Method for producing catalyst composition and method for producing conjugated diene polymer
By pretreating hydrogen-bonded or oligomeric lanthanum rare earth compounds with trialkylaluminum in an alkylation reaction, the method enhances catalytic activity, producing a conjugated diene polymer with improved properties for rubber compositions.
Patent Information
- Application Number
- JP2024547161
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-02-17
- Filing Date
- 2023-02-15
- Publication Date
- 2026-02-05
- Estimated Expiration
- 2043-02-15
AI Technical Summary
Lanthanum-based rare earth compounds in the form of hydrogen-bonded and/or oligomeric forms exhibit decreased catalytic activity during the production of polybutadiene, leading to reduced catalytic efficiency and equipment contamination.
A method involving an alkylation reaction step with a pretreatment agent, such as trialkylaluminum, followed by a halogenation reaction, is used to pretreat hydrogen-bonded or oligomeric lanthanum rare earth compounds, enhancing catalytic activity by minimizing or removing these forms.
The resulting catalyst composition exhibits improved catalytic activity, producing a conjugated diene polymer with high cis-bond content, high linearity, and narrow molecular weight distribution, resulting in enhanced wear resistance and fuel economy when applied to rubber compositions.
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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0021077, filed February 17, 2022, and all contents disclosed in the documents of said Korean patent application are incorporated herein by reference.
[0002] The present invention relates to a method for producing a catalyst composition for producing a conjugated diene polymer, and a method for producing a conjugated diene polymer using the same. [Background technology]
[0003] Recently, with increasing interest in energy conservation and environmental issues, there has been a demand for automobiles with lower fuel consumption. As one method for achieving this, a method has been proposed in which the cis bond content and linearity of polybutadiene in a rubber composition for forming tires are increased, and the molecular weight distribution is narrowed.
[0004] Polybutadiene can be produced using a Ziegler-Natta catalyst, which is produced by activating an organic acid metal compound with an alkyl aluminum and an alkyl aluminum halide compound, and then reacting the produced catalyst with 1,3-butadiene monomer to produce polybutadiene.
[0005] The organic acid metal compounds include titanium-based, nickel-based, cobalt-based, and lanthanum-based compounds, and lanthanum-based rare earth element compounds are mainly used to increase the cis bond content and linearity of polybutadiene and to narrow the molecular weight distribution.
[0006] Representative examples of the lanthanum-based rare earth element compounds include neodymium-based compounds, a specific example of which is NdV (neodymium versatate), which are activated through alkylation using an alkylaluminum compound and then halogenation using an alkylaluminum halide compound. To stabilize the catalyst, 1,3-butadiene monomer may be added during the alkylation reaction to perform preforming.
[0007] Lanthanum-based rare earth compounds, such as NdV, do not exist as single compounds but as hydrogen-bonded and / or oligomeric compounds formed by moisture and aliphatic compounds used in the manufacturing process (Non-Patent Documents 1 and 2). However, when hydrogen-bonded lanthanum-based rare earth compounds and / or oligomeric lanthanum-based rare earth compounds are directly alkylated, the alkylation takes longer than when the lanthanum-based rare earth compounds exist as single compounds, and the alkylation reaction may not proceed completely. When such insufficiently alkylated lanthanum-based rare earth compounds are introduced into a halogenation reactor for halogenation, this can reduce catalytic activity and increase contamination of the catalyst manufacturing equipment.
[0008] U.S. Patent Publication No. 9,056,303 (Patent Document 1) discloses a method for producing a catalyst system using multiple alkylation reactors. To overcome the drawbacks of producing a catalyst system in batch mode, Patent Document 1 specifically specifies the type of reactor to prevent gel formation in the reactor during continuous production and ensure flexibility of the alkylating agent and rare earth salt, which can affect catalyst activity. The flow rate of the catalyst system outlet is adjusted as needed at the line outlet to ensure a residence time suitable for the alkylation and chlorination reactions. Furthermore, Japanese Patent Publication No. 5,072,191 (Patent Document 2) discloses a method for producing a conjugated diene polymerization catalyst by sequentially adding an alkylaluminum compound and an alkylaluminum hydride for the alkylation reaction. However, Patent Documents 1 and 2 only directly alkylate a lanthanum compound during the production of the catalyst system and conjugated diene polymerization catalyst, and do not recognize the form of the lanthanum compound added during the alkylation reaction and its effect on catalytic activity. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] US9056303 B2 [Patent Document 2] JP5072191 B2 [Non-patent literature]
[0010] [Non-Patent Document 1] "A Highly Reactive and Monomeric Neodymium Ctalyst", Macromolecules 2002, 35, 13, 4875-4879(https: / / doi.org / 10.1021 / ma012123p) [Non-patent document 2] "Living and non-living Ziegler-Natta catalysts: electronic properties of active site", Polymer, Volume 44, Issue 21, October 2003, Pages 6555-6558(https: / / doi.org / 10.1016 / S0032-3861(03)00698-0) Summary of the Invention [Problem to be solved by the invention]
[0011] The problem to be solved by the present invention is to improve catalytic activity in producing a catalyst composition for the polymerization of polybutadiene by pretreating hydrogen-bonded lanthanum rare earth compounds and / or oligomeric forms of lanthanum rare earth compounds, which cause a decrease in catalytic activity, simultaneously with the alkylation reaction.
[0012] That is, in order to solve the problems mentioned in the Background of the Invention, the present invention aims to provide a method for preparing a catalyst composition with improved catalytic activity by pretreating hydrogen-bonded lanthanum-based rare earth compounds and / or oligomeric forms of lanthanum-based rare earth compounds, which cause a decrease in catalytic activity.
[0013] Another object of the present invention is to provide a method for producing a conjugated diene-based polymer having a high cis-bond content, high linearity, and a narrow molecular weight distribution, using a catalyst composition produced by the above-mentioned method for producing a catalyst composition. [Means for solving the problem]
[0014] In order to solve the above problems, the present invention provides a method for producing a catalyst composition and a method for producing a conjugated diene-based polymer.
[0015] (1) The present invention provides a method for producing a catalyst composition, which includes an alkylation reaction step (S10) of mixing and reacting a lanthanum rare earth compound with a pretreatment agent and an alkylating agent, and a halogenation reaction step (S20) of mixing and reacting the lanthanum rare earth compound alkylated in step (S10) with a halide, wherein the pretreatment agent is hydrogen-bonded to the lanthanum rare earth compound, in the form of an oligomer, or a combination thereof.
[0016] (2) The present invention provides a method for producing a catalyst composition according to (1) above, wherein the pretreatment agent is one or more trialkylaluminums selected from the group consisting of trimethylaluminum and triethylaluminum.
[0017] (3) The present invention provides a method for producing a catalyst composition according to the above (1) or (2), wherein the lanthanum-based rare earth element compound is a neodymium compound represented by the following chemical formula 1:
[0018] [ka]
[0019] In the above chemical formula 1, R 1 ~R 3 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms, and R 1 ~R 3 But it's not all hydrogen.
[0020] (4) In any one of the above (1) to (3), the present invention is characterized in that the lanthanum rare earth element compound is Nd(2-ethylhexanoate)3, Nd(2,2-dimethyldecanoate)3, Nd(2,2-diethyldecanoate)3, Nd(2,2-dipropyldecanoate)3, Nd(2,2-dibutyldecanoate)3, Nd(2,2-dihexyldecanoate)3, Nd(2, 2-dioctyldecanoate)3, Nd(2-ethyl-2-propyldecanoate)3, Nd(2-ethyl-2-butyldecanoate)3, Nd(2-ethyl-2-hexyldecanoate)3, Nd(2-propyl-2-butyldecanoate)3, Nd(2-propyl-2-hexyldecanoate)3, Nd(2-propyl-2-isopropyldecanoate)3, Nd(2-butyl -2-hexyldecanoate)3, Nd(2-hexyl-2-octyldecanoate)3, Nd(2,2-diethyloctanoate)3, Nd(2,2-dipropyloctanoate)3, Nd(2,2-dibutyloctanoate)3, Nd(2,2-dihexyloctanoate)3, Nd(2-ethyl-2-propyloctanoate)3, Nd(2-ethyl-2-hexyloctanoate The present invention provides a method for producing a catalyst composition, wherein the catalyst composition is one or more selected from the group consisting of Nd(2,2-diethylnonanoate)3, Nd(2,2-dipropylnonanoate)3, Nd(2,2-dibutylnonanoate)3, Nd(2,2-dihexylnonanoate)3, Nd(2-ethyl-2-propylnonanoate)3, and Nd(2-ethyl-2-hexylnonanoate)3.
