Process for producing olefin polymer

The described method improves polymerization activity and reduces fouling in olefin polymer production using a solid metallocene catalyst, ensuring stable and uniform polymerization outcomes.

JP7783708B2Active Publication Date: 2025-12-10MITSUI CHEMICALS INC
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Patent Information

Application Number
JP2021137319
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-25
Filing Date
2021-08-25
Publication Date
2025-12-10
Estimated Expiration
2041-08-25

AI Technical Summary

Technical Problem

Existing methods for producing olefin polymers using metallocene catalysts face issues with polymerization activity and fouling, leading to unstable reactor operation and non-uniform polymerization results.

Method used

A method involving a transition metal compound, an organometallic compound, an organoaluminum oxy compound, and a microparticle carrier, followed by prepolymerization and contact with an amine compound to form a prepolymerized solid catalyst, which is then used for olefin polymerization.

Benefits of technology

This method enhances polymerization activity while suppressing fouling, resulting in stable and uniform production of olefin polymers with a narrow composition distribution.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method of manufacturing an olefin polymer with high polymerization activity while suppressing fowling during polymerization by using a metallocene system solid catalyst.SOLUTION: A manufacturing method of an olefin polymer comprising: a step of forming a solid catalyst component containing a transition metal compound (A) represented by the following formula. (M is a periodic table group 4 transition metal atom, n is an integer of 1 to 4, X is a halogen atom or the like, at least two R1 are a hydrocarbon group of 1 to 2 carbons, other R1 is hydrogen atom, R2 is hydrogen atom, hydrocarbon group or the like); a step of preliminary polymerizing olefin under the presence of the solid catalyst component to form a preliminary polymerizing solid catalyst component; a step of contacting the preliminary polymerization solid catalyst component with a predetermined amine compound to form a solid catalyst; and a step of polymerizing olefine under the presence of the solid catalyst.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a process for producing an olefin polymer. [Background technology]

[0002] Linear low-density polyethylene (LLDPE) is widely used, primarily for packaging applications such as laminating films, industrial films, heavy-duty packaging bags, tubes, and food packaging, due to its excellent physical properties and moldability. The properties required of LLDPE vary depending on the molding method and application. For example, during inflation molding, a polymer with a narrow compositional distribution is required to prevent stickiness (blocking) of molded products such as films. Ethylene-based polymers obtained using metallocene catalysts are known for their narrow compositional distribution and reduced blocking.

[0003] For example, Patent Document 1 discloses a method for obtaining a polymer product having a narrow composition distribution by polymerizing an olefinically unsaturated monomer using a metallocene in which one of the two cyclopentadienyl rings has a substituent having 3 or more carbon atoms and the other has two or more substituents.

[0004] Furthermore, Patent Document 2 discloses an ethylene polymer having a narrow composition distribution, which is obtained using a metallocene in which one of two cyclopentadienyl rings is unsubstituted or has a substituent having at least 3 or more carbon atoms, and the other has at least one substituent selected from a methyl group, an ethyl group, and an aryl group.

[0005] On the other hand, when olefin polymers such as polyethylene, polypropylene, ethylene-α-olefin copolymer, and propylene-α-olefin copolymer are produced by (co)polymerizing olefins in the presence of a solid metallocene catalyst, if a fluidized bed reactor is used to carry out gas phase polymerization of olefins in the presence of a solid metallocene catalyst, polymer lumps, sheets, etc. may be generated in the fluidized bed, or the fluidity of the polymer particles may decrease, resulting in a non-uniform mixed state in the fluidized bed and making it impossible to operate the reactor stably for a long period of time.

[0006] Furthermore, when slurry polymerization is carried out in the presence of such a metallocene-based solid catalyst, polymer lumps, sheet-like products, etc. are generated in the polymerization vessel, and the polymer adheres to the stirring blades, making it impossible to carry out stable continuous operation over a long period of time.

[0007] Patent Documents 3 and 4 describe that these problems can be solved by using a prepolymerized catalyst carrying an antistatic agent as a metallocene solid catalyst. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] Special Publication No. 2000-514494 [Patent Document 2] Japanese Patent Application Publication No. 10-251334 [Patent Document 3] Japanese Patent Application Laid-Open No. 2000-297114 [Patent Document 4] Japanese Patent Application Laid-Open No. 2001-48912 Summary of the Invention [Problem to be solved by the invention]

[0009] The ethylene polymers proposed in the above Patent Documents 1 and 2 have room for further improvement in terms of polymerization activity and suppression of fouling during polymerization. An object of the present invention is to provide a method for producing an olefin polymer with high polymerization activity while suppressing fouling during polymerization, using a solid metallocene catalyst capable of producing an olefin polymer with a narrow composition distribution as disclosed in Patent Document 1 and Patent Document 2. [Means for solving the problem]

[0010] The present invention relates to, for example, the following [1] to [2]. [1] (A) a transition metal compound represented by the following general formula (1),

[0011] [ka]

[0012] [In general formula (1), M is a transition metal atom of Group 4 of the periodic table; n is an integer of 1 to 4 selected so that the transition metal compound (A) is electrically neutral; X represents a hydrogen atom, a halogen atom, a hydrocarbon group, an anionic ligand, or a neutral ligand capable of coordinating with a lone electron pair, and the anionic ligand is a halogen-containing group, a silicon-containing group, an oxygen-containing group, a sulfur-containing group, a nitrogen-containing group, a phosphorus-containing group, a boron-containing group, an aluminum-containing group, or a conjugated diene derivative group, and when n is 2 or more, the multiple groups represented by X may be the same or different and may be bonded to each other to form a ring; R 1 are each independently a hydrogen atom or a hydrocarbon group having 1 to 2 carbon atoms, and at least two R 1 is a hydrocarbon group having 1 to 2 carbon atoms, and adjacent R 1 may be bonded to each other to form a ring which may have a substituent, R 2 are each independently a hydrogen atom, a halogen atom, a hydrocarbon group having 1 to 40 carbon atoms, a halogen-containing group, a silicon-containing group, an oxygen-containing group, a nitrogen-containing group, or a sulfur-containing group, and at least one R 2 is a saturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion or a terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion, and at least two R 2 is a hydrogen atom, and the adjacent R 2 may be bonded to each other to form a ring which may have a substituent. (B) (B-1) Organometallic compound, (B-2) an organoaluminum oxy compound, and (B-3) A compound that reacts with the transition metal compound (A) to form an ion pair At least one compound selected from the group consisting of: (C) Microparticle carriers (I) forming a solid catalyst component by contacting Step (II) of prepolymerizing an olefin in the presence of the solid catalyst component to form a prepolymerized solid catalyst component; the prepolymerized solid catalyst component and an amine compound (D) represented by the following general formula (2):

[0013] [ka]

[0014] [In general formula (2), R 3 is a hydrocarbon group having 1 to 30 carbon atoms, and R 4 is a hydrogen atom or a hydrocarbon group having 1 to 20 carbon atoms. 4 Multiple R when there are multiple 4 are each independently defined as above. m and n are each independently an integer of 0 or greater, and m+n is 1 or greater. (III) forming a prepolymerized solid catalyst for olefin polymerization; and Step (IV) of polymerizing an olefin in the presence of the prepolymerized solid catalyst for olefin polymerization. A method for producing an olefin polymer comprising the steps of:

[0015] [2] The method for producing an olefin polymer according to [1] above, wherein the step of polymerizing an olefin is a step of homopolymerizing ethylene or a step of copolymerizing ethylene with an α-olefin having from 3 to 20 carbon atoms. [Effects of the Invention]

[0016] According to the present invention, in a method for producing an olefin polymer using a predetermined solid metallocene catalyst capable of producing an olefin polymer having a narrow composition distribution, it is possible to produce an olefin polymer with high polymerization activity while suppressing fouling during polymerization. DETAILED DESCRIPTION OF THE INVENTION

[0017] The process for producing an olefin polymer of the present invention will be explained in more detail below. The method for producing an olefin polymer of the present invention comprises the steps of: Step (I) of contacting a transition metal compound (A), a compound (B), and a particulate support (C) to form a solid catalyst component; Step (II) of prepolymerizing an olefin in the presence of the solid catalyst component to form a prepolymerized solid catalyst component; a step (III) of contacting the prepolymerized solid catalyst component with an amine compound (D) to form a prepolymerized solid catalyst for olefin polymerization; and Step (IV) of polymerizing an olefin in the presence of the prepolymerized solid catalyst for olefin polymerization. Contains:

[0018] <Process (I)> In step (I), a transition metal compound (A), a compound (B), and a particulate support (C) are contacted to form a solid catalyst component.

[0019] (Transition metal compound (A)) The transition metal compound (A) is represented by the following general formula (1).

[0020] [ka]

[0021] <M、n、X> In formula (1), M is a Group 4 transition metal atom, preferably a zirconium atom or a hafnium atom, and more preferably a zirconium atom.

[0022] n is an integer of 1 to 4, preferably 1 or 2, that satisfies the valence of the transition metal atom M. X is a hydrogen atom, a halogen atom, a hydrocarbon group, an anionic ligand, or a neutral ligand capable of coordinating with a lone electron pair, and the anionic ligand is a halogen-containing group, a silicon-containing group, an oxygen-containing group, a sulfur-containing group, a nitrogen-containing group, a phosphorus-containing group, a boron-containing group, an aluminum-containing group, or a conjugated diene derivative group.

[0023] X is preferably a hydrogen atom, a halogen atom, a hydrocarbon group having 1 to 20 carbon atoms, a silicon-containing group or an oxygen-containing group. When n is 2 or more, the multiple Xs may be the same or different and may be bonded to each other to form a ring. When multiple rings are present, the rings may be the same or different.

[0024] The halogen atom includes fluorine, chlorine, bromine, iodine, etc., and is preferably chlorine or bromine. Examples of the hydrocarbon group include: linear or branched alkyl groups such as methyl, ethyl, 1-propyl, 1-butyl, 1-pentyl, 1-hexyl, 1-heptyl, 1-octyl, isopropyl, sec-butyl (butan-2-yl), tert-butyl (2-methylpropan-2-yl), isobutyl (2-methylpropyl), pentan-2-yl, 2-methylbutyl, isopentyl (3-methylbutyl), neopentyl (2,2-dimethylpropyl), cyamyl (1,2-dimethylpropyl), isohexyl (4-methylpentyl), 2,2-dimethylbutyl, 2,3-dimethylbutyl, 3,3-dimethylbutyl, thexyl (2,3-dimethylbut-2-yl), and 4,4-dimethylpentyl; Vinyl group, allyl group, propenyl group (prop-1-en-1-yl group), iso-propenyl group (prop-1-en-2-yl group), allenyl group (propa-1,2-dien-1-yl group), but-3-en-1-yl group, crotyl group (but-2-en-1-yl group), but-3-en-2-yl group, methallyl group (2-methylallyl group), buta-1,3-dienyl group, pentaerythritol group, linear or branched alkenyl groups or unsaturated double bond-containing groups such as pent-4-en-1-yl, pent-3-en-1-yl, pent-2-en-1-yl, iso-pentenyl (3-methylbut-3-en-1-yl), 2-methylbut-3-en-1-yl, pent-4-en-2-yl, and prenyl (3-methylbut-2-en-1-yl); linear or branched alkynyl groups or unsaturated triple bond-containing groups such as ethynyl, prop-2-yn-1-yl, and propargyl (prop-1-yn-1-yl) groups; Aromatic-containing linear or branched alkyl groups and unsaturated double bond-containing groups, such as benzyl group, 2-methylbenzyl group, 4-methylbenzyl group, 2,4,6-trimethylbenzyl group, 3,5-dimethylbenzyl group, cuminyl group (4-isopropylbenzyl group), 2,4,6-tri-isopropylbenzyl group, 4-tert-butylbenzyl group, 3,5-di-tert-butylbenzyl group, 1-phenylethyl group, and benzhydryl group (diphenylmethyl group); cyclic saturated hydrocarbon groups such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, cycloheptatrienyl, norbornyl, norbornenyl, 1-adamantyl, and 2-adamantyl; Aromatic substituents such as phenyl, tolyl (methylphenyl), xylyl (dimethylphenyl), mesityl (2,4,6-trimethylphenyl), cumenyl (isopropylphenyl), duralyl (2,3,5,6-tetramethylphenyl), 2,6-di-isopropylphenyl, 2,4,6-tri-isopropylphenyl, 4-tert-butylphenyl, 3,5-di-tert-butylphenyl, naphthyl, biphenyl, terphenyl, binaphthyl, acenaphthalenyl, phenanthryl, anthracenyl, pyrenyl, and ferrocenyl groups Examples include:

[0025] Among the hydrocarbon groups, a methyl group, an isobutyl group, a neopentyl group, a cyamyl group, a benzyl group, a phenyl group, a tolyl group, a xylyl group, a mesityl group, and a cumenyl group are preferred.

