which the aldehyde produced after the hydroformylation reaction is separated by distillation and the catalyst liquid containing the ligand (bisphosphite compound) is recycled to the reactor.

[0267] [Example 7: Thermal stability test of the bisphosphite compound of the present invention] The thermal stability of the bisphosphite compound of the present invention was evaluated according to the following procedure.

[0268] The inside of a 100 mL stainless steel induction stirring autoclave was thoroughly dried, and then the air inside the autoclave was replaced with nitrogen three times. A catalyst mixture solution containing 40 mL of n-butylaldehyde (solvent), 218.0 mg (0.067 mmol as Rh) of [Rh(OAc)(cod)] as the Rh source for the hydroformylation catalyst (Rh source), and 0.151 g (0.134 mmol, molar ratio of phosphorus atoms in the ligand to Rh (P / Rh ratio) = 2.01) of compound B prepared in Example 2 was prepared as a ligand for the hydroformylation catalyst in a nitrogen atmosphere in a separately prepared glass vessel. The catalyst mixture solution was then pressurized into the autoclave using purified nitrogen gas, and the autoclave was then sealed.

[0269] Next, while stirring the contents in the autoclave, oxo gas (H2 / CO=1 / 1) was injected into the autoclave so that the internal pressure of the autoclave became 0.1 MPaG, and the internal temperature of the autoclave was raised to 70°C, and the contents were stirred for 30 minutes while maintaining this temperature. The temperature inside the autoclave was then cooled to room temperature (25°C), the oxo gas inside the autoclave was purged, and an initial sample for analysis was taken from the autoclave under a nitrogen atmosphere. The inside of the autoclave was then purged with nitrogen three times so that the internal pressure of the nitrogen gas was 0.5 MPaG, thereby replacing the oxo gas in the reaction solution and the oxo gas in the gas phase inside the autoclave with nitrogen gas, and then nitrogen gas was injected into the autoclave so that the internal pressure was 0.1 MPaG.

[0270] Next, the temperature inside the autoclave was raised to 130°C, and heating and stirring were carried out while maintaining this temperature. 88 hours, 183 hours, and 231 hours after the temperature reached 130°C, the temperature inside the autoclave was cooled to room temperature (25°C), the nitrogen gas inside the autoclave was purged, and then an analytical sample was collected from inside the autoclave under a nitrogen atmosphere. After collecting the analytical sample, nitrogen gas was injected into the autoclave so that the internal pressure was 0.1 MPaG, and then the temperature inside the autoclave was raised to 130°C, and heating and stirring were carried out for a predetermined time while maintaining this temperature. The obtained analytical sample was subjected to liquid chromatography under the liquid chromatogram measurement conditions below to measure the decomposition rate of compound B. As a result, the decomposition rates of compound B after 88 hours, 183 hours, and 231 hours were 11.7 LC area %, 21.4 LC area %, and 26.6 LC area %, respectively. The decomposition rate of compound B is the reduction rate (unit: area %) of the peak area of ​​compound B in the liquid chromatograms of samples obtained after 88 hours, 183 hours, and 231 hours, relative to the peak area of ​​compound B in the liquid chromatogram of the initial sample.

[0271] (Liquid chromatogram measurement conditions) High-performance liquid chromatogram measuring device: LC-20A (device name, manufactured by Shimadzu Corporation) Degassing: Online degasser Analytical column: Inertsil ODS-2 Non-polar stationary phase (product name, column size: inner diameter 4.6 mm × column length: 250 mm, film thickness: 5 μm, manufactured by GL Sciences Inc.) Column temperature: 40℃ Eluent: toluene:acetonitrile = 10:90 (weight ratio) Eluent flow rate: 0.85 mL / min Detector: UV-visible absorbance detector (detection wavelength: 290 nm) Sample injection volume: 5 μL

[0272] Comparative Example 4: Thermal Stability Test of Phosphite Ligand A As a comparative example, a symmetric bisphosphite compound having only a t-Bu group at the o-position of the phosphite substituent was evaluated for thermal stability according to the following procedure.