[0021] (5) The present invention provides a method for producing a catalyst composition according to any one of the above (1) to (4), wherein the alkylating agent is an alkylaluminum compound represented by the following chemical formula 2: [Chemical formula 2] AlR 4 R 5 R 6 In the above chemical formula 2, R 4 ~R 6 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms, and R 4 ~R 6is not all hydrogen, but R 4 ~R 6 When all of are alkyl groups, the alkyl groups have 3 to 12 carbon atoms.
[0022] (6) The present invention provides a method for producing a catalyst composition according to any one of the above (1) to (5), wherein the alkylating agent is a dialkylaluminum hydride.
[0023] (7) The present invention provides a method for producing a catalyst composition according to any one of the above (1) to (6), wherein the alkylation reaction in the step (S10) is carried out using a conjugated diene monomer.
[0024] (8) The present invention provides a method for producing a catalyst composition according to any one of the above (1) to (7), wherein the halide is at least one selected from the group consisting of alkylaluminum halides represented by the following chemical formula 3 and alkylaluminum sesquihalides represented by the following chemical formula 4: [Chemical formula 3] AlR 7 R 8 R 9 In the above chemical formula 3, R 7 ~R 9 are each independently a halogen group or an alkyl group having 1 to 12 carbon atoms, and R 7 ~R 9 are not all halogen groups,
[0025] [ka]
[0026] In the above chemical formula 4, R 10 ~R 12 are each independently an alkyl group having 1 to 12 carbon atoms, and X1 to X3 are each independently a halogen group.
[0027] (9) The present invention provides a method for producing a catalyst composition according to any one of (1) to (8), wherein the halide is at least one selected from the group consisting of dialkylaluminum halides and alkylaluminum sesquihalides.
[0028] (10) The present invention provides a method for producing a catalyst composition according to any one of (1) to (9), wherein the steps (S10) and (S20) are carried out in separate reactors connected in series.
[0029] (11) The present invention provides a method for producing a catalyst composition according to any one of the above (1) to (10), wherein the steps (S10) and (S20) are carried out continuously.
[0030] (12) The present invention provides the method for producing a catalyst composition according to any one of (1) to (11), wherein the step (S10) is continuously carried out in a plurality of reactors connected in series, and the pretreatment agent is introduced into the plurality of reactors connected in series in several batches.
[0031] (13) The present invention provides a method for producing a catalyst composition according to any one of (1) to (12), wherein the step (S10) is continuously carried out in a plurality of reactors connected in series, and the alkylating agent is introduced into the plurality of reactors connected in series in several batches.
[0032] (14) The present invention provides a method for producing a conjugated diene polymer, comprising the step (S100) of polymerizing a conjugated diene monomer in the presence of a hydrocarbon solvent, the catalyst composition being prepared by the method for producing a catalyst composition according to any one of (1) to (13) above.
[0033] (15) The present invention provides a conjugated diene polymer produced by the method for producing a conjugated diene polymer according to (14) above.
[0034] (16) The present invention provides a rubber composition containing the conjugated diene polymer according to (15) above. [Effects of the Invention]
[0035] The catalyst composition produced by the method for producing a catalyst composition of the present invention has excellent catalytic activity because it is produced by pretreating hydrogen-bonded lanthanum rare earth compounds and / or oligomeric forms of lanthanum rare earth compounds, which cause a decrease in catalytic activity during alkylation reactions.
[0036] The conjugated diene polymer produced by the method for producing a conjugated diene polymer of the present invention has a low content of lanthanum-based rare earth elements remaining in the conjugated diene polymer due to its high catalytic activity, a high content of cis bonds and linearity, and a narrow molecular weight distribution, and when applied to a rubber composition, it exhibits excellent wear resistance and fuel economy. DETAILED DESCRIPTION OF THE INVENTION
[0037] The present invention will now be described in more detail to aid in understanding the present invention.
[0038] The terms and words used in the description of the present invention and the claims should not be interpreted in a limited way to their ordinary or dictionary meanings, but should be interpreted in a way that is consistent with the technical idea of the present invention, based on the principle that inventors can appropriately define the concepts of terms in order to best describe their inventions.
[0039] Method for producing catalyst composition The present invention provides a method for producing a catalyst composition, wherein the catalyst composition produced by the method for producing a catalyst composition may be a catalyst composition for polymerizing a conjugated diene-based polymer.
[0040] According to one embodiment of the present invention, the method for preparing the catalyst composition includes an alkylation step (S10) of mixing and reacting a lanthanum rare earth compound with a pretreatment agent and an alkylating agent, and a halogenation step (S20) of mixing and reacting the lanthanum rare earth compound alkylated in step (S10) with a halide, wherein the pretreatment agent can perform a pretreatment reaction of the lanthanum rare earth compound by hydrogen bonding, forming an oligomer, or a combination thereof.
[0041] As described in the background art of the present invention, lanthanum-based rare earth compounds do not exist in the form of a single compound, but rather in the form of hydrogen bonds and / or oligomers due to moisture and aliphatic compounds used in the production process (see Non-Patent Documents 1 and 2). However, when hydrogen-bonded lanthanum-based rare earth compounds and / or oligomers of lanthanum-based rare earth compounds are directly alkylated, the alkylation takes longer than when the lanthanum-based rare earth compounds exist as single compounds, and the alkylation reaction is not fully carried out. When such insufficiently alkylated lanthanum-based rare earth compounds are introduced into a halogenation reactor for the halogenation reaction, this can cause a decrease in catalytic activity and increase contamination of the catalyst production equipment. However, the method for producing a catalyst composition according to the present invention can improve catalytic activity by pretreating the hydrogen-bonded lanthanum-based rare earth compounds and / or oligomers of lanthanum-based rare earth compounds simultaneously with the alkylation reaction in step (S10). Here, the pretreatment may include minimizing or even removing hydrogen-bonded lanthanum rare earth compounds and / or oligomeric forms of lanthanum rare earth compounds simultaneously with the alkylation reaction.
[0042] According to one embodiment of the present invention, step (S10) can be performed by mixing and reacting a lanthanum rare earth compound with a pretreatment agent and an alkylating agent. The pretreatment agent can be used to pretreat the lanthanum rare earth compound by hydrogen bonding, oligomerization, or a combination thereof. Trimethylaluminum and triethylaluminum are known to be usable as alkylating agents in alkylation reactions. However, if trimethylaluminum and triethylaluminum are used alone as alkylating agents rather than for the pretreatment reaction in step (S10) as in the present invention, they can only be used to induce the alkylation of the lanthanum rare earth compound depending on the purpose. This means that the alkylation reaction takes a long time and is not carried out sufficiently. On the other hand, trialkylaluminum and / or dialkylaluminum hydrides that can be used as alkylating agents other than trimethylaluminum and triethylaluminum cannot sufficiently induce hydrogen bonding, oligomer formation, or a combination thereof in the pretreatment reaction of the lanthanum rare earth element compound, and are therefore not suitable as pretreatment agents for the alkylation reaction in step (S10).
[0043] According to one embodiment of the present invention, step (S10) may be performed by adding one or more trialkylaluminums selected from the group consisting of trimethylaluminum and triethylaluminum in a molar ratio of 1 mol or more, 2 mol or more, 3 mol or more, 4 mol or more, 5 mol or more, 6 mol or more, 7 mol or more, 8 mol or more, 9 mol or more, 10 mol or more, 11 mol or more, 12 mol or more, 13 mol or more, 14 mol or more, 15 mol or more, 16 mol or more, 17 mol or more, 18 mol or more, 19 mol or more, or 20 mol or more, or in a molar ratio of 30 mol or less, 29 mol or less, 28 mol or less, 27 mol or less, 26 mol or less, 25 mol or less, 24 mol or less, 23 mol or less, 22 mol or less, 21 mol or less, or 20 mol or less, per mol of the lanthanum rare earth element compound.
[0044] According to one embodiment of the present invention, the (S10) step may be carried out at a temperature of -20°C or higher, -15°C or higher, or -10°C or higher, and may be carried out at a temperature of 40°C or lower, 35°C or lower, 30°C or lower, 25°C or lower, or 20°C or lower.