[0026] Examples of the halogen-containing group include a fluoromethyl group, a trifluoromethyl group, a trichloromethyl group, a pentafluoroethyl group, a 2,2,2-trifluoroethyl group, a fluorophenyl group, a difluorophenyl group, a trifluorophenyl group, a tetrafluorophenyl group, a pentafluorophenyl group, a trifluoromethylphenyl group, a bistrifluoromethylphenyl group, and a hexachloroantimonate anion.

[0027] Among the halogen-containing groups, a pentafluorophenyl group is preferred. Examples of the silicon-containing group include a trimethylsilyl group, a triethylsilyl group, a tri-isopropylsilyl group, a diphenylmethylsilyl group, a tert-butyldimethylsilyl group, a tert-butyldiphenylsilyl group, a triphenylsilyl group, a tris(trimethylsilyl)silyl group, and a trimethylsilylmethyl group.

[0028] Among the silicon-containing groups, a trimethylsilylmethyl group is preferred. Examples of the oxygen-containing group include a hydroxyl group, a methoxy group, an ethoxy group, an n-propoxy group, an iso-propoxy group, an allyloxy group, an n-butoxy group, a sec-butoxy group, an iso-butoxy group, a tert-butoxy group, a benzyloxy group, a methoxymethoxy group, a phenoxy group, a 2,6-dimethylphenoxy group, a 2,6-di-isopropylphenoxy group, a 2,6-di-tert-butylphenoxy group, a 2,4,6-trimethylphenoxy group, a 2,4,6-tri-isopropylphenoxy group, an acetoxy group, a pivaloyloxy group, a benzoyloxy group, a trifluoroacetoxy group, a perchlorate anion, and a periodate anion.

[0029] Among the oxygen-containing groups, a methoxy group, an ethoxy group, an iso-propoxy group, and a tert-butoxy group are preferred. Examples of the sulfur-containing group include a mesyl group (methanesulfonyl group), a phenylsulfonyl group, a tosyl group (p-toluenesulfonyl group), a triflyl group (trifluoromethanesulfonyl group), a nonaflyl group (nonafluorobutanesulfonyl group), a mesylate group (methanesulfonate group), a tosylate group (p-toluenesulfonate group), a triflate group (trifluoromethanesulfonate group), and a nonaflate group (nonafluorobutanesulfonate group).

[0030] Among the sulfur-containing groups, triflate (trifluoromethanesulfonate) is preferred. Examples of the nitrogen-containing group include an amino group, a cyano group, a methylamino group, a dimethylamino group, an ethylamino group, a diethylamino group, an allylamino group, a diallylamino group, a benzylamino group, a dibenzylamino group, a pyrrolidinyl group, a piperidinyl group, a morpholyl group, a pyrrolyl group, and a bistriflylimide group.

[0031] Among the nitrogen-containing groups, a dimethylamino group, a diethylamino group, a pyrrolidinyl group, a pyrrolyl group, and a bistriflylimide group are preferred. The phosphorus-containing group may, for example, be a hexafluorophosphate anion.

[0032] Examples of the boron-containing group include tetrafluoroborate anion, tetrakis(pentafluorophenyl)borate anion, (methyl)(tris(pentafluorophenyl))borate anion, (benzyl)(tris(pentafluorophenyl))borate anion, tetrakis((3,5-bistrifluoromethyl)phenyl)borate anion, and groups represented by BR4 (each R independently represents hydrogen, an alkyl group, an aryl group which may have a substituent, a halogen atom, or the like).

[0033] Examples of the aluminum-containing group include:

[0034] [ka]

[0035] [ka]

[0036] (M represents M in the general formula (1) above.) Examples of suitable groups include groups represented by AlR4 (wherein R represents hydrogen, an alkyl group, an aryl group which may have a substituent, a halogen atom, or the like) which can form the following formula:

[0037] Examples of the conjugated diene derivative group include a 1,3-butadienyl group, an isoprenyl group (2-methyl-1,3-butadienyl group), a piperylenyl group (1,3-pentadienyl group), a 2,4-hexadienyl group, a 1,4-diphenyl-1,3-pentadienyl group, a cyclopentadienyl group, and a metallocyclopentene group.

[0038] Examples of neutral ligands capable of coordinating with lone electron pairs include ethers such as diethyl ether, tetrahydrofuran, dioxane, and 1,2-dimethoxyethane; amines such as triethylamine and diethylamine; heterocyclic compounds such as pyridine, picoline, lutidine, oxazoline, oxazole, thiazole, imidazole, and thiophene; and organic phosphorus compounds such as triphenylphosphine, tricyclohexylphosphine, and tri-tert-butylphosphine.

[0039] <R 1 > In the general formula (1), R 1 are each independently a hydrogen atom or a hydrocarbon group having 1 to 2 carbon atoms, and there are at least two, preferably four or more R 1 is a hydrocarbon group having 1 to 2 carbon atoms.

[0040] Specific examples of the hydrocarbon group having 1 to 2 carbon atoms include a methyl group, an ethyl group, a vinyl group, and an ethynyl group. Among these, a methyl group and an ethyl group are preferred, and a methyl group is more preferred.

[0041] Adjacent R 1 They may be bonded to each other to form a ring which may have a substituent, or may not be bonded to each other, and preferably are not bonded to each other. The ring is preferably a 5- or 6-membered ring, and examples of the structure formed by combining the ring with the cyclopentadienyl ring moiety of the mother nucleus include a tetrahydropentalenyl ring, a tetrahydroindenyl ring, a pentalenyl ring, and an indenyl ring.

[0042] <R 2 > R 2 are each independently a hydrogen atom, a halogen atom, a hydrocarbon group having 1 to 40 carbon atoms, a halogen-containing group, a silicon-containing group, an oxygen-containing group, a nitrogen-containing group, or a sulfur-containing group, and at least one R 2is a saturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion or a terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion, and at least two R 2 is a hydrogen atom.

[0043] Adjacent R 2 They may be bonded to each other to form a ring which may have a substituent, or may not be bonded to each other, and preferably are not bonded to each other. Examples of the halogen atom include a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom.

[0044] Examples of the hydrocarbon group having 1 to 40 carbon atoms include hydrocarbon groups having 1 to 20 carbon atoms, and more specific examples include the specific hydrocarbon groups given as examples of X above.

[0045] The hydrocarbon group having 1 to 40 carbon atoms is preferably a hydrocarbon group having 1 to 20 carbon atoms (excluding aromatic hydrocarbon groups) or an aromatic hydrocarbon group having 6 to 40 carbon atoms. The hydrocarbon group having 1 to 20 carbon atoms is preferably an aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms. The hydrocarbon group having 1 to 20 carbon atoms also includes a substituent having an aromatic structure such as an arylalkyl group.

[0046] Examples of the hydrocarbon group having 1 to 40 carbon atoms include: Methyl, ethyl, 1-propyl, 1-butyl, 1-pentyl, 1-hexyl, 1-heptyl, 1-octyl, 1-nonyl, 1-decanyl, 1-undecanyl, 1-dodecanyl, 1-eicosanyl, isopropyl, sec-butyl, tert-butyl, isobutyl, pentan-2-yl, 2-methylbutyl, isopentyl, neopentyl, tert-pentyl (1,1-dimethylpropyl), cyamyl, pentan-3-yl, 2-methylpentyl, 3-methylpentyl, isohexyl, 1,1-dimethylbutyl (2-methylpentan-2-yl), 3-methylpentane linear or branched alkyl groups having 1 to 40 carbon atoms, such as 2-methylpentan-2-yl, 4-methylpentan-2-yl, 2,2-dimethylbutyl, 2,3-dimethylbutyl, 3,3-dimethylbutyl, thexyl, 3-methylpentan-3-yl, 3,3-dimethylbut-2-yl, hexane-3-yl, 2-methylpentan-3-yl, heptan-4-yl, 2,4-dimethylpentan-2-yl, 3-ethylpentan-3-yl, 4,4-dimethylpentyl, 4-methylheptan-4-yl, 4-propylheptan-4-yl, 2,3,3-trimethylbutan-2-yl, and 2,4,4-trimethylpentan-2-yl; Vinyl group, allyl group, propenyl group, isopropenyl group, allenyl group, but-3-en-1-yl group, crotyl group, but-3-en-2-yl group, methallyl group, but-1,3-dienyl group, pent-4-en-1-yl group, pent-3-en-1-yl group, pent-2-en-1-yl group, isopentenyl group, 2-methylbut-3-en-1-yl group, pent-4-en-2-yl group, prenyl group, 2-methyl-but-2-en-1- yl group, pent-3-en-2-yl group, 2-methyl-but-3-en-2-yl group, pent-1-en-3-yl group, penta-2,4-dien-1-yl group, penta-1,3-dien-1-yl group, penta-1,4-dien-3-yl group, iso-prenyl group (2-methyl-but-1,3-dien-1-yl group), penta-2,4-dien-2-yl group, hex-5-en-1-yl group, hex-4-en-1-yl group, hex-3-en- 1-yl group, hex-2-en-1-yl group, 4-methyl-pent-4-en-1-yl group, 3-methyl-pent-4-en-1-yl group, 2-methyl-pent-4-en-1-yl group, hex-5-en-2-yl group, 4-methyl-pent-3-en-1-yl group, 3-methyl-pent-3-en-1-yl group, 2,3-dimethyl-but-2-en-1-yl group, 2-methylpent-4-en-2-yl group, 3-ethyl-pent-1-en-3 linear or branched alkenyl groups or unsaturated double bond-containing groups having 2 to 40 carbon atoms, such as a 2-(cyclopentadienyl)-yl group, a hexa-3,5-dien-1-yl group, a hexa-2,4-dien-1-yl group, a 4-methylpenta-1,3-dien-1-yl group, a 2,3-dimethyl-buta-1,3-dien-1-yl group, a hexa-1,3,5-trien-1-yl group, a 2-(cyclopentadienyl)propan-2-yl group, or a 2-(cyclopentadienyl)ethyl group;

[0047] Ethynyl group, prop-2-yn-1-yl group, propargyl group, but-1-yn-1-yl group, but-2-yn-1-yl group, but-3-yn-1-yl group, pent-1-yn-1-yl group, pent-2-yn-1-yl group, pent-3-yn-1-yl group, pent-4-yn-1-yl group, 3-methyl-but-1-yn-1-yl group, pent-3-yn-2-yl group, 2-methyl-but-3-yn-1-yl group linear or branched alkynyl groups or unsaturated triple bond-containing groups having 2 to 40 carbon atoms, such as pent-1-yn-yl, pent-4-yn-2-yl, hex-1-yn-1-yl, 3,3-dimethyl-but-1-yn-1-yl, 2-methyl-pent-3-yn-2-yl, 2,2-dimethyl-but-3-yn-1-yl, hex-4-yn-1-yl, and hex-5-yn-1-yl; Benzyl group, 2-methylbenzyl group, 4-methylbenzyl group, 2,4,6-trimethylbenzyl group, 3,5-dimethylbenzyl group, cuminyl group, 2,4,6-tri-isopropylbenzyl group, 4-tert-butylbenzyl group, 3,5-di-tert-butylbenzyl group, 1-phenylethyl group, benzhydryl group, cumyl group (2-phenylpropan-2-yl group), 2-(4-methylphenyl)propan-2-yl group, 2-(3,5-dimethylphenyl)propan-2-yl group, 2-(4-tert-butylphenyl)propan-2-yl group, 2-(3,5-di-tert-butylphenyl)propan-2-yl group, 3-phenylpentan-3-yl group, 4-phenylhepta-1, 6-dien-4-yl group, 1,2,3-triphenylpropan-2-yl group, 1,1-diphenylethyl group, 1,1-diphenylpropyl group, 1,1-diphenyl-but-3-en-1-yl group, 1,1,2-triphenylethyl group, trityl group (triphenylmethyl group), tri-(4-methylphenyl)methyl group, 2-phenylethyl group, styryl group (2-phenylvinyl group), 2-(2-methylphenyl)ethyl group, 2-(4-methylphenyl)ethyl group, 2-(2,4,6-trimethylphenyl)ethyl group, 2-(3,5-dimethylphenyl)ethyl group, 2-(2,4,6-tri-isopropylphenyl)ethyl group, 2-(4-tert-butylphenyl)ethyl group, 2-(3,(5-di-tert-butylphenyl)ethyl group, 2-methyl-1-phenylpropan-2-yl group, 3-phenylpropyl group, cinnamyl group (3-phenylallyl group), neophyl group (2-methyl-2-phenylpropyl group), 3-methyl-3-phenylbutyl group, 2-methyl-4-phenylbutan-2-yl group, cyclopentadienyldiphenylmethyl group, 2-(1-indenyl)propan-2-yl group, (1-indenyl)diphenylmethyl group, 2-(1-indenyl)ethyl group, 2-(tetrahydro-1-indacenyl)propan-2-yl group, (tetrahydro-1-indacenyl) Aromatic-containing linear or branched alkyl groups and unsaturated double bond-containing groups having 7 to 40 carbon atoms, such as diphenylmethyl group, 2-(tetrahydro-1-indacenyl)ethyl group, 2-(1-benzoindenyl)propan-2-yl group, (1-benzoindenyl)diphenylmethyl group, 2-(1-benzoindenyl)ethyl group, 2-(9-fluorenyl)propan-2-yl group, (9-fluorenyl)diphenylmethyl group, 2-(9-fluorenyl)ethyl group, 2-(1-azulenyl)propan-2-yl group, (1-azulenyl)diphenylmethyl group, and 2-(1-azulenyl)ethyl group;