[0273] The thermal decomposition rate of the bisphosphite compound was evaluated under the same conditions as in Example 7, except that 0.151 g of compound B in Example 7 was changed to 0.143 g (0.134 mmol) of phosphite ligand A. As a result, the decomposition rates of the bisphosphite compound after 88 hours, 183 hours, and 231 hours were 14.3 LC area %, 30.9 LC area %, and 39.0 LC area %, respectively.

[0274] The results of Example 7 and Comparative Example 4 are summarized in Table 5 below.

[0275] [Table 5]

[0276] The above evaluation results demonstrate that catalysts using the novel bisphosphite compounds of the present invention as ligands in hydroformylation reactions have excellent thermal decomposition resistance. The bisphosphite compounds of the present invention can exist stably in processes that involve heating, such as an aldehyde distillation step, and a step of recycling the catalyst and catalyst ligands to the hydroformylation reaction, demonstrating that they are industrially excellent ligands.

[0277] Although the present invention has been described in detail and with reference to specific embodiments, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit and scope of the invention. This application is based on Japanese Patent Application No. 2023-065067 filed on April 12, 2023 and Japanese Patent Application No. 2024-015052 filed on February 2, 2024, both of which are incorporated by reference in their entirety. [Industrial Applicability]

[0278] According to the present invention, a novel dihydroxybiphenyl compound having a bulky substituent in the ring structure and an asymmetric structure can be provided. By using a catalyst in which the bisphosphite compound produced from the dihydroxybiphenyl compound of the present invention is used as a starting material together with a metal component as a ligand, extremely excellent selectivity for linear aldehyde isomers can be obtained in the hydroformylation reaction.< / x>

Claims

1. A dihydroxybiphenyl compound represented by the following general formula (1): 【Chemistry 1】 (In formula (1), X is an alkylene group having 4 to 20 carbon atoms; R 1 and R 11 each independently represents a tertiary alkyl group having 4 to 20 carbon atoms; R 1 and X-R 11 are different from each other. R 2 and R 12 each independently represents a member selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, an alkylaryloxy group having 7 to 20 carbon atoms, an arylalkyl group having 7 to 20 carbon atoms, an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom; R 3 and R 13 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, and an arylalkyl group having 7 to 20 carbon atoms; R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom.

2. 2. The dihydroxybiphenyl compound according to claim 1, wherein X is an alkylene group having 4 to 20 carbon atoms including a quaternary carbon atom.

3. 3. The dihydroxybiphenyl compound according to claim 2, wherein X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom.

4. The dihydroxybiphenyl compound according to claim 3 , wherein X is an alkylene group having a structural unit represented by the following formula (1X): -C(CH 3 ) 2 -CH 2 - (1X)

5. The R 2 and R 12 is a hydrogen atom, and the R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; The R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom.

6. The R 1 , R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms; The R 4 and R 14 and each independently represent an alkyl group having 1 to 3 carbon atoms.

7. The R 1 , R 11 , R 3 and R 13 is a t-butyl group, The R 4 and R 14 The dihydroxybiphenyl compound according to claim 6, wherein is a methyl group.

8. A bisphosphite compound represented by the following general formula (2): 【Chemistry 2】 (In formula (2), X is an alkylene group having 4 to 20 carbon atoms; R 1 and R 11 each independently represents a tertiary alkyl group having 4 to 20 carbon atoms; R 1 and X-R 11 are different from each other. R 2 and R 12 each independently represents a member selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, an alkoxy group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, a cycloalkoxy group having 3 to 20 carbon atoms, a dialkylamino group having 2 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an aryloxy group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, an alkylaryloxy group having 7 to 20 carbon atoms, an arylalkyl group having 7 to 20 carbon atoms, an arylalkoxy group having 7 to 20 carbon atoms, a cyano group, a hydroxy group, and a halogen atom; R 3 and R 13 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 20 carbon atoms, a cycloalkyl group having 3 to 20 carbon atoms, an aryl group having 6 to 20 carbon atoms, an alkylaryl group having 7 to 20 carbon atoms, and an arylalkyl group having 7 to 20 carbon atoms; R 4 and R 14 each independently represents a group selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 12 carbon atoms, a cycloalkyl group having 3 to 12 carbon atoms, an alkoxy group having 1 to 12 carbon atoms, a silyl group, a siloxy group, and a halogen atom. Z 1 ~Z 4 each independently represents an aryl group having 6 to 20 carbon atoms, and may have a substituent, and the substituents may be bonded to each other to form a ring. 1 and Z 2 , and Z 3 and Z 4 may not be bonded to each other, or may be bonded to each other to form a ring structure.