[0045] According to one embodiment of the present invention, the (S10) step may be performed for 10 minutes or more, 15 minutes or more, 20 minutes or more, 25 minutes or more, or 30 minutes or more, and may be performed for 1 hour or less, 50 minutes or less, 40 minutes or less, or 30 minutes or less.
[0046] According to one embodiment of the present invention, in step (S10), the efficiency of the pretreatment reaction of hydrogen bonding, oligomer formation, or a combination thereof with the lanthanum rare earth compound can be further improved by adjusting the molar ratio between the lanthanum rare earth compound and one or more trialkylaluminums selected from the group consisting of trimethylaluminum and triethylaluminum, the reaction temperature, and the reaction time.
[0047] According to one embodiment of the present invention, the lanthanum-based rare earth element compound may be a neodymium compound, and specific examples thereof include neodymium carboxylates (e.g., neodymium acetate, neodymium acrylate, neodymium methacrylate, neodymium gluconate, neodymium citrate, neodymium fumarate, neodymium lactate, neodymium maleate, neodymium oxalate, neodymium 2-ethylhexanoate, neodymium neodecanoate, etc.); organic phosphates (e.g., neodymium dibutyl phosphate, neodymium dipentyl phosphate, neodymium dihexyl phosphate, etc.); neodymium phosphate, neodymium diheptyl phosphate, neodymium dioctyl phosphate, neodymium bis(1-methylheptyl)phosphate, neodymium bis(2-ethylhexyl)phosphate, or neodymium didecyl phosphate; organic phosphonates (e.g., neodymium butyl phosphonate, neodymium pentyl phosphonate, neodymium hexyl phosphonate, neodymium heptyl phosphonate, neodymium octyl phosphonate, neodymium (1-methylheptyl) phosphonate, neodymium (2-ethylhexyl) phosphonate, neodymium decyl phosphonate, Neodymium dodecylphosphonate or neodymium octadecylphosphonate, etc.; organic phosphinates (e.g., neodymium butylphosphinate, neodymium pentylphosphinate, neodymium hexylphosphinate, neodymium heptylphosphinate, neodymium octylphosphinate, neodymium (1-methylheptyl)phosphinate or neodymium (2-ethylhexyl)phosphinate, etc.); carbamates (e.g., neodymium dimethylcarbamate, neodymium diethylcarbamate, neodymium diisopropylcarbamate, salts, such as neodymium dibutylcarbamate or neodymium dibenzylcarbamate; dithiocarbamates (e.g., neodymium dimethyldithiocarbamate, neodymium diethyldithiocarbamate, neodymium diisopropyldithiocarbamate or neodymium dibutyldithiocarbamate); xanthogenates (e.g., neodymium methylxanthogenate, neodymium ethylxanthogenate, neodymium isopropylxanthogenate, neodymium butylxanthogenate, or neodymium benzylxanthogenate);β-diketonates (such as neodymium acetylacetonate, neodymium trifluoroacetylacetonate, neodymium hexafluoroacetylacetonate, or neodymium benzoylacetonate); alkoxides or aryloxides (such as neodymium methoxide, neodymium ethoxide, neodymium isopropoxide, neodymium phenoxide, or neodymium nonylphenoxide); halides or pseudohalides (such as neodymium fluoride, neodymium chloride, neodymium bromide, neodymium iodide, neodymium cyanide, neodymium cyanate, neodymium thiocyanate, or neodymium iodide). neodymium azide, etc.); oxyhalides (e.g., neodymium oxyfluoride, neodymium oxychloride, neodymium oxybromide, etc.); or organic neodymium compounds containing one or more rare earth element-carbon bonds (e.g., CpLn, CpLnR, CpLnCl, CpLnCl, CpLn(cyclooctatetraene), (C5Me5)2LnR, LnR3, Ln(allyl)3, Ln(allyl)2Cl, etc., where Ln is a rare earth metal element and R is a hydrocarbyl group), and the compound may include any one or a mixture of two or more of these;
[0048] According to one embodiment of the present invention, the lanthanum-based rare earth element compound may be a neodymium compound represented by the following Chemical Formula 1:
[0049] [ka]
[0050] In the above chemical formula 1, R 1 ~R 3 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms, and R 1 ~R 3 may not all be hydrogen. 1 is an alkyl group having 4 to 12 carbon atoms, and R 2 and R 3 are each independently hydrogen or an alkyl group having 2 to 8 carbon atoms, and R 2and R 3 may not all be hydrogen. 1 is an alkyl group having 6 to 8 carbon atoms, and R 2 and R 3 are each independently hydrogen or an alkyl group having 2 to 6 carbon atoms, and R 2 and R 3 does not have to be all hydrogen.
[0051] According to one embodiment of the present invention, the lanthanum rare earth compound is Nd(2-ethylhexanoate)3, (neodymium versatate), Nd(2,2-dimethyldecanoate)3, Nd(2,2-diethyldecanoate)3, Nd(2,2-dipropyldecanoate)3, Nd(2,2-dibutyldecanoate)3, Nd(2,2-dihexyldecanoate)3, Nd(2 ,2-dioctyldecanoate)3, Nd(2-ethyl-2-propyldecanoate)3, Nd(2-ethyl-2-butyldecanoate)3, Nd(2-ethyl-2-hexyldecanoate)3, Nd(2-propyl-2-butyldecanoate)3, Nd(2-propyl-2-hexyldecanoate)3, Nd(2-propyl-2-isopropyldecanoate)3, Nd(2 -butyl-2-hexyldecanoate)3, Nd(2-hexyl-2-octyldecanoate)3, Nd(2,2-diethyloctanoate)3, Nd(2,2-dipropyloctanoate)3, Nd(2,2-dibutyloctanoate)3, Nd(2,2-dihexyloctanoate)3, Nd(2-ethyl-2-propyloctanoate)3, Nd(2-ethyl-2-hexanoate) and Nd(2-ethyl-2-hexylnonanoate)3, ...
[0052] According to one embodiment of the present invention, the neodymium compound contains a carboxylate ligand at the α-position, which contains an alkyl group of various lengths and having two or more carbon atoms as a substituent, thereby inducing a steric change around the neodymium central metal and preventing entanglement between compounds, thereby suppressing oligomerization during polymerization of a conjugated diene polymer using the catalyst composition. Furthermore, such neodymium-based compounds have high solubility in solvents, reducing the proportion of neodymium located in the central portion, which is difficult to convert to catalytically active species, and thus increasing the conversion rate to catalytically active species.
[0053] According to one embodiment of the present invention, the solubility of the neodymium compound may be about 60 parts by weight or more in 100 parts by weight of the non-polar solvent at room temperature (25° C.). The solubility of the neodymium-based compound refers to the degree to which the compound is dissolved cleanly without forming a suspension, and such high solubility can result in excellent catalytic activity.
[0054] According to one embodiment of the present invention, the alkylating agent may function as a co-catalyst as an organometallic compound capable of transferring a hydrocarbyl group to another metal. The alkylating agent may be an organometallic compound that is soluble in the polymerization solvent and contains a metal-carbon bond, such as an organoaluminum compound, an organomagnesium compound, or an organolithium compound.