[0048] Cyclopropyl group, cyclobutyl group, cyclopentyl group, cyclopentenyl group, cyclopentadienyl group, dimethylcyclopentadienyl group, n-butylcyclopentadienyl group, n-butyl-methylcyclopentadienyl group, tetramethylcyclopentadienyl group, 1-methylcyclopentyl group, 1-allylcyclopentyl group, 1-benzylcyclopentyl group, cyclohexyl group, cyclohexenyl group, cyclohexadienyl group, 1-methylcyclohex Sil group, 1-allylcyclohexyl group, 1-benzylcyclohexyl group, cycloheptyl group, cycloheptenyl group, cycloheptatrienyl group, 1-methylcycloheptyl group, 1-allylcycloheptyl group, 1-benzylcycloheptyl group, cyclooctyl group, cyclooctenyl group, cyclooctadienyl group, cyclooctatrienyl group, 1-methylcyclooctyl group, 1-allylcyclooctyl group, 1-benzylcyclooctyl group, 4-cyclohexyl- tert-butyl group, norbornyl group, norbornenyl group, norbornadienyl group, 2-methylbicyclo[2.2.1]heptan-2-yl group, 7-methylbicyclo[2.2.1]heptan-7-yl group, bicyclo[2.2.2]octan-1-yl group, bicyclo[2.2.2]octan-2-yl group, 1-adamantyl group, 2-adamantyl group, 1-(2-methyladamantyl), 1-(3-methyladamantyl), 1-(4-methyladamantyl), 1 cyclic saturated and unsaturated hydrocarbon groups having 3 to 40 carbon atoms, such as -(2-phenyladamantyl), 1-(3-phenyladamantyl), 1-(4-phenyladamantyl), 1-(3,5-dimethyladamantyl), 1-(3,5,7-trimethyladamantyl), 1-(3,5,7-triphenyladamantyl), pentalenyl, indenyl, fluorenyl, indacenyl, tetrahydroindacenyl, benzoindenyl, and azulenyl; Aromatic substituents having 6 to 40 carbon atoms, such as phenyl, tolyl, xylyl, mesityl, cumenyl, duryl, 2,6-di-isopropylphenyl, 2,4,6-tri-isopropylphenyl, 4-tert-butylphenyl, 3,5-di-tert-butylphenyl, allylphenyl, (but-3-en-1-yl)phenyl, (but-2-en-1-yl)phenyl, methallylphenyl, prenylphenyl, 4-adamantylphenyl, 3,5-di-adamantylphenyl, naphthyl, biphenyl, terphenyl, binaphthyl, acenaphthalenyl, phenanthryl, anthracenyl, pyrenyl, and ferrocenyl groups Examples include:

[0049] Among the linear or branched alkyl groups having 1 to 40 carbon atoms, a methyl group, an ethyl group, a 1-propyl group, a 1-butyl group, a 1-pentyl group, a 1-hexyl group, a 1-heptyl group, a 1-octyl group, an isopropyl group, a sec-butyl group, a tert-butyl group, an isobutyl group, an isopentyl group, a neopentyl group, a tert-pentyl group, a pentan-3-yl group, an isohexyl group, a 1,1-dimethylbutyl group, a 3,3-dimethylbutyl group, a thexyl group, a 3-methylpentan-3-yl group, a heptane-4 A methyl group, an ethyl group, a 1-propyl group, a 1-butyl group, a 1-pentyl group, a 1-hexyl group, an isopropyl group, a tert-butyl group, a neopentyl group, a 2,4-dimethylpentan-2-yl group, and a 2,4,4-trimethylpentan-2-yl group are preferred, and a methyl group, an ethyl group, a 1-propyl group, a 1-butyl group, a 1-pentyl group, a 1-hexyl group, an isopropyl group, a tert-butyl group, a neopentyl group, a 2,4-dimethylpentan-2-yl group, and a 2,4,4-trimethylpentan-2-yl group are more preferred.

[0050] Among the linear or branched alkenyl groups or unsaturated double bond-containing groups having 2 to 40 carbon atoms, a vinyl group, an allyl group, a but-3-en-1-yl group, a crotyl group, a methallyl group, a pent-4-en-1-yl group, a prenyl group, a penta-1,4-dien-3-yl group, a hex-5-en-1-yl group, a 2-methylpent-4-en-2-yl group, a 2-(cyclopentadienyl)propan-2-yl group, a 2-(cyclopentadienyl)ethyl group, and the like are preferred, and a vinyl group, an allyl group, a but-3-en-1-yl group, a pent-4-en-1-yl group, a prenyl group, and a hex-5-en-1-yl group are more preferred.

[0051] Among the linear or branched alkynyl groups or unsaturated triple bond-containing groups having 2 to 40 carbon atoms, an ethynyl group, a propargyl group, a but-2-yn-1-yl group, a but-3-yn-1-yl group, a penta-3-yn-1-yl group, a penta-4-yn-1-yl group, a 3-methyl-but-1-yn-1-yl group, a 3,3-dimethyl-but-1-yn-1-yl group, a hex-4-yn-1-yl group, a hex-5-yn-1-yl group, and the like are preferred, and a propa-2-yn-1-yl group, a propargyl group, a but-2-yn-1-yl group, and a but-3-yn-1-yl group are more preferred.

[0052] Among the aromatic-containing linear or branched alkyl groups and unsaturated double bond-containing groups having 7 to 40 carbon atoms, benzyl group, 2-methylbenzyl group, 4-methylbenzyl group, 2,4,6-trimethylbenzyl group, 3,5-dimethylbenzyl group, cuminyl group, 2,4,6-tri-iso-propylbenzyl group, 4-tert-butylbenzyl group, 3,5-di-tert-butylbenzyl group, benzhydryl group, cumyl group, 1,1-diphenylethyl group, trityl group, 2-phenylethyl group, 2-(4-methylphenyl)ethyl group, 2-(2,4,6-trimethylphenyl)ethyl group, 2-(3,5-dimethylphenyl)ethyl group, 2-(2,4,6-tri-iso-propylphenyl)ethyl group, 2-(4-t Preferred are a 2-(3,5-di-tert-butylphenyl)ethyl group, a 2-(3,5-di-tert-butylphenyl)ethyl group, a styryl group, a 2-methyl-1-phenylpropan-2-yl group, a 3-phenylpropyl group, a cinnamyl group, a neophyl group, a cyclopentadienyldiphenylmethyl group, a 2-(1-indenyl)propan-2-yl group, a (1-indenyl)diphenylmethyl group, a 2-(1-indenyl)ethyl group, a 2-(9-fluorenyl)propan-2-yl group, a (9-fluorenyl)diphenylmethyl group, and a 2-(9-fluorenyl)ethyl group, and more preferred are a benzyl group, a benzhydryl group, a cumyl group, a 1,1-diphenylethyl group, a trityl group, a 2-phenylethyl group, a 3-phenylpropyl group, and a cinnamyl group.

[0053] Among the above-mentioned cyclic saturated and unsaturated hydrocarbon groups having 3 to 40 carbon atoms, a cyclopropyl group, a cyclobutyl group, a cyclopentyl group, a cyclopentenyl group, a cyclopentadienyl group, a 1-methylcyclopentyl group, a 1-allylcyclopentyl group, a 1-benzylcyclopentyl group, a cyclohexyl group, a cyclohexenyl group, a 1-methylcyclohexyl group, a 1-allylcyclohexyl group, a 1-benzylcyclohexyl group, a cycloheptyl group, a cycloheptenyl group, a cycloheptatrienyl group, a 1-methylcycloheptyl group, a 1-allylcycloheptyl group, a 1-benzylcyclopentyl group, a cyclohexyl group, a cyclohexenyl group, a cycloheptyl group, a cycloheptatrienyl group, a 1-methylcycloheptyl group, a 1-allylcycloheptyl group, a cyclohex ...hexyl group, a cyclohexyl group, a cyclohexyl group, a cyclohexyl group, a cyclohexyl group, a Preferred are cycloheptyl, cyclooctyl, cyclooctenyl, cyclooctadienyl, 4-cyclohexyl-tert-butyl, norbornyl, 2-methylbicyclo[2.2.1]heptan-2-yl, bicyclo[2.2.2]octan-1-yl, 1-adamantyl, 2-adamantyl, pentalenyl, indenyl, and fluorenyl groups, and more preferred are cyclopentyl, cyclopentenyl, 1-methylcyclopentyl, cyclohexyl, cyclohexenyl, 1-methylcyclohexyl, and 1-adamantyl groups.

[0054] Among the aromatic substituents having 6 to 40 carbon atoms, a phenyl group, a tolyl group, a xylyl group, a mesityl group, a cumenyl group, a 2,6-di-isopropylphenyl group, a 2,4,6-tri-isopropylphenyl group, a 4-tert-butylphenyl group, a 3,5-di-tert-butylphenyl group, an allylphenyl group, a prenylphenyl group, a 4-adamantylphenyl group, a naphthyl group, a biphenyl group, a terphenyl group, a binaphthyl group, a phenanthryl group, an anthracenyl group, a ferrocenyl group, and the like are preferred, and a phenyl group, a tolyl group, a xylyl group, a mesityl group, a cumenyl group, a 2,6-di-isopropylphenyl group, a 2,4,6-tri-isopropylphenyl group, a 4-tert-butylphenyl group, a 3,5-di-tert-butylphenyl group, an allylphenyl group, a 4-adamantylphenyl group, a naphthyl group, a biphenyl group, a phenanthryl group, and an anthracenyl group are more preferred.

[0055] Examples of the halogen-containing group include a fluoromethyl group, a trifluoromethyl group, a trichloromethyl group, a pentafluoroethyl group, a 2,2,2-trifluoroethyl group, a heptafluoropropyl group, a 3,3,3-trifluoropropyl group, a nonafluorobutyl group, a 4,4,4-trifluorobutyl group, a dodecafluorohexyl group, a 6,6,6-trifluorohexyl group, a chlorophenyl group, a fluorophenyl group, a difluorophenyl group, a trifluorophenyl group, a tetrafluorophenyl group, a pentafluorophenyl group, a di-tert-butyl-fluorophenyl group, a trifluoromethylphenyl group, a bistrifluoromethylphenyl group, a trifluoromethoxyphenyl group, a bistrifluoromethoxyphenyl group, a trifluoromethylthiophenyl group, a bistrifluoromethylthiophenyl group, a fluorobiphenyl group, a difluorobiphenyl group, Examples thereof include a trifluorobiphenyl group, a tetrafluorobiphenyl group, a pentafluorobiphenyl group, a di-tert-butyl-fluorobiphenyl group, a trifluoromethylbiphenyl group, a bistrifluoromethylbiphenyl group, a trifluoromethoxybiphenyl group, a bistrifluoromethoxybiphenyl group, a trifluoromethyldimethylsilyl group, a trifluoromethoxy group, a pentafluoroethoxy group, a fluorophenoxy group, a difluorophenoxy group, a trifluorophenoxy group, a pentafluorophenoxy group, a di-tert-butyl-fluorophenoxy group, a trifluoromethylphenoxy group, a bistrifluoromethylphenoxy group, a trifluoromethoxyphenoxy group, a bistrifluoromethoxyphenoxy group, a difluoromethylenedioxyphenyl group, a bistrifluoromethylphenyliminomethyl group, and a trifluoromethylthio group.