9. 9. The bisphosphite compound according to claim 8, wherein X is an alkylene group having 4 to 20 carbon atoms, including a quaternary carbon atom.

10. 10. The bisphosphite compound according to claim 9, wherein X is an alkylene group having 4 to 5 carbon atoms including a quaternary carbon atom.

11. The bisphosphite compound according to claim 10, wherein the X is an alkylene group having a structural unit represented by the following formula (1X): -C(CH 3 ) 2 -CH 2 - (1X)

12. The R 2 and R 12 is a hydrogen atom, and the R 3 and R 13 are each independently a tertiary alkyl group having 4 to 20 carbon atoms; The R 4 and R 14 are each independently selected from the group consisting of a hydrogen atom, an alkyl group having 1 to 3 carbon atoms, an alkoxy group having 1 to 3 carbon atoms, and a halogen atom.

13. Said Z 1 ~Z 4 wherein each independently has no substituent on an aromatic ring carbon atom adjacent to the carbon atom bonded to the oxygen atom, or has a substituent having 0 to 2 carbon atoms on the aromatic ring carbon atom.

14. The R 1 , R 11 , R 3 and R 13 are each independently a tertiary alkyl group having 4 to 7 carbon atoms; The R 4 and R 14 are each independently an alkyl group having 1 to 3 carbon atoms.

15. Said Z 1 ~Z 4 are each independently a 1-naphthyl group or a 2-naphthyl group.

16. The R 1 , R 11 , R 3 and R 13 is a t-butyl group, and the R 4 and R 14 The bisphosphite compound according to claim 14, wherein is a methyl group.

17. A catalyst comprising a complex of the bisphosphite compound according to any one of claims 8 to 11 and a metal of Groups 8 to 10.

18. 18. The catalyst of claim 17, wherein the molar ratio of the bisphosphite compound to the Group 8-10 metal is 0.00004 to 500.

19. 19. The catalyst of claim 18, wherein the molar ratio of the bisphosphite compound to the Group 8-10 metal is 0.0002-100.

20. 20. The catalyst of claim 19, wherein the molar ratio of the bisphosphite compound to the Group 8-10 metal is 0.001 to 50.

21. A catalyst composition comprising a bisphosphite compound represented by the following general formula (3) and the bisphosphite compound according to any one of claims 8 to 11: 【Transformation 3】 (In formula (3), R 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 are R in the general formula (2), respectively. 1 , R 2 and R 12 , R 3 and R 13 , R 4 and R 14 , Z 1 ~Z 4 is synonymous with

22. The catalyst composition according to claim 21, wherein the content of the bisphosphite compound represented by the general formula (3) is 80.0% by mass or more, and the content of the bisphosphite compound according to any one of claims 8 to 11 is 0.01% by mass or more.

23. A method for producing an aldehyde, comprising reacting an olefin compound with carbon monoxide and hydrogen in the presence of a Group 8 to 10 metal compound and the bisphosphite compound according to any one of claims 8 to 11.

24. The method for producing an aldehyde according to claim 23, wherein the concentration of the Group 8 to 10 metal compound in the reaction solution is 0.05 to 5000 mg / L in terms of metal atom.

25. A method for producing an alcohol, comprising producing an aldehyde by the method for producing an aldehyde according to claim 23 and then reacting the aldehyde with hydrogen.

26. A method for producing an aldehyde, comprising reacting an olefinic compound with carbon monoxide and hydrogen in the presence of the catalyst of claim 17.

27. A method for producing an alcohol, comprising producing an aldehyde by the method for producing an aldehyde according to claim 26 and then reacting the aldehyde with hydrogen.

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