[0055] According to one embodiment of the present invention, the alkylating agent may be an organoaluminum compound, and specific examples thereof include alkylaluminum such as tri-n-propylaluminum, triisopropylaluminum, tri-n-butylaluminum, triisobutylaluminum, tri-t-butylaluminum, tripentylaluminum, trihexylaluminum, tricyclohexylaluminum, and trioctylaluminum; diethylaluminum hydride, di-n-propylaluminum hydride, diisopropylaluminum hydride, di-n-butylaluminum hydride, diisobutylaluminum hydride (DIBAH), di-n-octylaluminum hydride, diphenylaluminum hydride, di-p-tolylaluminum hydride, dibenzylaluminum hydride, phenylethylaluminum hydride, phenyl-n-propylaluminum hydride, phenylisopropylaluminum hydride, phenyl-n-butylaluminum hydride, and phenylisobutylaluminum hydride. aluminum hydride, dihydrocarbyl aluminum hydrides such as phenyl-n-octylaluminum hydride, p-tolylethylaluminum hydride, p-tolyl-n-propylaluminum hydride, p-tolylisopropylaluminum hydride, p-tolyl-n-butylaluminum hydride, p-tolylisobutylaluminum hydride, p-tolyl-n-octylaluminum hydride, benzylethylaluminum hydride, benzyl-n-propylaluminum hydride, benzylisopropylaluminum hydride, benzyl-n-butylaluminum hydride, benzylisobutylaluminum hydride, or benzyl-n-octylaluminum hydride; hydrocarbyl aluminum dihydrides such as ethylaluminum dihydride, n-propylaluminum dihydride, isopropylaluminum dihydride, n-butylaluminum dihydride, isobutylaluminum dihydride, or n-octylaluminum dihydride;
[0056] According to one embodiment of the present invention, the alkylating agent is preferably an alkylaluminum compound from the viewpoint of controlling catalytic reactions and side reactions caused by the lanthanum rare earth compound pretreated in step (S10) with a pretreatment agent to form hydrogen bonds, oligomers, or a combination thereof. Specifically, the alkylating agent may be an alkylaluminum compound represented by the following formula 2:
[0057] [Chemical formula 2] AlR 4 R 5 R 6
[0058] In the above chemical formula 2, R 4 ~R 6 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms, and R 4 ~R 6 is not all hydrogen, but R 4 ~R 6 When all of R are alkyl groups, the number of carbon atoms in the alkyl group may be 3 to 12. As a specific example, in the above Chemical Formula 2, R 4 ~R 6 are each independently hydrogen or an alkyl group having 3 to 8 carbon atoms, and R 4 ~R 6 is not all hydrogen, but R 4 ~R 6 When all of R are alkyl groups, the number of carbon atoms in the alkyl group may be 3 to 6. As a more specific example, in the above-mentioned chemical formula 2, R 4 ~R 6 are each independently hydrogen or an alkyl group having 3 to 6 carbon atoms, and R 4 ~R 6 does not have to be all hydrogen.
[0059] According to one embodiment of the present invention, the alkylating agent may be a dialkylaluminum hydride, which can control catalytic reactions and side reactions of the lanthanum rare earth compound pretreated with a pretreatment agent in step (S10) to form hydrogen bonds, oligomers, or a combination thereof. The types of dialkylaluminum hydrides are as described above. A specific example of the alkylating agent may be diisobutylaluminum hydride.
[0060] According to one embodiment of the present invention, the alkylating agent may include two or more alkylaluminum compounds. Specifically, the alkylating agent may include two or more compounds selected from the group consisting of dialkylaluminum hydrides and trialkylaluminums. More specifically, the alkylating agent may include one or more dialkylaluminum hydrides and one or more trialkylaluminums. More specifically, the alkylating agent may include diisobutylaluminum hydride and triisobutylaluminum.
[0061] According to one embodiment of the present invention, step (S10) may be performed by adding the alkylating agent in a molar ratio of 1 mole or more, 2 moles or more, 3 moles or more, 4 moles or more, 5 moles or more, 6 moles or more, 7 moles or more, 8 moles or more, 9 moles or more, 10 moles or more, 11 moles or more, 12 moles or more, 13 moles or more, 14 moles or more, or 15 moles or more, or 40 moles or less, 39 moles or less, 38 moles or less, 37 moles or less, 36 moles or less, 35 moles or less, 34 moles or less, 33 moles or less, 32 moles or less, 31 moles or less, 30 moles or less, 29 moles or less, 28 moles or less, 27 moles or less, 26 moles or less, 25 moles or less, 24 moles or less, 23 moles or less, 22 moles or less, 21 moles or less, or 20 moles or less, relative to 1 mole of the lanthanum rare earth element compound.
[0062] According to one embodiment of the present invention, the catalytic activity of step (S10) can be further improved by adjusting the molar ratio of the lanthanum rare earth compound to the alkylating agent, the reaction temperature, and the reaction time.
[0063] According to one embodiment of the present invention, step (S10) may be carried out by adding a conjugated diene monomer. This refers to the pre-polymerization or premix of a catalyst composition in which the conjugated diene monomer used in the polymerization of a conjugated diene polymer using the catalyst composition prepared according to the present invention is pre-mixed with the catalyst composition, thereby improving the activity of the catalyst composition and stabilizing the produced active polymer. The term "pre-polymerization" refers to the addition of a small amount of a conjugated diene monomer, such as 1,3-butadiene, to a catalyst composition containing a neodymium compound, an alkylating agent, and a halide, in order to reduce the possibility of generating active species of various catalyst compositions in the catalyst system. Alternatively, the term "premix" refers to a state in which each compound is uniformly mixed in the catalyst composition system without polymerization.
[0064] According to one embodiment of the present invention, the conjugated diene monomer that can be added in step (S10) can be 1,3-butadiene or a derivative thereof, such as 1,3-butadiene, 2,3-dimethyl-1,3-butadiene, or 2-ethyl-1,3-butadiene, or can be 2-methyl-1,3-pentadiene, 1,3-pentadiene, 3-methyl-1,3-pentadiene, 4-methyl-1,3-pentadiene, 1,3-hexadiene, or 2,4-hexadiene.
[0065] According to one embodiment of the present invention, when step (S10) is carried out using a conjugated diene monomer, the conjugated diene monomer may be added in a molar ratio of 1 mole or more, 5 moles or more, 10 moles or more, 15 moles or more, or 20 moles or more, per mole of the lanthanum rare earth element compound, or may be added in a molar ratio of 100 moles or less, 90 moles or less, 80 moles or less, 70 moles or less, 60 moles or less, or 50 moles or less.
[0066] According to one embodiment of the present invention, step (S20) is a step for carrying out a halogenation reaction on the lanthanum rare earth compound alkylated in step (S10), and may be carried out by mixing and reacting the lanthanum rare earth compound alkylated in step (S10) with a halide.
[0067] According to an embodiment of the present invention, the halide may be a halogen element, an interhalogen compound, a hydrogen halide, an organic halide, a non-metal halide, a metal halide, or an organic metal halide.
[0068] According to one embodiment of the present invention, the halogen element may be fluorine, chlorine, bromine or iodine.
[0069] According to an embodiment of the present invention, the interhalogen compound may be iodine monochloride, iodine monobromide, iodine trichloride, iodine pentafluoride, iodine monofluoride, or iodine trifluoride.
[0070] According to one embodiment of the present invention, the hydrogen halide may be hydrogen fluoride, hydrogen chloride, hydrogen bromide or hydrogen iodide.
[0071] According to one embodiment of the present invention, the organic halide is t-butyl chloride (t-BuCl), t-butyl bromide, allyl chloride, allyl bromide, benzyl chloride, benzyl bromide, chloro-di-phenylmethane, bromo-di-phenylmethane, triphenylmethyl chloride, triphenylmethyl bromide, benzylidene chloride, benzylidene bromide, methyltrichlorosilane, phenyltrichlorosilane, dimethyldichlorosilane, diphenyldichlorosilane, trimethylchlorosilane (TMSCl), benzoyl chloride, benzoyl bromide, propionyl chloride, propionyl bromide, methyl chloroformate, methyl bromoformate, iodomethane, diiodomethane, triiodomethane ("iodomethane"). The iodide may be, for example, tetraiodomethane, 1-iodopropane, 2-iodopropane, 1,3-diiodopropane, t-butyl iodide, 2,2-dimethyl-1-iodopropane (also referred to as "neopentyl iodide"), allyl iodide, iodobenzene, benzyl iodide, diphenylmethyl iodide, triphenylmethyl iodide, benzylidene iodide (also referred to as "benzal iodide"), trimethylsilyl iodide, triethylsilyl iodide, triphenylsilyl iodide, dimethyldiiodosilane, diethyldiiodosilane, diphenyldiiodosilane, methyltriiodosilane, ethyltriiodosilane, phenyltriiodosilane, benzoyl iodide, propionyl iodide, or methyl iodoformate.
[0072] According to one embodiment of the present invention, the non-metal halide may be phosphorus trichloride, phosphorus tribromide, phosphorus pentachloride, phosphorus oxychloride, phosphorus oxybromide, boron trifluoride, boron trichloride, boron tribromide, silicon tetrafluoride, silicon tetrachloride (SiCl), silicon tetrabromide, arsenic trichloride, arsenic tribromide, selenium tetrachloride, selenium tetrabromide, tellurium tetrachloride, tellurium tetrabromide, silicon tetraiodide, arsenic triiodide, tellurium tetraiodide, boron triiodide, phosphorus triiodide, phosphorus oxyiodide, or selenium tetraiodide, etc.