[0056] Among the halogen-containing groups, a fluoromethyl group, a trifluoromethyl group, a pentafluoroethyl group, a 2,2,2-trifluoroethyl group, a 3,3,3-trifluoropropyl group, a 4,4,4-trifluorobutyl group, a fluorophenyl group, a difluorophenyl group, a trifluorophenyl group, a tetrafluorophenyl group, a pentafluorophenyl group, a trifluoromethylphenyl group, a bistrifluoromethylphenyl group, a trifluoromethoxyphenyl group, a pentafluorobiphenyl group, a trifluoromethylbiphenyl group, a bistrifluoromethylbiphenyl group, a trifluoromethoxy group, a pentafluorophenoxy group, a bistrifluoromethylphenoxy group, a bistrifluoromethylphenoxy group, a difluoromethylenedioxyphenyl group, and a trifluoromethylthio group are preferred, and a trifluoromethyl group, a fluorophenyl group, a pentafluorophenyl group, a trifluoromethylphenyl group, a bistrifluoromethylphenyl group, a pentafluorobiphenyl group, a trifluoromethoxy group, and a pentafluorophenoxy group are more preferred.

[0057] Examples of the silicon-containing group include a trimethylsilyl group, a triethylsilyl group, a tri-isopropylsilyl group, a diphenylmethylsilyl group, a tert-butyldimethylsilyl group, a tert-butyldiphenylsilyl group, a triphenylsilyl group, a tris(trimethylsilyl)silyl group, a cyclopentadienyldimethylsilyl group, a di-n-butyl(cyclopentadienyl)silyl group, a cyclopentadienyldiphenylsilyl group, an indenyldimethylsilyl group, and a di-n-butyl(indenyl)silyl group. )silyl group, indenyldiphenylsilyl group, fluorenyldimethylsilyl group, di-n-butyl(fluorenyl)silyl group, fluorenyldiphenylsilyl group, 4-trimethylsilylphenyl group, 4-triethylsilylphenyl group, 4-tri-isopropylsilylphenyl group, 4-tert-butyldiphenylsilylphenyl group, 4-triphenylsilylphenyl group, 4-tris(trimethylsilyl)silylphenyl group, 3,5-bis(trimethylsilyl)phenyl group, and the like.

[0058] Among the silicon-containing groups, a trimethylsilyl group, a triethylsilyl group, a tri-isopropylsilyl group, a tert-butyldimethylsilyl group, a triphenylsilyl group, a cyclopentadienyldimethylsilyl group, a cyclopentadienyldiphenylsilyl group, an indenyldimethylsilyl group, an indenyldiphenylsilyl group, a fluorenyldimethylsilyl group, a fluorenyldiphenylsilyl group, a 4-trimethylsilylphenyl group, a 4-triethylsilylphenyl group, a 4-tri-isopropylsilylphenyl group, a 4-triphenylsilylphenyl group, and a 3,5-bis(trimethylsilyl)phenyl group are preferred, and a trimethylsilyl group, a triethylsilyl group, a tert-butyldimethylsilyl group, a 4-trimethylsilylphenyl group, a 4-triethylsilylphenyl group, a 4-tri-isopropylsilylphenyl group, and a 3,5-bis(trimethylsilyl)phenyl group are more preferred.

[0059] The oxygen-containing group is preferably a hydroxyl group or an oxygen-containing group having 1 to 20 carbon atoms, and examples of the latter include a methoxy group, an ethoxy group, an n-propoxy group, an iso-propoxy group, an allyloxy group, an n-butoxy group, a sec-butoxy group, an iso-butoxy group, a tert-butoxy group, a methallyloxy group, a prenyloxy group, a benzyloxy group, a methoxymethoxy group, a methoxyethoxy group, a phenoxy group, a naphthoxy group, a toluyloxy group, an iso-propylphenoxy group, an allylphenoxy group, a tert-butylphenoxy group, a methoxyphenoxy group, an iso-propoxyphenoxy group, an allyloxyphenoxy group, a biphenyloxy group, a binaphthyloxy group, a methoxymethyl group, an allyloxymethyl group, a benzyloxymethyl group, a phenoxymethyl group, a methoxyethyl group, an allyloxyethyl group, a benzyloxyethyl group, and a phenoxy. Examples thereof include an ethyl group, a methoxypropyl group, an allyloxypropyl group, a benzyloxypropyl group, a phenoxypropyl group, a methoxyvinyl group, an allyloxyvinyl group, a benzyloxyvinyl group, a phenoxyvinyl group, a methoxyallyl group, an allyloxyallyl group, a benzyloxyallyl group, a phenoxyallyl group, a dimethoxymethyl group, a di-iso-propoxymethyl group, a dioxolanyl group, a tetramethyldioxolanyl group, a dioxanyl group, a methoxyphenyl group, an iso-propoxyphenyl group, an allyloxyphenyl group, a phenoxyphenyl group, a methylenedioxyphenyl group, a 3,5-dimethyl-4-methoxyphenyl group, a 3,5-di-tert-butyl-4-methoxyphenyl group, a furyl group, a methylfuryl group, a tetrahydrofuryl group, a pyranyl group, a tetrahydropyranyl group, a furofuryl group, a benzofuryl group, and a dibenzofuryl group.

[0060] Among the oxygen-containing groups, a methoxy group, an ethoxy group, an iso-propoxy group, an allyloxy group, an n-butoxy group, a tert-butoxy group, a prenyloxy group, a benzyloxy group, a phenoxy group, a naphthoxy group, a toluyloxy group, an iso-propylphenoxy group, an allylphenoxy group, a tert-butylphenoxy group, a methoxyphenoxy group, a biphenyloxy group, a binaphthyloxy group, an allyloxymethyl group, a benzyloxymethyl group, a phenoxymethyl group, a methoxyethyl group, a methoxyallyl group, a benzyloxyallyl group, a phenoxyallyl group, a dimethoxymethyl group, a dioxolanyl group, a tetramethyldioxolanyl group, a dioxanyl group, a dimethyldioxanyl group, a methoxyphenyl group, an iso-propoxyphenyl group, an allyloxymethyl ... Preferred are a phenyl group, a phenoxyphenyl group, a methylenedioxyphenyl group, a 3,5-dimethyl-4-methoxyphenyl group, a 3,5-di-tert-butyl-4-methoxyphenyl group, a furyl group, a methylfuryl group, a tetrahydropyranyl group, a furofuryl group, a benzofuryl group, and a dibenzofuryl group, and more preferred are a methoxy group, an iso-propoxy group, a tert-butoxy group, an allyloxy group, a phenoxy group, a dimethoxymethyl group, a dioxolanyl group, a methoxyphenyl group, an iso-propoxyphenyl group, an allyloxyphenyl group, a phenoxyphenyl group, a 3,5-dimethyl-4-methoxyphenyl group, a 3,5-di-tert-butyl-4-methoxyphenyl group, a furyl group, a methylfuryl group, a benzofuryl group, and a dibenzofuryl group.

[0061] The nitrogen-containing group is preferably an amino group or a nitrogen-containing group having 1 to 20 carbon atoms. Examples of the latter include a dimethylamino group, a diethylamino group, an allylamino group, a diallylamino group, a didecylamino group, a benzylamino group, a dibenzylamino group, a pyrrolidinyl group, a piperidinyl group, a morpholyl group, an azepinyl group, a dimethylaminomethyl group, a dibenzylaminomethyl group, a pyrrolidinylmethyl group, a dimethylaminoethyl group, a benzylaminomethyl group, a benzylaminoethyl group, a pyrrolidinylethyl group, a dimethylaminovinyl group, a benzylaminovinyl group, a pyrrolidinylvinyl group, a dimethylaminopropyl group, a benzylaminopropyl group, a pyrrolidinylpropyl group, a dimethylaminoallyl group, a benzylaminoallyl group, a pyrrolidinylallyl group, an aminophenyl group, a dimethylaminophenyl group, and 3,5-dimethyl-4 -dimethylaminophenyl group, 3,5-di-iso-propyl-4-dimethylaminophenyl group, julolidinyl group, tetramethyljulolidinyl group, pyrrolidinylphenyl group, pyrrolylphenyl group, pyridylphenyl group, quinolylphenyl group, isoquinolylphenyl group, indolinylphenyl group, indolylphenyl group, carbazolylphenyl group, di-tert-butylcarbazolylphenyl group, pyrrolyl group, methylpyrrolyl group, phenylpyrrolyl group, pyridyl group, quinolyl group, tetrahydroquinolyl group, isoquinolyl group, tetrahydro-isoquinolyl group, indolyl group, indolinyl group, carbazolyl group, di-tert-butylcarbazolyl group, imidazolyl group, dimethylimidazolidinyl group, benzimidazolyl group, oxazolyl group, oxazolidinyl group, benzoxazolyl group, and the like.

[0062] Among the nitrogen-containing groups, an amino group, a dimethylamino group, a diethylamino group, an allylamino group, a benzylamino group, a dibenzylamino group, a pyrrolidinyl group, a piperidinyl group, a morpholyl group, a dimethylaminomethyl group, a benzylaminomethyl group, a pyrrolidinylmethyl group, a dimethylaminoethyl group, a pyrrolidinylethyl group, a dimethylaminopropyl group, a pyrrolidinylpropyl group, a dimethylaminoallyl group, a pyrrolidinylallyl group, an aminophenyl group, a dimethylaminophenyl group, a 3,5-dimethyl-4-dimethylaminophenyl group, a 3,5-di-iso-propyl-4-dimethylaminophenyl group, a julolidinyl group, a tetramethyljulolidinyl group, a pyrrolidinylphenyl group, a pyrrolylphenyl group, a carbazolylphenyl group, a di-tert-butylcarbazolyl group, A phenyl group, a pyrrolyl group, a pyridyl group, a quinolyl group, a tetrahydroquinolyl group, an isoquinolyl group, a tetrahydro-isoquinolyl group, an indolyl group, an indolinyl group, a carbazolyl group, a di-tert-butylcarbazolyl group, an imidazolyl group, a dimethylimidazolidinyl group, a benzimidazolyl group, an oxazolyl group, an oxazolidinyl group, a benzoxazolyl group, and the like are preferred, and an amino group, a dimethylamino group, a diethylamino group, a pyrrolidinyl group, a dimethylaminophenyl group, a 3,5-dimethyl-4-dimethylaminophenyl group, a 3,5-di-isopropyl-4-dimethylaminophenyl group, a julolidinyl group, a tetramethyljulolidinyl group, a pyrrolidinylphenyl group, a pyrrolyl group, a pyridyl group, a carbazolyl group, and an imidazolyl group are more preferred.

[0063] Examples of the sulfur-containing group include a methylthio group, an ethylthio group, a benzylthio group, a phenylthio group, a naphthylthio group, a methylthiomethyl group, a benzylthiomethyl group, a phenylthiomethyl group, a naphthylthiomethyl group, a methylthioethyl group, a benzylthioethyl group, a phenylthioethyl group, a naphthylthioethyl group, a methylthiovinyl group, a benzylthiovinyl group, a phenylthiovinyl group, a naphthylthiovinyl group, a methylthiopropyl group, a benzylthiopropyl group, a phenylthiopropyl group, a naphthylthiopropyl group, a methylthioallyl group, a benzylthioallyl group, a phenyl Examples thereof include a thioallyl group, a naphthylthioallyl group, a mercaptophenyl group, a methylthiophenyl group, a thienylphenyl group, a methylthienylphenyl group, a benzothienylphenyl group, a dibenzothienylphenyl group, a benzodithienylphenyl group, a thienyl group, a tetrahydrothienyl group, a methylthienyl group, a thienofuryl group, a thienothienyl group, a benzothienyl group, a dibenzothienyl group, a thienobenzofuryl group, a benzodithienyl group, a dithiolanyl group, a dithianyl group, an oxathiolanyl group, an oxathianyl group, a thiazolyl group, a benzothiazolyl group, and a thiazolidinyl group.

[0064] Among the sulfur-containing groups, a thienyl group, a methylthienyl group, a thienofuryl group, a thienothienyl group, a benzothienyl group, a dibenzothienyl group, a thienobenzofuryl group, a benzodithienyl group, a thiazolyl group, and a benzothiazolyl group are preferred.

[0065] R 2 At least one of them is a saturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion or a terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion, and preferably a saturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion.

[0066] The saturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion is a saturated hydrocarbon group having a linear hydrocarbon group portion having 3 to 10 carbon atoms, and examples thereof include an n-propyl group, an n-butyl group, an n-pentyl group, an n-hexyl group, an n-heptyl group, an n-octyl group, an n-nonyl group, an n-decyl group, an isobutyl group, a sec-butyl group, a tert-pentyl group, a 2-methylpentan-2-yl group, a 1-ethylcyclopentyl group, a 1-(n-propyl)cyclopentyl group, a 1-ethylcyclohexyl group, and a 1-(n-propyl)cyclohexyl group, with an n-propyl group, an n-butyl group, an n-pentyl group, and an n-hexyl group being preferred.

[0067] The terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion is a hydrocarbon group having a linear hydrocarbon group having 3 to 10 carbon atoms and having an unsaturated bond at the terminal, and examples thereof include an allyl group, a but-3-en-1-yl group, a methallyl group, a pent-4-en-1-yl group, a hex-5-en-1-yl group, a hept-6-en-1-yl group, an oct-7-en-1-yl group, and a non-8-en-1-yl group. Examples thereof include a dec-9-en-1-yl group, a 2-methylbut-3-en-2-yl group, a 2-methylpent-4-en-2-yl group, a 1-vinylcyclopentyl group, a 1-allylcyclopentyl group, a 1-vinylcyclohexyl group, and a 1-allylcyclohexyl group, and preferably an allyl group, a but-3-en-1-yl group, a pent-4-en-1-yl group, or a hex-5-en-1-yl group.

[0068] Adjacent R 2They may be bonded to each other to form a saturated ring which may have a substituent. The ring formed is preferably a 5- to 8-membered ring which is fused to the cyclopentadienyl ring moiety and which may have a substituent. When multiple rings are present, they may be the same or different. Although there are no particular limitations as long as the effects of the present invention are achieved, the ring is more preferably a 5- or 6-membered ring. Examples of structures formed by combining the ring and the cyclopentadienyl ring moiety of the mother nucleus include a tetrahydropentalenyl ring, a tetrahydroindenyl ring, a pentalenyl ring, an indenyl ring, and an azulenyl ring (which may have a substituent).

[0069] <Preferred Embodiments of Transition Metal Compound (A)> A preferred embodiment of the transition metal (A) is a transition metal compound represented by the general formula (1), in which M is a zirconium atom or a hafnium atom, and Xs are each independently a hydrogen atom, a halogen atom, a hydrocarbon group having 1 to 20 carbon atoms, a silicon-containing group, or an oxygen-containing group.

[0070] R 1 In view of this, a more preferred embodiment is that in the general formula (1), R 1 are each independently a hydrogen atom or a methyl group, and at least two R 1 is a methyl group, and the remaining R 1 is a hydrogen atom or a methyl group.

[0071] R 2 In view of this, a more preferred embodiment is that in the general formula (1), R 2 are each independently a hydrogen atom or a hydrocarbon group having 1 to 40 carbon atoms, and at least one R 2 is a saturated hydrocarbon group or a terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion, and at least two R 2 is a hydrogen atom.

[0072] R 2In view of this, a more preferred embodiment is that in the general formula (1), R 2 are each independently a hydrogen atom or a hydrocarbon group having 1 to 10 carbon atoms, and at least one R 2 is a saturated hydrocarbon group or a terminally unsaturated hydrocarbon group having 3 to 10 carbon atoms in the linear portion, and at least two R 2 are hydrogen atoms, and the remaining R 2 is a hydrogen atom or a methyl group.

[0073] <Examples of transition metal compound (A)> Specific examples of the transition metal compound (A) include: (n-propylcyclopentadienyl)(tetramethylcyclopentadienyl)zirconium dichloride, (n-butylcyclopentadienyl)(tetramethylcyclopentadienyl)zirconium dichloride, (n-propylcyclopentadienyl)(pentamethylcyclopentadienyl)zirconium dichloride, (n-butylcyclopentadienyl)(pentamethylcyclopentadienyl)zirconium dichloride, (1,3-dimethylcyclopentadienyl)(1-n-butyl-3-methylcyclopentadienyl)zirconium dichloride, Substitution of titanium or hafnium for zirconium in these compounds; In these compounds, dichloride is replaced by dimethyl Examples include:

[0074] In the process for producing an olefin polymer of the present invention, the transition metal compound (A) may be used alone or in combination of two or more. In addition, one optical isomer having the same chemical structure may be used alone, or a mixture of optical isomers (for example, a meso mixture or a racemic mixture) may be used.

[0075] (Compound (B)) Compound (B) is (B-1) An organometallic compound, (B-2) An organoaluminum oxy compound, and (B-3) A compound that reacts with the transition metal compound (A) to form an ion pair is at least one compound selected from the group consisting of.

[0076] Examples of the organometallic compound (B-1) include organometallic compounds represented by the following general formula (B-1a), (B-1b) or (B-1c). R a m Al(OR b ) n H p X q … (B-1a) [In the general formula (B-1a), R a and R b represent hydrocarbon groups having 1 to 15 carbon atoms, may be the same or different from each other, X represents a halogen atom, m is 0 < m ≦ 3, n is 0 ≦ n < 3, p is 0 ≦ p < 3, q is 0 ≦ q < 3, and m + n + p + q = 3.] M a AlR a 4… (B-1b) [In the general formula (B-1b), M a represents Li, Na or K, and R a represents a hydrocarbon group having 1 to 15 carbon atoms.] R a [[ID=4५]] r M b R b s X t … (B-1c) [In the general formula (B-1c), R a and R b represent hydrocarbon groups having 1 to 15 carbon atoms, may be the same or different from each other, M b is selected from Mg, Zn and Cd, X represents a halogen atom, r is 0 < r ≦ 2, s is 0 ≦ s ≦ 1, t is 0 ≦ t ≦ 1, and r + s + t = 2.] As the organometallic compound (B-1), compounds disclosed in JP-A No. 11-315109 and EP0874005A can be used without any restrictions.

[0077] The organometallic compound (B-1) is preferably one represented by the general formula (B-1a), and specific examples thereof include trialkylaluminums such as trimethylaluminum, triethylaluminum, triisopropylaluminum, triisobutylaluminum, trihexylaluminum, trioctylaluminum, and tri-2-ethylhexylaluminum; dialkylaluminum halides such as dimethylaluminum chloride, diethylaluminum chloride, diisopropylaluminum chloride, diisobutylaluminum chloride, and dimethylaluminum bromide; alkylaluminum sesquihalides such as methylaluminum sesquichloride, ethylaluminum sesquichloride, isopropylaluminum sesquichloride, butylaluminum sesquichloride, and ethylaluminum sesquibromide; methylaluminum dichloride; ethylaluminum dichloride; alkylaluminum dihalides such as dimethylaluminum hydride, diethylaluminum hydride, dihydrophenylaluminum hydride, diisopropylaluminum hydride, di-n-butylaluminum hydride, diisobutylaluminum hydride, diisohexylaluminum hydride, diphenylaluminum hydride, dicyclohexylaluminum hydride, di-sec-heptylaluminum hydride, di-sec-nonylaluminum hydride; and dialkylaluminum alkoxides such as dimethylaluminum ethoxide, diethylaluminum ethoxide, diisopropylaluminum methoxide, diisobutylaluminum ethoxide.

[0078] These may be used alone or in combination of two or more. As the organoaluminum oxy compound (B-2), aluminoxanes prepared from trialkylaluminum or tricycloalkylaluminum are preferred, and organoaluminum oxy compounds prepared from trimethylaluminum or triisobutylaluminum are particularly preferred. These organoaluminum oxy compounds may be used singly or in combination of two or more.

[0079] As the compound (B-3), Lewis acids, ionic compounds, borane compounds, and carborane compounds, as well as heteropoly compounds and isopoly compounds, described in, for example, JP-T-1-501950, JP-T-1-502036, JP-A-3-179005, JP-A-3-179006, JP-A-3-207703, JP-A-3-207704, and U.S. Pat. No. 5,321,106, can be used without limitation.

[0080] The ethylene polymerization catalyst according to the present invention, when used in combination with an organoaluminum oxy compound (B-2) such as methylaluminoxane as a co-catalyst component, not only exhibits extremely high catalytic activity toward ethylene, but also reacts with active hydrogen in the solid support to easily prepare a solid support component containing the co-catalyst component. Therefore, it is preferable to use an organoaluminum oxy compound (B-2) as the compound (B).

[0081] (Fine particle carrier (C)) The particulate carrier (C) is an inorganic or organic compound, and is a granular or particulate solid.

[0082] Examples of inorganic compounds used as the particulate carrier (C) include porous oxides, solid aluminoxane compounds, inorganic chlorides, clays, clay minerals, and ion-exchange layer compounds.

[0083] The porous oxides that can be used include SiO2, Al2O3, MgO, ZrO, TiO2, BO3, CaO, ZnO, BaO, and ThO2, as well as composites or mixtures containing these, specifically natural or synthetic zeolites, SiO2-MgO, SiO2-Al2O3, SiO2-TiO2, SiO2-VO5, SiO2-Cr2O3, and SiO2-TiO2-MgO. Of these, those containing SiO2 as the main component are preferred.

[0084] The porous oxide may contain small amounts of carbonates, sulfates, nitrates, and oxides such as Na2CO3, K2CO3, CaCO3, MgCO3, Na2SO4, Al2(SO4)3, BaSO4, KNO3, Mg(NO3)2, Al(NO3)3, Na2O, K2O, and Li2O.

[0085] The properties of such porous oxides vary depending on the type and production method, but the particulate carrier (C) used in the present invention usually has a particle size of 0.2 to 300 μm, preferably 1 to 200 μm, and a specific surface area of ​​50 to 1200 m. 2 / g, preferably 100 to 1000m 2 / g, and the pore volume is typically 0.3 to 30 cm 3 / g range. Such a carrier is calcined, for example, at 100 to 1000°C, preferably 150 to 700°C, as needed, before use.

[0086] As the solid aluminoxane compound, known solid aluminoxanes can be used without limitation, for example, the solid polyaluminoxane composition described in International Publication No. 2014 / 123212, and the solid aluminoxane compounds described in

[0119] to

[0129] of JP-A-2019-69920 can also be used. Known production methods include, for example, those described in JP-B-7-42301, JP-A-6-220126, JP-A-6-220128, JP-A-11-140113, JP-A-11-310607, JP-A-2000-38410, JP-A-2000-95810, and WO 2010 / 55652.

[0087] Examples of the inorganic halide include MgCl, MgBr, MnCl, and MnBr. The inorganic halide may be used as is, or may be used after being pulverized using a ball mill or a vibration mill. Alternatively, the inorganic halide may be dissolved in a solvent such as alcohol and then precipitated into fine particles using a precipitating agent.

[0088] Clay is usually composed mainly of clay minerals. Ion-exchangeable layered compounds are compounds with a crystalline structure in which planes formed by ionic bonds or the like are stacked parallel to one another with weak bonding forces, and the ions they contain are exchangeable. Most clay minerals are ion-exchangeable layered compounds. These clays, clay minerals, and ion-exchangeable layered compounds are not limited to natural products, and synthetic compounds can also be used.

[0089] Examples of clays, clay minerals, or ion-exchangeable layered compounds include clays, clay minerals, and ionic crystalline compounds having layered crystal structures such as hexagonal close packing type, antimony type, CdCl2 type, and CdI2 type.

[0090] Examples of such clays and clay minerals include kaolin, bentonite, kibushi clay, gairome clay, allophane, hisingerite, pyrophyllite, ummo group, montmorillonite group, vermiculite, ryokudeite group, palygorskite, kaolinite, nacrite, dickite, and halloysite. Examples of ion-exchange layered compounds include crystalline acid salts of polyvalent metals such as α-Zr(HAsO)·H0, α-Zr(HPO), α-Zr(KPO 3H0, α-Ti(HPO), α-Ti(HAsO)·H0, α-Sn(HPO), H0, γ-Zr(HPO), γ-Ti(HPO,), and γ-Ti(NHPO).

[0091] Such clays, clay minerals, or ion-exchange layered compounds preferably have a pore volume of 0.1 cc / g or more, particularly preferably 0.3 to 5 cc / g, of pores with a radius of 20 Å or more measured by mercury intrusion porosimetry. Here, the pore volume is measured by mercury intrusion porosimetry using a mercury porosimeter, and is preferably 0.1 cc / g or more, particularly preferably 0.3 to 5 cc / g. 4 When a support having a pore volume of less than 0.1 cc / g with a radius of 20 Å or more is used, it tends to be difficult to obtain high polymerization activity.