[0073] According to one embodiment of the present invention, the metal halide may be tin tetrachloride, tin tetrabromide, aluminum trichloride, aluminum tribromide, antimony trichloride, antimony pentachloride, antimony tribromide, aluminum trifluoride, gallium trichloride, gallium tribromide, gallium trifluoride, indium trichloride, indium tribromide, indium trifluoride, titanium tetrachloride, titanium tetrabromide, zinc dichloride, zinc dibromide, zinc difluoride, aluminum triiodide, gallium triiodide, indium triiodide, titanium tetraiodide, zinc diiodide, germanium tetraiodide, tin tetraiodide, tin diiodide, antimony triiodide, or magnesium diiodide.
[0074] According to one embodiment of the present invention, the organometallic halide may be an alkylaluminum halide or an alkylaluminum sesquihalide.Specific examples of the organometallic halide include dimethylaluminum chloride, diethylaluminum chloride, dimethylaluminum bromide, diethylaluminum bromide, dimethylaluminum fluoride, diethylaluminum fluoride, methylaluminum dichloride, ethylaluminum dichloride, methylaluminum dibromide, ethylaluminum dibromide, methylaluminum difluoride, ethylaluminum difluoride, methylaluminum sesquichloride, ethylaluminum sesquichloride (EASC), isobutylaluminum sesquichloride, methylmagnesium chloride, methylmagnesium bromide, ethylmagnesium chloride, ethylmagnesium bromide, n-butylmagnesium chloride, n-butylmagnesium bromide, phenylmagnesium chloride, phenylmagnesium bromide, benzylmagnesium chloride, trimethyltin chloride, trimethyltin bromide, triethyltin chloride, triethyltin bromide. ide, di-t-butyltin dichloride, di-t-butyltin dibromide, di-n-butyltin dichloride, di-n-butyltin dibromide, tri-n-butyltin chloride, tri-n-butyltin bromide, methylmagnesium iodide, dimethylaluminum iodide, diethylaluminum iodide, di-n-butylaluminum iodide, diisobutylaluminum iodide, di-n-octylaluminum iodide, methylaluminum diiodide, ethylaluminum diiodide, n-butylaluminum aluminum diiodide, isobutylaluminum diiodide, methylaluminum sesquiiodide, ethylaluminum sesquiiodide, isobutylaluminum sesquiiodide, ethylmagnesium iodide, n-butylmagnesium iodide, isobutylmagnesium iodide, phenylmagnesium iodide, benzylmagnesium iodide, trimethyltin iodide, triethyltin iodide, tri-n-butyltin iodide, di-n-butyltin diiodide, or di-t-butyltin diiodide.
[0075] According to one embodiment of the present invention, the halide may be at least one selected from the group consisting of alkylaluminum halides represented by the following Chemical Formula 3 and alkylaluminum sesquihalides represented by the following Chemical Formula 4, from the viewpoint of improving catalytic activity and thereby reactivity:
[0076] [Chemical formula 3] AlR 7 R 8 R 9
[0077] In the above chemical formula 3, R 7 ~R 9 are each independently a halogen group or an alkyl group having 1 to 12 carbon atoms, and R 7 ~R 9 may not all be halogen groups. 7 ~R 9 are each independently a halogen group or an alkyl group having 1 to 6 carbon atoms, and R 7 ~R 9 may not all be halogen groups. 7 and R 8 are each independently an alkyl group having 1 to 4 carbon atoms, and R 9 may be a halogen group.
[0078] [ka]
[0079] In the above chemical formula 4, R 10 ~R 12 may each independently represent an alkyl group having 1 to 12 carbon atoms, and X1 to X3 may each independently represent a halogen group. 10 ~R 12 may each independently be an alkyl group having 1 to 6 carbon atoms. 10 ~R 12may each independently be an alkyl group having 1 to 4 carbon atoms.
[0080] According to one embodiment of the present invention, the halide may be at least one selected from the group consisting of dialkylaluminum halides and alkylaluminum sesquihalides, from the viewpoint of controlling the catalytic reaction and side reactions of the lanthanum rare earth compound pretreated in step (S10) with hydrogen bonding, oligomerization, or a combination thereof, and the types of dialkylaluminum halides and alkylaluminum sesquihalides are as described above. Specifically, the dialkylaluminum halide may be diethylaluminum chloride, and the alkylaluminum sesquihalide may be ethylaluminum sesquichloride.
[0081] According to one embodiment of the present invention, step (S20) may be performed by adding a molar ratio of 0.1 mol or more, 0.5 mol or more, 1.0 mol or more, 1.5 mol or more, 2.0 mol or more, 2.5 mol or more, or 3.0 mol or more of halide relative to 1 mol of the lanthanum rare earth element compound, or 5.0 mol or less, 4.5 mol or less, 4.0 mol or less, 3.5 mol or less, or 3.0 mol or less.
[0082] According to one embodiment of the present invention, the (S20) step may be carried out at a temperature of -20°C or higher, -15°C or higher, or -10°C or higher, and may be carried out at a temperature of 40°C or lower, 35°C or lower, 30°C or lower, 25°C or lower, or 20°C or lower.
[0083] According to one embodiment of the present invention, the (S20) step may be performed for 10 minutes or more, 15 minutes or more, 20 minutes or more, 25 minutes or more, or 30 minutes or more, and may be performed for 1 hour or less, 50 minutes or less, 40 minutes or less, or 30 minutes or less.
[0084] According to one embodiment of the present invention, in step (S20), catalytic activity can be further improved by adjusting the molar ratio of the lanthanum-based rare earth compound pretreated in step (S10) to the halide, the reaction temperature, and the reaction time.
[0085] According to one embodiment of the present invention, steps (S10) and (S20) may be carried out in an organic solvent. The organic solvent may be a non-polar solvent that is not reactive with the components of the catalyst composition. Specific examples of the organic solvent include linear, branched, or cyclic aliphatic hydrocarbons having 5 to 20 carbon atoms, such as n-pentane, n-hexane, n-heptane, n-octane, n-nonane, n-decane, isohexane, isopentane, isooctane, 2,2-dimethylbutane, cyclopentane, cyclohexane, methylcyclopentane, or methylcyclohexane; mixed solvents of aliphatic hydrocarbons having 5 to 20 carbon atoms, such as petroleum ether, refined petroleum spirits, or kerosene; or aromatic hydrocarbon solvents, such as benzene, toluene, ethylbenzene, or xylene. As a more specific example, the organic solvent may be the linear, branched, or cyclic aliphatic hydrocarbon having 5 to 20 carbon atoms or a mixed solvent of aliphatic hydrocarbons, and preferably n-hexane, cyclohexane, or a mixture thereof.
[0086] According to one embodiment of the present invention, steps (S10) and (S20) may be performed in a batch reactor by sequentially adding the lanthanum-based rare earth compound, pre-treating agent, and alkylating agent for each step, followed by adding the halide.
[0087] According to one embodiment of the present invention, steps (S10) and (S20) may be performed in separate reactors connected in series, respectively, and therefore, two or more reactors may be required to continuously produce a catalyst by the method for producing a catalyst composition.
[0088] According to one embodiment of the present invention, steps (S10) and (S20) may be performed continuously, i.e., steps (S10) and (S20) may be performed continuously in separate reactors connected in series, which may improve the productivity of the catalyst composition and the conjugated diene-based polymer using the catalyst composition and ensure more consistent quality.
[0089] According to one embodiment of the present invention, step (S10) may be performed continuously in multiple reactors connected in series. In this case, the alkylation reaction is carried out in multiple reactors connected in series, thereby ensuring sufficient alkylation and further improving the activity of the catalyst composition. The pre-treating agent and / or alkylating agent may be added to only the first reactor of the multiple reactors connected in series to perform step (S10). Alternatively, the pre-treating agent and / or alkylating agent may be added in multiple batches to the multiple reactors connected in series to perform step (S10). When the pre-treating agent and / or alkylating agent is added in multiple batches to the multiple reactors, the reactor to which the pre-treating agent and / or alkylating agent is added may be selected as needed. Furthermore, the pre-treating agent and / or alkylating agent added in multiple batches to the multiple reactors connected in series may be the same or different.