[0092] It is also preferable to subject clay and clay minerals to chemical treatment. Chemical treatments include surface treatments that remove impurities from the surface and treatments that affect the crystalline structure of the clay. Specific examples of chemical treatments include acid treatment, alkali treatment, salt treatment, and organic treatment. Acid treatment not only removes surface impurities but also increases the surface area by eluting cations such as Al, Fe, and Mg in the crystalline structure. Alkali treatment destroys the crystalline structure of the clay, resulting in structural changes. Furthermore, salt treatment and organic treatment form ionic complexes, molecular complexes, organic derivatives, etc., which can change the surface area and interlayer distance.

[0093] The ion-exchangeable layered compound may be a layered compound in which the interlayer spacing is expanded by utilizing the ion exchange property and exchanging the exchangeable ions between the layers with other large, bulky ions. Such bulky ions act as supports supporting the layered structure and are usually called pillars. The introduction of another substance between the layers of a layered compound in this way is called intercalation. Examples of guest compounds to be intercalated include cationic inorganic compounds such as TiCl4 and ZrCl4, metal alkoxides such as Ti(OR)4, Zr(OR)4, PO(OR)3, and B(OR)3 (R is a hydrocarbon group, etc.), and [Al 13 O4(OH) 24 ] 7+ , [Zr4(OH) 14 ] 2+ , [Fe3O(OCOCH3)6] + Examples of the metal hydroxide ions include those mentioned above. These compounds can be used alone or in combination of two or more. When intercalating these compounds, polymers obtained by hydrolyzing metal alkoxides (R is a hydrocarbon group, etc.) such as Si(OR)4, Al(OR)3, and Ge(OR)4, and colloidal inorganic compounds such as SiO2 can also be present. Examples of the pillars include oxides produced by intercalating the above metal hydroxide ions between layers and then dehydrating them with heat.

[0094] The clay, clay mineral, and ion-exchangeable layered compound may be used as is, or may be used after treatment such as ball milling or sieving. They may also be used after adding and adsorbing new water or after heat dehydration. Furthermore, they may be used alone or in combination of two or more.

[0095] The organic compound used as the particulate carrier (C) may be, for example, a granular or particulate solid having a particle size in the range of 10 to 300 μm. Specific examples of the organic compound include polymers produced mainly from olefins having 2 to 14 carbon atoms, such as ethylene, propylene, 1-butene, and 4-methyl-1-pentene, or polymers or reactants produced mainly from vinylcyclohexane, styrene, and divinylbenzene, and granular or particulate solids made of modified products thereof. As the particulate carrier (C), porous oxides are preferred from the viewpoint of preventing foreign matter during molding.

[0096] <Instructions and order of addition of each ingredient> In step (I), the transition metal compound (A) (hereinafter also referred to as component (A)), the compound (B) (hereinafter also referred to as component (B)), and the particulate support (C) (hereinafter also referred to as component (C)) are contacted, for example, by mixing and contacting them in an inert hydrocarbon, to form a solid catalyst component.

[0097] As a method for contacting each component, when paying attention to the order of contact, for example, (i) A method in which component (C) is contacted with component (B) and then with component (A) (ii) A method in which component (A) is contacted with component (B) and then with component (C) (iii) A method of contacting component (C) with component (B) and then contacting a mixture of component (A) and component (B); (iv) A method of contacting component (C) with component (B), further contacting with component (B), and then contacting with a mixture of component (A) and component (B). When a plurality of components (B) are used, the components (B) may be the same or different. Of the above methods, (i) and (ii) are preferred.

[0098] In each of the methods showing the contact order form described above, in the step involving contact of component (C) with component (B) and the step involving contact of component (C) with component (A), the presence of component (G) suppresses fouling during the polymerization reaction and improves the particle properties of the resulting polymer. As component (G), a compound having a polar functional group can be used, and nonionic surfactants are preferred, with polyalkylene oxide blocks, higher aliphatic amides, polyalkylene oxides, polyalkylene oxide alkyl ethers, alkyldiethanolamines, polyoxyalkylene alkylamines, glycerin fatty acid esters, and N-acylamino acids being more preferred. These may be used alone or in combination of two or more.

[0099] The solvent used in preparing the solid catalyst component may be an inert hydrocarbon solvent, and specific examples thereof include aliphatic hydrocarbons such as propane, butane, pentane, hexane, heptane, octane, decane, dodecane, and kerosene; alicyclic hydrocarbons such as cyclopentane, cyclohexane, and methylcyclopentane; aromatic hydrocarbons such as benzene, toluene, and xylene; halogenated hydrocarbons such as ethylene chloride, chlorobenzene, and dichloromethane; and mixtures thereof.

[0100] When components (B) and (C) contact each other, reactive sites in component (B) react with reactive sites in component (C) to chemically bond them, forming a contact product of components (B) and (C). The contact time between components (B) and (C) is typically 1 minute to 20 hours, preferably 30 minutes to 10 hours, and the contact temperature is typically −50 to 200°C, preferably −20 to 120°C. If the initial contact between components (B) and (C) is rapid, the heat generated by the reaction and the reaction energy can cause component (C) to collapse, deteriorating the morphology of the resulting solid catalyst component. When used in polymerization, this can often result in poor polymer morphology, making continuous operation difficult. Therefore, it is preferable to initially contact components (B) and (C) at a lower temperature to suppress the heat generated by the reaction, or to control the heat generated by the reaction and react at a rate that maintains the initial contact temperature. This also applies when components (B) and (C) are first contacted and then component (B) is contacted. The contact weight ratio of component (B) to component (C) (weight of component (B) / weight of component (C)) can be selected arbitrarily, but a higher contact weight ratio allows a larger amount of component (A) to be contacted, thereby improving the catalytic activity per weight of the solid catalyst component.

[0101] The contact weight ratio of component (B) to component (C) [= weight of component (B) / weight of component (C)] is The range is preferably 0.05 to 3.0, and particularly preferably 0.1 to 2.0. When the contact product of component (B) and component (C) is contacted with component (A), the contact time is usually 1 minute to 20 hours, preferably 1 minute to 10 hours, and the contact temperature is usually within the range of -50 to 200°C, preferably -50 to 100°C.

[0102] Component (B-1) is used in an amount such that the molar ratio of component (B-1) to the total transition metal atoms (M) in component (A) [(B-1) / M] is generally 0.01 to 100,000, preferably 0.05 to 50,000.

[0103] Component (B-2) is the total transition metal of component (B-2) (aluminum atom equivalent) and component (A). The molar ratio of the metal atom (M) [(B-2) / M] is usually 10 to 500,000, preferably is used in amounts ranging from 20 to 100,000.

[0104] Component (B-3) is used in an amount such that the molar ratio of component (B-3) to the total transition metal atoms (M) in component (A) [(B-3) / M] is generally 1 to 10, preferably 1 to 5. The ratio of component (B) to the total transition metal atoms (M) in component (A) can be determined by inductively coupled plasma emission spectrometry (ICP analysis).

[0105] <Process (II)> In step (II), an olefin is prepolymerized in the presence of the solid catalyst component formed in step (I) to form a prepolymerized solid catalyst component. The prepolymerized solid catalyst component is formed from the solid catalyst component formed in step (I) and an olefin polymer produced by prepolymerization.

[0106] The prepolymerized solid catalyst component can be prepared by prepolymerizing an olefin in the presence of the solid catalyst component, usually in an inert hydrocarbon solvent, and can be carried out in any of a batch system, a semi-continuous system, and a continuous system, and can be carried out under reduced pressure, normal pressure, or increased pressure. Furthermore, it is desirable that the prepolymerized solid catalyst component be produced in an amount of 0.01 to 1000 g, preferably 0.1 to 800 g, and more preferably 0.2 to 500 g, per 1 g of the solid catalyst component by the prepolymerization.

[0107] Examples of the inert hydrocarbon solvent include the same inert hydrocarbon solvents as those used in step (I). The prepolymerized solid catalyst component produced in the inert hydrocarbon solvent may be separated from the suspension and then resuspended in the inert hydrocarbon, and the olefin may be introduced into the resulting suspension. Alternatively, the olefin may be introduced into the suspension after drying.

[0108] The prepolymerization temperature is −20 to 80° C., preferably 0 to 60° C., and the prepolymerization time is 0.5 to 100 hours, preferably about 1 to 50 hours. The form of the solid catalyst component used in the prepolymerization can be any of those already mentioned. Furthermore, during the prepolymerization, component (B) is used together with the solid catalyst component as needed, and an organoaluminum compound [B-1a] represented by general formula (B-1a) is particularly preferred. When component (B) is used, the component (B) used together with the solid catalyst component is used in an amount such that the molar ratio (Al / M) of the aluminum atom (Al) in component (B) to the transition metal atom (M) in the transition metal compound (A) is 0.1 to 10,000, preferably 0.5 to 5,000.

[0109] The concentration of the solid catalyst component formed in step (I) in the prepolymerization system is usually 1 to 1,000 g / L, preferably 10 to 500 g / L, in terms of the solid catalyst component / polymerization volume ratio. During the prepolymerization, the component (G) may be present in order to suppress fouling or improve particle properties.

[0110] The inert hydrocarbon solvent is preferably removed from the resulting suspension of the prepolymerized solid catalyst component, and the prepolymerized solid catalyst component is dried by vacuum drying or the like.

[0111] <Process (III)> In step (III), the prepolymerized solid catalyst component is contacted with an amine compound (D) to form a prepolymerized solid catalyst for olefin polymerization. The prepolymerized solid catalyst for olefin polymerization is formed from the prepolymerized solid catalyst component formed in step (II) and an amine compound (D). The amine compound (D) is represented by the following general formula (2).

[0112] [ka]

[0113] [In general formula (2), R3 is a hydrocarbon group having 1 to 30 carbon atoms, and R 4 is a hydrogen atom or a hydrocarbon group having 1 to 20 carbon atoms. 4 Multiple R when there are multiple 4 are each independently defined as above. m and n are each independently an integer of 0 or greater, and m+n is 1 or greater.

[0114] R in general formula (I) 3 is a hydrocarbon group having from 1 to 30 carbon atoms, and may be saturated or unsaturated, aliphatic or aromatic, and may be linear, branched, or cyclic. For example, both aliphatic hydrocarbon groups such as alkyl groups and alkenyl groups, and aromatic hydrocarbon groups may be used. Preferred examples include alkyl groups or alkenyl groups such as methyl, ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, lauryl, and oleoyl. Other examples include cycloalkyl groups such as cyclopentyl and cyclohexyl; aryl groups such as phenyl and tolyl; and aralkyl groups such as benzyl and neophyl. Among these, alkyl groups having 6 to 22 carbon atoms are preferred, alkyl groups having 8 to 18 carbon atoms are more preferred, and alkyl groups having 12 to 18 carbon atoms are particularly preferred.

[0115] R in general formula (I) 4 is a hydrogen atom or a hydrocarbon group having 1 to 20 carbon atoms. 4 When is a hydrocarbon group having from 1 to 20 carbon atoms, preferred examples thereof include the same as those of the hydrocarbon groups described above. Among these, a hydrogen atom and an alkyl group having 1 to 2 carbon atoms are preferred, and a hydrogen atom and a methyl group are particularly more preferred.

[0116] In the general formula (I), m and n are each an integer of 0 or more. m+n is 1 or more. m and n are preferably 0-10, and m+n is preferably 1-20. Specific examples of the polyoxyalkylene alkylamine compound (B) represented by general formula (I) include polyoxyethylene octylamine, polyoxyethylene decylamine, polyoxyethylene laurylamine, polyoxyethylene octadecylamine, polyoxyethylene coconut oil alkylamine, polyoxyethylene tallow amine, polyoxyethylene hydrogenated tallow amine, polyoxypropylene laurylamine, polyoxypropylene coconut oil alkylamine, and polyoxypropylene tallow amine. Among these, polyoxyethylene octylamine, polyoxyethylene decylamine, polyoxyethylene laurylamine, polyoxyethylene coconut oil alkylamine, and polyoxypropylene coconut oil alkylamine are preferred.

[0117] In step (III), the temperature when the prepolymerized solid catalyst component is contacted with the amine compound (D) is usually −50 to 50° C., preferably −20 to 50° C., and the contact time is usually 1 minute to 20 hours, preferably 5 minutes to 10 hours.

[0118] In the step (III), the amine compound (D) is used in an amount of 0.1 to 20 parts by mass, preferably 0.3 to 10 parts by mass, more preferably 0.4 to 5 parts by mass, per 100 parts by mass of the prepolymerized solid catalyst component.

[0119] The contact of the prepolymerized solid catalyst component with the amine compound (D) can be carried out in an inert hydrocarbon solvent, and examples of the inert hydrocarbon solvent include the same inert hydrocarbon solvents as those used in step (I).

[0120] From the resulting suspension of prepolymerized solid catalyst for olefin polymerization, the inert hydrocarbon solvent is preferably removed.

[0121] <Process (IV)> In the step (IV), an olefin is polymerized in the presence of the prepolymerized solid catalyst for olefin polymerization. The step of polymerizing an olefin is preferably a step of homopolymerizing ethylene or copolymerizing ethylene with an olefin having 3 to 20 carbon atoms. Examples of the polymerization method include liquid phase polymerization methods such as solution polymerization and suspension polymerization, and gas phase polymerization methods, with suspension polymerization methods and gas phase polymerization methods being preferred.

[0122] Specific examples of the inert hydrocarbon medium used in the liquid phase polymerization method include aliphatic hydrocarbons such as propane, butane, pentane, hexane, heptane, octane, decane, dodecane, and kerosene; alicyclic hydrocarbons such as cyclopentane, cyclohexane, and methylcyclopentane; aromatic hydrocarbons such as benzene, toluene, and xylene; halogenated hydrocarbons such as ethylene chloride, chlorobenzene, and dichloromethane; and mixtures thereof.

[0123] When olefin polymerization is carried out in the presence of the prepolymerized solid catalyst for olefin polymerization, the prepolymerized solid catalyst for olefin polymerization contains component (A) in an amount of usually 1×10 per liter of reaction volume. -12 ~1×10 -1 mol, preferably 1 x 10 -8 ~1×10 -2 It is used in molar amounts.

[0124] Preferably, the compound (B), more preferably the compound represented by the general formula (B-1a), is added to the polymerization system together with the prepolymerized solid catalyst for olefin polymerization. When polymerizing olefins, the lower limit of the polymerization temperature is 0°C, preferably 40°C, and particularly preferably 60°C. Higher temperatures are advantageous in terms of heat removal and the like in industrial-scale production. The upper limit is usually 200°C, preferably 170°C, and the polymerization pressure is usually normal pressure to 100 kgf / cm. 2 , preferably normal pressure to 50 kgf / cm 2 is.

[0125] The polymerization reaction can be carried out in any of batch, semi-continuous and continuous systems, and can also be carried out in two or more stages with different reaction conditions. The molecular weight of the olefin polymer obtained by the method for producing an olefin polymer according to the present invention can be adjusted by adding hydrogen to the polymerization system or by changing the polymerization temperature. During the polymerization, the component (G) can be added to the polymerization system in order to suppress fouling or improve particle properties.

[0126] In the present invention, the monomer supplied to the polymerization reaction is preferably ethylene alone, or ethylene and an olefin having from 3 to 20 carbon atoms. Specific examples of the olefin having from 3 to 20 carbon atoms include α-olefins such as propylene, 1-butene, 1-pentene, 1-hexene, 4-methyl-1-pentene, 1-octene, 1-decene, 1-dodecene, 1-tetradecene, 1-hexadecene, 1-octadecene, and 1-eicosene, and cyclic olefins such as cyclopentene, cycloheptene, norbornene, 5-methyl-2-norbornene, tetracyclododecene, and 2-methyl-1,4,5,8-dimethano-1,2,3,4,4a,5,8,8a-octahydronaphthalene.

[0127] Furthermore, small amounts of styrene, vinylcyclohexane, dienes, acrylic acid, methacrylic acid, fumaric acid, maleic anhydride, and polar monomers such as methyl acrylate, ethyl acrylate, methyl methacrylate, ethyl methacrylate, and methacrylic acid may be supplied within a range that does not impair the effects of the present invention.

[0128] <Olefin polymer> One embodiment of the olefin polymer produced by the production method of the present invention is an ethylene-based polymer containing preferably 60 to 100 mol %, more preferably 80 to 100 mol %, of structural units derived from ethylene. When the ethylene-based polymer is a copolymer, it contains preferably 1 to 40 mol %, more preferably 2 to 20 mol %, of structural units derived from an α-olefin having 3 to 20 carbon atoms. However, the sum of the content of structural units derived from ethylene and the content of structural units derived from an α-olefin having 3 to 20 carbon atoms is taken as 100 mol %.

[0129] Among these polymers, ethylene homopolymer, ethylene / propylene copolymer, ethylene / 1-butene copolymer, ethylene / propylene / 1-butene copolymer, ethylene / 1-octene polymer, ethylene / 1-hexene polymer, ethylene / 4-methyl-1-pentene polymer, ethylene / propylene / 1-octene polymer, ethylene / propylene / 1-hexene polymer, and ethylene / propylene / 4-methyl-1-pentene polymer are preferred. Also suitable are so-called block copolymers (impact copolymers) obtained by mixing or continuously producing two or more polymers selected from these polymers.

[0130] <Applications of olefin polymers> The olefin polymer produced by the production method of the present invention can be used to obtain a film by molding processes such as air-cooled inflation molding, air-cooled two-stage cooling inflation molding, high-speed inflation molding, T-die film molding, and water-cooled inflation molding.

[0131] The film obtained from the olefin polymer according to the present invention is suitable for various packaging films such as standard bags, sugar bags, oily food packaging bags, and watery food packaging bags, as well as agricultural materials, etc. It can also be used as a multilayer film by laminating it with a substrate such as nylon or polyester.

[0132] The olefin polymer according to the present invention may contain additives such as weather resistance stabilizers, heat resistance stabilizers, antistatic agents, antislip agents, antiblocking agents, antifogging agents, lubricants, pigments, dyes, nucleating agents, plasticizers, antioxidants, hydrochloric acid absorbers, and antioxidants, as needed, within the scope of not impairing the object of the present invention. [Example]

[0133] The present invention will be described in more detail with reference to the following examples, although the present invention is not limited to the descriptions of the following examples.

[0134] [Transition metal compounds] The transition metal compounds (A) [component (A)] used in the examples and comparative examples are as follows: "A-1": (n-butylcyclopentadienyl)(tetramethylcyclopentadienyl)zirconium dichloride [synthesized by a method similar to that described in JP-A-2000-514494] "A-2": Bis(1-n-butyl-3-methylcyclopentadienyl)zirconium dichloride [synthesized by a method similar to that described in JP-A-2000-514494] "A-3": (n-propylcyclopentadienyl)(pentamethylcyclopentadienyl)zirconium dichloride [synthesized by the method described in JP-A-2000-514494] "A-4": (n-butylcyclopentadienyl)(pentamethylcyclopentadienyl)zirconium dichloride [synthesized by a method similar to that described in JP-A-2000-514494] "A-5": (n-propylcyclopentadienyl)(tetramethylcyclopentadienyl)zirconium dichloride [synthesized by a method similar to that described in JP-A-2000-514494] "A-6": (1,3-dimethylcyclopentadienyl)(1-n-butyl-3-methylcyclopentadienyl)zirconium dichloride [synthesized by a method similar to that described in JP-A-2000-514494]

[0135] [Stabilizer] The amine compound (D) [component (D)] used as a stabilizer in the examples and comparative examples is as follows: "D-1": Lauryldiethanolamine [Electrostripper (registered trademark) EA, manufactured by Kao Corporation] "D-2": Stearyldiethanolamine [CAS number 10213-78-2, manufactured by Tokyo Chemical Industry Co., Ltd.] "D-3": Polyoxyalkylene alkylamine compound [Amit (registered trademark) 102, manufactured by Kao Corporation] (The analysis results of the types and composition ratios of the compounds contained are disclosed in Table 1 of the patent document (JP 2019-157019 A)). "D-4": Polyoxyalkylene alkylamine compound [Amit (registered trademark) 105, manufactured by Kao Corporation] "D-5": alkyldiethanolamine compound [Atomer (registered trademark) 163, manufactured by Croda Japan Co., Ltd.] (the analysis results of the types and composition ratios of the compounds contained are disclosed in Table 1 of the patent document (JP 2019-157019 A)). "D-6": alkyl (C16-C18) diethanolamine compound [ARMOSTAT (registered trademark) 1800, manufactured by Akzo Nobel Co., Ltd.]

[0136] [Preparation Example 1] (Preparation of solid catalyst component (X-1)) A 270 L reactor equipped with a stirrer was used, and silica gel (Fuji Silysia Chemical Ltd., average particle size 70 μm, specific surface area 340 m) was added under a nitrogen atmosphere. 2 / g, pore volume 1.3cm 310 kg of methylaluminoxane (3.5 mol / L in terms of Al atom, dried at 250°C for 10 hours) was suspended in 77 L of toluene and then cooled to 0-5°C. While maintaining the system temperature at 0-5°C, 19.4 L of a toluene solution of methylaluminoxane (3.5 mol / L in terms of Al atom) was added dropwise to this suspension over 30 minutes. After 30 minutes of contact with each added component, the system temperature was raised to 95°C over 1.5 hours and then continued for 4 hours at 93-97°C. The temperature was then lowered to room temperature, the supernatant was removed by decantation, and the residue was washed twice with toluene to obtain a total of 115 L of toluene slurry of a solid support supporting methylaluminoxane. A portion of this slurry was sampled and analyzed, and the solid concentration was found to be 123 g / L.

[0137] Of the resulting slurry, 12.2 L (1.50 kg as solids) was charged into a 114 L reactor equipped with a stirrer under a nitrogen atmosphere, and toluene was added to bring the total volume to 28 L. Next, a solution of 22.0 g (54.2 mmol in terms of Zr atom) of (n-butylcyclopentadienyl)(tetramethylcyclopentadienyl)zirconium dichloride (A-1) as component (A) dissolved in 5.0 L of toluene was pumped into the reactor and contacted for 1 hour at a system temperature of 20 to 25°C. The supernatant was removed by decantation, and the residue was washed three times with hexane. Subsequently, hexane was added to the washed material to bring the total volume to 30 L, yielding a hexane slurry of solid catalyst component (X-1).

[0138] [Preparation Example 2] (Preparation of Prepolymerized Solid Catalyst Component (XP-1)) 30 L of a hexane slurry of the solid catalyst component (X-1) obtained in Preparation Example 1 was cooled to 10°C, and 2.89 mol of diisobutylaluminum hydride (hereinafter also referred to as "DiBAl-H") was added to the mixture. While maintaining the system temperature at 10 to 15°C, ethylene was continuously fed into the system under normal pressure for several minutes, followed by the addition of 70 ml of 1-hexene. Ethylene feed was then initiated at a rate of 1.46 kg / h, and prepolymerization was carried out at a system temperature of 32 to 37°C. After the start of prepolymerization, 70 ml of 1-hexene was added five times every 30 minutes. When the ethylene feed reached 4.37 kg 180 minutes after the start of prepolymerization, the ethylene feed was stopped. The supernatant was then removed by decantation, and the residue was washed four times with hexane. Further hexane was added to the washed mixture to bring the total volume to 30 L, yielding a hexane slurry of the prepolymerized solid catalyst component.

[0139] The hexane slurry was then placed in a 43 L evaporator equipped with a stirrer under a nitrogen atmosphere, and the pressure was reduced to -68 kPaG over approximately 60 minutes. Once the pressure reached -68 kPaG, the mixture was vacuum dried for approximately 4.3 hours to remove hexane and volatiles. The pressure was further reduced to -100 kPaG, and once the pressure reached -100 kPaG, the mixture was vacuum dried for 8 hours to obtain 6.20 kg of a prepolymerized solid catalyst component (XP-1).

[0140] [Preparation Example 3] (Preparation of Prepolymerized Solid Catalyst Component (XP-2)) A 200 ml reactor equipped with a stirrer was charged with 10.0 g of the prepolymerized solid catalyst component (XP-1) obtained in Preparation Example 2 under a nitrogen atmosphere, and hexane was added to bring the total volume to 50 ml. The temperature inside the system was then raised to 35°C, after which 100.0 mg of lauryldiethanolamine (D-1) as component (D) diluted with 5 ml of toluene was added. The mixture was then allowed to contact for 2 hours at 32 to 37°C to obtain a hexane slurry of the prepolymerized solid catalyst component. This hexane slurry was transferred to a 100 ml glass Schlenk flask, and the hexane and toluene were distilled off under reduced pressure at 25°C to obtain 10.1 g of the prepolymerized solid catalyst component (the "prepolymerized solid catalyst for olefin polymerization" in this invention) (XP-2).