[0090] According to one embodiment of the present invention, at least one of the plurality of reactors connected in series in step (S10) may include a pipe-type reactor equipped with a line mixer. In this case, by retaining reactants in the pipe-type reactor connected between the series-connected reactors, continuous mixing of the reactants is possible, thereby enabling the alkylation reaction to proceed more efficiently.
[0091] According to one embodiment of the present invention, all steps of the method for preparing a catalyst composition, including steps (S10) and (S20), may be carried out at a temperature of -20°C or higher, -15°C or higher, -10°C or higher, or -5°C or higher, and may be carried out at a temperature of 40°C or lower, 35°C or lower, 30°C or lower, 25°C or lower, 20°C or lower, or 15°C or lower.
[0092] According to one embodiment of the present invention, all steps of the method for producing a catalyst composition, including steps (S10) and (S20), may be carried out for 30 minutes or more, 35 minutes or more, 40 minutes or more, 45 minutes or more, 50 minutes or more, 55 minutes or more, 60 minutes or more, 65 minutes or more, or 70 minutes or more, and may be carried out for 2 hours or less, 1 hour 50 minutes or less, 1 hour 40 minutes or less, 1 hour 30 minutes or less, 1 hour 20 minutes or less, or 1 hour 10 minutes or less.
[0093] Method for producing conjugated diene polymer The present invention provides a method for producing a conjugated diene polymer.
[0094] According to one embodiment of the present invention, the method for preparing a conjugated diene-based polymer may include the step (S100) of polymerizing a conjugated diene-based monomer in a hydrocarbon solvent in the presence of a catalyst composition prepared by the method for preparing a catalyst composition to prepare an activated polymer.
[0095] According to one embodiment of the present invention, the conjugated diene monomer that may be added in step (S100) may be at least one selected from the group consisting of 1,3-butadiene, isoprene, 1,3-pentadiene, 1,3-hexadiene, 2,3-dimethyl-1,3-butadiene, 2-ethyl-1,3-butadiene, 2-methyl-1,3-pentadiene, 3-methyl-1,3-pentadiene, 4-methyl-1,3-pentadiene, and 2,4-hexadiene.
[0096] According to one embodiment of the present invention, the hydrocarbon solvent in step (S100) may be one or more selected from the group consisting of n-pentane, n-hexane, n-heptane, isooctane, cyclohexane, toluene, benzene, and xylene.
[0097] According to one embodiment of the present invention, the catalyst composition may be a catalyst composition prepared by the above-mentioned method for preparing a catalyst composition, and the catalyst composition may be used in an amount such that the neodymium compound is 0.03 mmol or more, 0.04 mmol or more, 0.05 mmol or more, or 0.06 mmol or more, relative to 100 g of total conjugated diene monomers, and may be 0.15 mmol or less, 0.14 mmol or less, 0.13 mmol or less, 0.12 mmol or less, 0.11 mmol or less, 0.10 mmol or less, 0.09 mmol or less, or 0.08 mmol or less.
[0098] According to one embodiment of the present invention, the polymerization in step (S100) can be carried out in a continuous polymerization reactor including at least two reactors or in a batch reactor, and can be temperature-rising polymerization, isothermal polymerization, or constant-temperature polymerization (adiabatic polymerization).
[0099] According to one embodiment of the present invention, the constant temperature polymerization refers to polymerization using the heat of reaction itself without adding any heat after adding a catalyst composition; the temperature-rising polymerization refers to increasing the temperature by adding heat after adding a catalyst composition; and the isothermal polymerization refers to maintaining a constant temperature of the reactants by adding heat or removing heat after adding a catalyst composition.
[0100] According to one embodiment of the present invention, the polymerization in step (S100) may be carried out using coordination anionic polymerization, and the polymerization environment may be bulk polymerization, solution polymerization, suspension polymerization, or emulsion polymerization, and a specific example may be solution polymerization.
[0101] According to one embodiment of the present invention, the polymerization in step (S100) may be carried out at a temperature of −20° C. or higher, −10° C. or higher, 0° C. or higher, 10° C. or higher, 20° C. or higher, 30° C. or higher, 40° C. or higher, 50° C. or higher, or 60° C. or higher, or may be carried out at a temperature of 200° C. or lower, 150° C. or lower, 120° C. or lower, or 90° C. or lower. Within this temperature range, the polymerization reaction can be smoothly controlled and the cis-1,4 bond content of the resulting conjugated diene polymer can be ensured.
[0102] According to one embodiment of the present invention, the polymerization in step (S100) may be carried out for 15 minutes or more, 20 minutes or more, 30 minutes or more, 40 minutes or more, 50 minutes or more, or 1 hour or more, and may be carried out for 3 hours or less, 2 hours and 30 minutes or less, or 2 hours or less.
[0103] According to one embodiment of the present invention, the conjugated diene-based polymer formed by the polymerization in step (S100) may be an activated polymer including sites activated by the catalyst composition.
[0104] According to one embodiment of the present invention, the method may include reacting the activated polymer with a modifier (S200). The modifier may be a known modifier that can be used in preparing a conjugated diene-based polymer using a catalyst composition containing a lanthanum rare earth compound.
[0105] According to one embodiment of the present invention, the method for preparing the conjugated diene-based polymer may include terminating the polymerization by using an additive such as a reaction terminator for completing the polymerization reaction, such as polyoxyethylene glycol phosphate, or an antioxidant, such as 2,6-di-t-butyl-p-cresol. In addition to the reaction terminator, additives for facilitating solution polymerization, such as a chelating agent, dispersant, pH adjuster, oxygen scavenger, or oxygen scavenger, may be optionally used.
[0106] Conjugated diene polymer The present invention provides a conjugated diene-based polymer.
[0107] According to one embodiment of the present invention, the conjugated diene-based polymer may be produced by the method for producing a conjugated diene-based polymer, i.e., the conjugated diene-based polymer may be polymerized in the presence of a catalyst composition produced by the method for producing a catalyst composition described above.
[0108] According to an embodiment of the present invention, the conjugated diene-based polymer may include a conjugated diene-based monomer unit, which refers to a repeating unit formed by polymerization of a conjugated diene-based monomer.
[0109] According to one embodiment of the present invention, the conjugated diene-based polymer may contain 80 wt % or more, 85 wt % or more, 90 wt % or more, 95 wt % or more, or 100 wt % of 1,3-butadiene monomer units, and optionally may contain 20 wt % or less, 15 wt % or less, 10 wt % or less, or 5 wt % or less of other conjugated diene-based monomer units copolymerizable with the 1,3-butadiene monomer. Within this range, a decrease in the cis-1,4 bond content in the conjugated diene-based polymer can be prevented. The 1,3-butadiene monomer may be 1,3-butadiene or a derivative thereof, such as 1,3-butadiene, 2,3-dimethyl-1,3-butadiene, or 2-ethyl-1,3-butadiene. Other conjugated diene monomers copolymerizable with 1,3-butadiene may be 2-methyl-1,3-pentadiene, 1,3-pentadiene, 3-methyl-1,3-pentadiene, 4-methyl-1,3-pentadiene, 1,3-hexadiene, or 2,4-hexadiene.
[0110] According to one embodiment of the present invention, the conjugated diene-based polymer may be a conjugated diene-based polymer catalyzed by a catalyst composition containing a lanthanum rare earth element compound, i.e., the conjugated diene-based polymer may be a conjugated diene-based polymer containing an organometallic moiety activated by a catalyst composition containing a neodymium compound.
[0111] According to one embodiment of the present invention, the conjugated diene-based polymer has a weight average molecular weight (Mw) of 1.0×10 5 g / mol or more, 2.0×10 5 g / mol or more, 3.0×10 5 g / mol or more, 4.0×10 5 g / mol or more, 5.0×10 5 g / mol or more, 6.0×10 5 g / mol or more, 7.0×10 5 g / mol or more, 8.0×10 5 g / mol or greater or 9.0 × 10 5 g / mol or more, and may be 1.0×10 6 g / mol or less, 9.0×10 5g / mol or less, 8.0×10 5 g / mol or less, 7.0×10 5 g / mol or less, 6.0×10 5 g / mol or less, 5.0×10 5 g / mol or less, 4.0×10 5 g / mol or less, or 3.0 × 10 5 The conjugated diene polymer may have a number average molecular weight (Mn) of 1.0×10 g / mol or less. 5 g / mol or more, 2.0×10 5 g / mol or more, 3.0×10 5 g / mol or more, 4.0×10 5 g / mol or greater, or 5.0 × 10 5 g / mol or more, and 5 g / mol or less, 5.0×10 5 g / mol or less, 4.0×10 5 g / mol or less, 3.0×10 5 g / mol or less, 2.0×10 5 g / mol or less, or 1.0 x 10 5 Within this range, when applied to a rubber composition, excellent tensile properties and excellent processability are achieved, which improves the workability of the rubber composition, facilitating kneading, and providing the rubber composition with an excellent balance of mechanical and physical properties.