[0141] [Example 1] (Production of ethylene-1-hexene copolymer) (Polymerization evaluation (i): Evaluation of autoclave wall condition during polymerization) A 1 L stainless steel autoclave that had been thoroughly purged with nitrogen was charged with 500 ml of n-heptane, the nitrogen in the system was purged with ethylene, 10 ml of 1-hexene and 250 mg of the prepolymerized solid catalyst component (XP-2) obtained in Preparation Example 3 were added, and the temperature was raised to 55°C. It took about 10 minutes from the addition of the prepolymerized solid catalyst component (XP-2) for the temperature to reach 55°C. Thereafter, an additional 200 mg of the prepolymerized solid catalyst component (XP-2) was added, and the temperature in the system was raised to 73°C. Next, polymerization was initiated by introducing ethylene, and the pressure was increased to 8.0 kgf / cm while continuously supplying ethylene. 2 Polymerization was carried out for 90 minutes while maintaining the temperature at -G. After the polymerization was completed, the pressure was released, the polymer was removed, and the condition of the autoclave was checked. No adhesion of the polymer to the autoclave vessel wall or stirring blades was observed.

[0142] (Polymerization evaluation (ii): Polymerization activity evaluation) A 1 L stainless steel autoclave was charged with 500 ml of n-heptane and the system was purged with ethylene. 20 ml of 1-hexene and 0.06 ml of a decane solution of triisobutylaluminum (1.0 mol / L) were then added and the system was maintained at room temperature for 5 minutes. Then, 180 mg of prepolymerized solid catalyst component (XP-2) was added and the temperature in the system was raised to 73°C. Polymerization was then initiated by introducing ethylene, and the pressure was maintained at 8.0 kgf / cm while continuously supplying ethylene. 2 The temperature was kept at -G, and polymerization was carried out for 90 minutes. After polymerization was completed, the pressure was released, and the polymer was filtered, washed, and dried under reduced pressure at 80°C for 10 hours, yielding 112.7 g of polymer. The polymer yield per gram of catalyst (polymerization activity) was 626 (g-PE / g-cat), and the powder bulk density was 421 g / L.

[0143] [Preparation Example 4] (Preparation of solid catalyst component (X-2)) A hexane slurry of the solid catalyst component (X-1) obtained in Preparation Example 1 was charged into a 200 ml reactor equipped with a stirrer under a nitrogen atmosphere to a solid content of 10.0 g, and hexane was added to bring the total volume to 50 ml. Next, the temperature in the system was raised to 35°C, and then 100.0 mg of lauryldiethanolamine (D-1) as component (D) diluted with 5 ml of toluene was added. The mixture was then contacted at 32 to 37°C for 2 hours to obtain a hexane slurry of the solid catalyst component. This hexane slurry was transferred to a 100 ml glass Schlenk flask, and the hexane and toluene were distilled off under reduced pressure at 25°C to obtain 10.1 g of solid catalyst component (X-2).

[0144] [Preparation Examples 5 to 9] (Preparation of Prepolymerized Solid Catalyst Components (XP-3) to (XP-7)) Prepolymerized solid catalyst components (XP-3) to (XP-7) were prepared in the same manner as in Preparation Example 3, except that amine compound (D-1) was replaced with amine compound (D-2), (D-3), (D-4), (D-5), or (D-6).

[0145] [Preparation Examples 10 to 14] (Preparation of Solid Catalyst Components (X-3) to (X-7)) Solid catalyst components (X-3) to (X-7) were prepared in the same manner as in Preparation Example 4, except that amine compound (D-1) was replaced with amine compound (D-2), (D-3), (D-4), (D-5), or (D-6).

[0146] [Preparation Example 15] (Preparation of Prepolymerized Solid Catalyst Component (XP-8)) A prepolymerized solid catalyst component (XP-8) was prepared in the same manner as in Preparation Examples 1 to 3, except that the transition metal compound (A-2) was used instead of the transition metal compound (A-1).

[0147] [Preparation Example 16] (Preparation of solid catalyst component (X-8)) A solid catalyst component (X-8) was prepared in the same manner as in Preparation Examples 1 and 4, except that the transition metal compound (A-2) was used instead of the transition metal compound (A-1).

[0148] [Examples 2 to 6, Comparative Examples 1 to 7, and Reference Examples 1 and 2] (Production of Ethylene-1-Hexene Copolymer) Ethylene-1-hexene copolymers were produced in the same manner as in Example 1, except that the solid catalyst components used were changed as shown in Table 1, and polymerization evaluations (i) and (ii) were carried out. The results are shown in Table 1.

[0149] [Table 1]

[0150] As is clear from Table 1, in Example 1, in which prepolymerization was carried out and component (D-1) was further used, adhesion of the polymer to the autoclave vessel wall and stirring blades was suppressed compared to Comparative Example 1, in which prepolymerization was not carried out, and Comparative Example 2, in which component (D-1) was not used. Furthermore, the powder bulk density of the obtained polymer was also higher than that of Comparative Example 1.

[0151] That is, in Example 1, an olefin polymer could be produced more stably than in Comparative Examples 1 and 2. Furthermore, in Examples 2 to 6, in which components (D-2) to (D-6) were used instead of component (D-1), adhesion of the polymer to the autoclave vessel wall and stirring blades was suppressed compared to Comparative Examples 3 to 7.

[0152] In Reference Examples 1 and 2, in which a symmetric bis-Cp type metallocene compound (transition metal compound (A-2)) was used instead of an asymmetric bis-cyclopentadienyl type (hereinafter referred to as "bis-Cp type") metallocene compound as the transition metal compound, adhesion of the polymer to the autoclave vessel wall and stirring blades was suppressed regardless of whether prepolymerization was performed or not.

[0153] The reason why such differences in effect occur depending on the structure of the transition metal compound is presumed to be as follows. Polymer adhesion to the autoclave walls and stirring blades occurs when the metallocene compound leaches from the solid catalyst component. The solid catalyst component and the metallocene compound interact as an ion pair, with the metallocene compound acting as a cation and the solid catalyst component acting as an anion. In asymmetric bis-Cp metallocene compounds, the asymmetry of the upper and lower ligands causes steric distortion, which is thought to weaken the ionic bond compared to symmetric bis-Cp metallocene compounds. Therefore, asymmetric bis-Cp metallocene compounds are thought to be more susceptible to leaching. However, prepolymerization makes them less susceptible to leaching because the surroundings are covered with polymer, which is thought to suppress polymer adhesion to the autoclave walls and stirring blades. On the other hand, symmetric bis-Cp metallocene compounds are more difficult to leach than asymmetric bis-Cp metallocene compounds. Therefore, in Reference Example 2, polymer adhesion to the autoclave walls and stirring blades did not occur even without prepolymerization.

[0154] From the above, it can be seen that the production method of the present invention is particularly useful when an asymmetric bis-Cp type metallocene compound is used as the transition metal compound.

[0155] [Preparation Examples 17 to 20] (Preparation of Prepolymerized Solid Catalyst Components (XP-9) to (XP-12)) Prepolymerized solid catalyst components (XP-9) to (XP-12) were prepared in the same manner as in Preparation Examples 1 to 3, except that the transition metal compound (A-1) was replaced with the transition metal compound (A-3), (A-4), (A-5), or (A-6).

[0156] [Preparation Examples 21 to 24] (Preparation of Solid Catalyst Components (X-9) to (X-12)) Solid catalyst components (X-9) to (X-12) were prepared in the same manner as in Preparation Examples 1 and 4, except that the transition metal compound (A-1) was replaced with the transition metal compound (A-3), (A-4), (A-5), or (A-6).

[0157] [Examples 7 to 10, Comparative Examples 8 to 11] (Production of ethylene-1-hexene copolymer) Ethylene-1-hexene copolymers were produced in the same manner as in Example 1, except that the solid catalyst components used were changed as shown in Table 2, and polymerization evaluations (i) and (ii) were carried out. The results are shown in Table 2.

[0158] [Table 2]

[0159] As is clear from Table 2, in Examples 7 to 10, in which prepolymerization was carried out, adhesion of the polymer to the autoclave vessel wall and stirring blades was suppressed compared to Comparative Examples 8 to 11, in which prepolymerization was not carried out. Furthermore, the powder bulk density of the obtained polymer was also high.

[0160] [Example 11] (Production of ethylene-1-hexene copolymer) (Polymerization evaluation (iii): Operability evaluation by gas phase polymerization) Copolymerization of ethylene and 1-hexene was carried out using a gas-phase fluidized bed polymerization apparatus. The polymerization pressure was 1.7 MPaG, and the polymerization temperature was 80°C. The prepolymerized solid catalyst component (XP-2) prepared in Preparation Example 3 was fed into the polymerization reactor at a rate of 4.2 g / hr. Furthermore, lauryldiethanolamine was fed as a stabilizer into the circulation gas line so that it was present in an amount of 30 ppm by mass relative to the mass of the polymer. The gas composition in the gas-phase polymerization reactor was ethylene partial pressure = 1.0 MPa, hydrogen / ethylene = 4.8 x 10 -4 Ethylene, hydrogen, 1-hexene, and isopentane were continuously fed to the reactor so that the molar ratio of 1-hexene to ethylene was 0.022, and a polymer was produced at a rate of 6.0 kg / hr. The residence time was 4 hours. The polymer density at this time was 916 kg / m. 3 The melt flow rate was 3.8 g / 10 min. The melt flow rate was measured in accordance with ASTM D1238-65T at 190°C under a load of 2.16 kg.

[0161] Operation was carried out under the above conditions for 48 hours, but no heat spots were observed in any part of the polymerization vessel or piping, and stable polymerization was possible.

[0162] [Comparative Example 12] A polymer was produced at a rate of 6.0 kg / hr in the same manner as in Example 11, except that the solid catalyst component (X-2) was used instead of the prepolymerized solid catalyst component (XP-2). As a result of operation under these conditions, heat spots occurred in the polymerization vessel, etc., and operation could not be continued within 4 hours.

[0163] [Comparative Example 13] A polymer was produced at a rate of 6.0 kg / hr in the same manner as in Example 11, except that the prepolymerized solid catalyst component (XP-1) was used instead of the prepolymerized solid catalyst component (XP-2). As a result of operation under these conditions, heat spots occurred in the polymerization vessel, etc., and operation could not be continued within 4 hours.

Claims

1. (A) a transition metal compound represented by the following general formula (1), 【Chemistry 1】 [In general formula (1), M is a transition metal atom of Group 4 of the periodic table; n is an integer of 1 to 4 selected so that the transition metal compound (A) is electrically neutral; X represents a hydrogen atom, a halogen atom, a hydrocarbon group, an anionic ligand, or a neutral ligand capable of coordinating with a lone electron pair, and the anionic ligand is a halogen-containing group, a silicon-containing group, an oxygen-containing group, a sulfur-containing group, a nitrogen-containing group, a phosphorus-containing group, a boron-containing group, an aluminum-containing group, or a conjugated diene derivative group, and when n is 2 or more, the multiple groups represented by X may be the same or different and may be bonded to each other to form a ring; R 1 are each independently a hydrogen atom or a hydrocarbon group having 1 to 2 carbon atoms, and at least two R 1 is a hydrocarbon group having 1 to 2 carbon atoms, and adjacent R 1 may be bonded to each other to form a ring which may have a substituent, R 2 are each independently a hydrogen atom, a halogen atom, a hydrocarbon group having 1 to 40 carbon atoms, a halogen-containing group, a silicon-containing group, an oxygen-containing group, a nitrogen-containing group, or a sulfur-containing group, and at least one R 2 is a saturated hydrocarbon group having a linear portion with 3 to 10 carbon atoms or a terminally unsaturated hydrocarbon group having a linear portion with 3 to 10 carbon atoms, and at least two R 2 is a hydrogen atom, and the adjacent R 2 may be bonded to each other to form a ring which may have a substituent. (B) (B-1) organometallic compound, (B-2) an organoaluminum oxy compound, and (B-3) A compound that reacts with the transition metal compound (A) to form an ion pair At least one compound selected from the group consisting of: (C) a particulate carrier; (I) forming a solid catalyst component by contacting (II) prepolymerizing an olefin in the presence of the solid catalyst component to form a prepolymerized solid catalyst component; the prepolymerized solid catalyst component and an amine compound (D) represented by the following general formula (2): 【Chemistry 2】 [In the general formula (2), R 3 is a hydrocarbon group having 1 to 30 carbon atoms, and R 4 is a hydrogen atom or a hydrocarbon group having 1 to 20 carbon atoms. 4 When there are multiple R 4 are each independently defined as above. m and n are each independently an integer of 0 or more, and m+n is 1 or more. (III) contacting the catalyst with a prepolymerized solid catalyst for olefin polymerization; Step (IV) of polymerizing an olefin in the presence of the prepolymerized solid catalyst for olefin polymerization. A method for producing an olefin polymer comprising the steps of:

2. 2. The method for producing an olefin polymer according to claim 1, wherein the step of polymerizing an olefin is a step of homopolymerizing ethylene or a step of copolymerizing ethylene with an α-olefin having from 3 to 20 carbon atoms.

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