[0112] According to one embodiment of the present invention, the conjugated diene-based polymer may have a molecular weight distribution (Mw / Mn) of 1.0 or more, 1.5 or more, 2.0 or more, 2.5 or more, 3.0 or more, or 3.3 or more, or 4.0 or less, 3.5 or less, 3.4 or less, or 3.3 or less. The molecular weight distribution can be calculated from the ratio (Mw / Mn) of the number average molecular weight (Mn) to the weight average molecular weight (Mw). Here, the number average molecular weight (Mn) is the common average of the molecular weights of individual polymers calculated by measuring the molecular weights of n polymer chains, summing these molecular weights, and dividing by n. The weight average molecular weight (Mw) indicates the molecular weight distribution of the polymer composition. All molecular weight averages may be expressed in grams per mole (g / mol). The weight average molecular weight and number average molecular weight may each refer to the molecular weight in terms of polystyrene as analyzed by gel permeation chromatography (GPC).
[0113] According to one embodiment of the present invention, when the conjugated diene-based polymer simultaneously satisfies the conditions of the weight-average molecular weight (Mw) and the number-average molecular weight as well as the molecular weight distribution, when applied to a rubber composition, the polymer has excellent tensile properties, viscoelasticity, and processability relative to the rubber composition, and has an excellent balance of these physical properties.
[0114] According to one embodiment of the present invention, the conjugated diene-based polymer may have a cis-1,4 bond content of 96.0 wt % or more, 96.5 wt % or more, 97.0 wt % or more, 97.5 wt % or more, or 97.6 wt % or more, and may have a cis-1,4 bond content of 100.0 wt % or less, 99.5 wt % or less, or 99.0 wt % or less.
[0115] According to one embodiment of the present invention, the conjugated diene-based polymer may have a Mooney viscosity (ML1+4, @100°C) of 30 or more, 35 or more, 40 or more, 41 or more, or 44 or more, and may be 70 or less, 60 or less, 50 or less, 48 or less, or 45 or less.
[0116] rubber composition The present invention provides a rubber composition.
[0117] According to one embodiment of the present invention, the rubber composition may include the conjugated diene polymer. Specifically, the rubber composition may include 0.1 wt % or more, 10 wt % or more, or 20 wt % or more of the conjugated diene polymer, and may include 100 wt % or less, 95 wt % or less, or 90 wt % or less of the conjugated diene polymer. Within these ranges, a molded product, such as a tire, manufactured using the rubber composition may have sufficient abrasion resistance and crack resistance.
[0118] According to one embodiment of the present invention, the rubber composition may further contain other rubber components, if necessary, in addition to the conjugated diene polymer. Here, the rubber components may be contained in an amount of 90% by weight or less based on the total weight of the rubber composition. Specifically, the rubber components may be contained in an amount of 1 to 900 parts by weight based on 100 parts by weight of the conjugated diene copolymer.
[0119] According to one embodiment of the present invention, the rubber component may be natural rubber or synthetic rubber. For example, the rubber component may be natural rubber (NR) containing cis-1,4-polyisoprene; modified natural rubbers obtained by modifying or refining the general natural rubber, such as epoxidized natural rubber (ENR), deproteinized natural rubber (DPNR), and hydrogenated natural rubber; styrene-butadiene copolymer (SBR), polybutadiene (BR), polyisoprene (IR), butyl rubber (IIR), ethylene-propylene copolymer, polyisobutylene-co-yne; The rubber may be synthetic rubber such as isoprene, neoprene, poly(ethylene-co-propylene), poly(styrene-co-butadiene), poly(styrene-co-isoprene), poly(styrene-co-isoprene-co-butadiene), poly(isoprene-co-butadiene), poly(ethylene-co-propylene-codiene), polysulfide rubber, acrylic rubber, urethane rubber, silicone rubber, epichlorohydrin rubber, halogenated butyl rubber, or the like, and any one or a mixture of two or more of these may be used.
[0120] According to one embodiment of the present invention, the rubber composition may include 20 to 90 parts by weight of a filler relative to 100 parts by weight of the conjugated diene-based polymer. The filler may be a silica-based filler, a carbon black-based filler, or a combination thereof. As a specific example, the filler may be a carbon black-based filler.
[0121] According to one embodiment of the present invention, the carbon black filler has a nitrogen adsorption specific surface area (NSA, measured in accordance with JIS K 6217-2:2001) of 20 m 2 / g~250m 2 / g, within this range, the rubber composition can be excellent in processability and the filler can sufficiently ensure its reinforcing performance. The carbon black filler may also have a dibutyl phthalate oil absorption (DBP) of 80 cc / 100 g to 200 cc / 100 g, within this range, the rubber composition can be excellent in processability and the filler can sufficiently ensure its reinforcing performance.
[0122] According to one embodiment of the present invention, the silica-based filler may be wet silica (hydrated silicic acid), dry silica (anhydrous silicic acid), calcium silicate, aluminum silicate, or colloidal silica. Specifically, the silica-based filler may be wet silica, which is most effective in improving both fracture resistance and wet grip. The silica-based filler may also have a nitrogen surface area per gram (N2SA) of 120 m 2 / g~180m 2 / g, and the CTAB (cetyl trimethyl ammonium bromide) adsorption specific surface area is 100m 2 / g~200m 2 / g, and within this range, the rubber composition has excellent processability and the reinforcing performance of the filler can be sufficiently ensured.
[0123] According to one embodiment of the present invention, when a silica-based filler is used as the filler, a silane coupling agent may be used in combination to improve reinforcement and low heat generation. Examples of the silane coupling agent include bis(3-triethoxysilylpropyl)tetrasulfide, bis(3-triethoxysilylpropyl)trisulfide, bis(3-triethoxysilylpropyl)disulfide, bis(2-triethoxysilylethyl)tetrasulfide, bis(3-trimethoxysilylpropyl)tetrasulfide, bis(2-trimethoxysilylethyl)tetrasulfide, 3-mercaptopropyltrimethoxysilane, 3-mercaptopropyltriethoxysilane, 2-mercaptoethyltrimethoxysilane, 2-mercaptoethyltriethoxysilane, 3-trimethoxysilylpropyl-N,N-dimethylthiocarbamoyltetrasulfide, and 3-triethoxysilylpropyl-N,N-dimethylthiocarbamoyltetrasulfide. dimethylthiocarbamoyl tetrasulfide, 2-triethoxysilylethyl-N,N-dimethylthiocarbamoyl tetrasulfide, 3-trimethoxysilylpropyl benzothiazolyl tetrasulfide, 3-triethoxysilylpropyl benzolyl tetrasulfide, 3-triethoxysilylpropyl methacrylate monosulfide, 3-trimethoxysilylpropyl methacrylate monosulfide, bis(3-diethoxymethylsilylpropyl)tetrasulfide, 3-mercaptopropyldimethoxymethylsilane, dimethoxymethylsilylpropyl-N,N-dimethylthiocarbamoyl tetrasulfide, dimethoxymethylsilylpropyl benzothiazolyl tetrasulfide, etc. Specific examples of the silane coupling agent include bis(3-triethoxysilylpropyl) polysulfide and 3-trimethoxysilylpropyl benzothiazyl tetrasulfide, taking into consideration the effect of improving reinforcement.
[0124] According to one embodiment of the present invention, the rubber composition may be sulfur crosslinkable, and therefore may further contain a vulcanizing agent. The vulcanizing agent may specifically be sulfur powder, and may be contained in an amount of 0.1 to 10 parts by weight per 100 parts by weight of the rubber component. Within this range, the necessary elastic modulus and strength of the vulcanized rubber composition can be ensured, as well as fuel economy.
[0125] According to an embodiment of the present invention, the rubber composition may further include, in addition to the above components, various additives commonly used in the rubber industry, specifically, a vulcanization accelerator, process oil, plasticizer, antioxidant, scorch inhibitor, zinc white, stearic acid, thermosetting resin, or thermoplastic resin.
[0126] According to an embodiment of the present invention, the vulcanization accelerator is not particularly limited, and specifically, a thiazole-based compound such as M (2-mercaptobenzothiazole), DM (dibenzothiazyl disulfide), or CZ (N-cyclohexyl-2-benzothiazyl sulfenamide), or a guanidine-based compound such as DPG (diphenylguanidine) may be used. The vulcanization accelerator may be included in an amount of 0.1 to 5 parts by weight based on 100 parts by weight of the rubber component.
[0127] According to one embodiment of the present invention, the process oil acts as a softener in the rubber composition and may be, for example, a paraffinic, naphthenic, or aromatic compound. More specifically, aromatic process oils are used in consideration of tensile strength and abrasion resistance, and naphthenic or paraffinic process oils are used in consideration of hysteresis loss and low-temperature properties. The process oil may be included in an amount of 100 parts by weight or less per 100 parts by weight of the rubber component. Within this range, a decrease in the tensile strength and low heat buildup (fuel economy) of the vulcanized rubber can be prevented.
[0128] According to one embodiment of the present invention, the antioxidant may be N-isopropyl-N'-phenyl-p-phenylenediamine, N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine, 6-ethoxy-2,2,4-trimethyl-1,2-dihydroquinoline, or a high-temperature condensate of diphenylamine and acetone, etc. The antioxidant may be used in an amount of 0.1 to 6 parts by weight based on 100 parts by weight of the rubber component.
[0129] According to one embodiment of the present invention, the rubber composition can be obtained by kneading the compounding recipe using a kneading machine such as a Banbury mixer, a roll, or an internal mixer. After molding and processing, a vulcanization step can be carried out to obtain a rubber composition with low heat buildup and excellent abrasion resistance.
[0130] According to one embodiment of the present invention, the rubber composition may be used to manufacture various tire components such as tire treads, undertreads, sidewalls, carcass coating rubbers, belt coating rubbers, bead fillers, shapers, or bead coating rubbers, as well as various industrial rubber products such as vibration isolators, belt conveyors, hoses, etc. As a specific example, a molded product manufactured using the rubber composition may include a tire or a tire tread.
[0131] While the present invention may be embodied in various different forms, it is to be understood that the invention is not limited to the specific embodiments set forth herein, and that the invention may be embodied in various different forms without departing from the spirit or scope of the present invention.
[0132] [Examples and Comparative Examples] [Example 1] A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Triethylaluminum and diisobutylaluminum hydride were then charged to the reactor at 0°C in amounts of 10 moles of triethylaluminum and 15 moles of diisobutylaluminum hydride per mole of neodymium, respectively, and stirred for 30 minutes. Diethylaluminum chloride was then charged to the reactor at 0°C in amounts of 3 moles of diethylaluminum chloride per mole of neodymium, and stirred for 30 minutes to prepare a catalyst composition.
[0133] [Example 2] A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Next, triethylaluminum and triisobutylaluminum were charged to the reactor at 0°C in amounts of 10 moles of triethylaluminum and 30 moles of diisobutylaluminum hydride per mole of neodymium, respectively, and stirred for 30 minutes. Next, diethylaluminum chloride was charged to the reactor at 0°C in amounts of 3 moles of diethylaluminum chloride per mole of neodymium, and stirred for 30 minutes to prepare a catalyst composition.
[0134] [Example 3] A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Triethylaluminum and diisobutylaluminum hydride were then charged to the reactor at 0°C in amounts of 20 moles of triethylaluminum and 15 moles of diisobutylaluminum hydride per mole of neodymium, respectively, and stirred for 30 minutes. Diethylaluminum chloride was then charged to the reactor at 0°C in amounts of 3 moles of diethylaluminum chloride per mole of neodymium, and stirred for 30 minutes to prepare a catalyst composition.
[0135] [Example 4] A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Triethylaluminum and diisobutylaluminum hydride were then charged to the reactor at 0°C in amounts of 10 moles of triethylaluminum and 15 moles of diisobutylaluminum hydride per mole of neodymium, respectively, and stirred for 30 minutes. Ethylaluminum sesquichloride was then charged to the reactor at 0°C in amounts of 1.5 moles of ethylaluminum sesquichloride per mole of neodymium, and stirred for 30 minutes to prepare a catalyst composition.
[0136] [Comparative Example 1] A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Diisobutylaluminum hydride was then charged to the reactor at a ratio of 15 moles of diisobutylaluminum hydride per mole of neodymium at 0°C and stirred for 30 minutes. Diethylaluminum chloride was then charged to the reactor at a ratio of 3 moles of diethylaluminum chloride per mole of neodymium at 0°C and stirred for 30 minutes to prepare a catalyst composition.
[0137] Comparative Example 2 A reactor was charged with 2.1 g of 1,3-butadiene diluted to 4.5 wt% in n-hexane and 0.6 g of neodymium versatate (Solvay) diluted to 40 wt% in n-hexane. Triisobutylaluminum was then charged to the reactor at 0°C in a ratio of 30 moles per mole of neodymium and stirred for 30 minutes. Diethylaluminum chloride was then charged to the reactor at 0°C in a ratio of 3 moles per mole of neodymium and stirred for 30 minutes to prepare a catalyst composition.
[0138] [Experimental Example] [Experimental Example 1: Production of conjugated diene polymer and evaluation of catalyst composition activity] A 20 L autoclave reactor was charged with 500 g of 1,3-butadiene and 4.2 kg of n-hexane, and the internal temperature of the reactor was raised to 70°C. When the catalyst compositions prepared in Examples 1 to 4 were used, 0.01 g of diisobutylaluminum hydride was added as a molecular weight modifier. When the catalyst compositions prepared in Comparative Examples 1 and 2 were used, 0.25 g of diisobutylaluminum hydride was added as a molecular weight modifier. After the catalyst compositions prepared in Examples 1 to 4 and Comparative Examples 1 and 2 were added, polymerization was carried out. When the polymerization conversion reached 98% or higher, an n-hexane solution containing 1.0 g of a polymerization terminator and a 30 wt% solution of the antioxidant Irganox 1520 (BASF) dissolved in n-hexane were added to terminate the reaction. The resulting polymer was placed in steam-heated water, stirred to remove the solvent, and roll-dried to remove the remaining solvent and water, producing a butadiene polymer.
[0139] During the preparation of the butadiene polymer, a portion of the polymerization solution was taken after 25 minutes of reaction time from the start of polymerization, and the TSC (total solid content, %) was measured, and the polymerization conversion was calculated using the following mathematical formula 1. The polymerization conversion after 25 minutes of reaction time was measured for each catalyst composition in Examples 1 to 4 and Comparative Examples 1 and 2 to evaluate the activity of the catalyst composition, which is shown in Table 1 below. Using the measured value in Comparative Example 1 as a reference value, the activity of the catalyst composition in each Example and Comparative Example was indexed using the following mathematical formula 2.
[0140] The properties of the catalyst compositions produced in Examples 1 and 2 and Comparative Examples 1 to 3 were visually evaluated, and the morphology is shown in Table 1 below.
[0141] [Mathematical formula 1] Polymerization conversion rate (%) = TSC of sample (%) / concentration of 1,3-butadiene added (wt%)
[0142] [Mathematical formula 2] Activity Index = (measured value / reference value) x 100
[0143] [Table 1]
[0144] As shown in Table 1, the catalyst compositions prepared in Examples 1 to 4 exhibited liquid state in the catalyst solution, confirming that the catalyst compositions were prepared. Furthermore, it was confirmed that the activity of the catalyst compositions was significantly higher than that of Comparative Examples 1 and 2.
[0145] On the other hand, in Comparative Examples 1 and 2, in which triethylaluminum, a pretreatment agent, was not added during the alkylation reaction according to the present invention, it was confirmed that the activity of the catalyst composition was reduced compared to Examples 1 and 2, in which the same alkylating agent and halide were used.
[0146] [Experimental Example 2: Evaluation of physical properties of conjugated diene polymer] The conjugated diene polymers produced in Experimental Example 1 using the catalyst compositions of Examples 1 to 4 and Comparative Examples 1 and 2 were measured for Mooney viscosity, molecular weight distribution, and cis-1,4 bond content as follows, and the results are shown in Table 2 below.
[0147] *Mooney viscosity (ML1+4, @100°C): Mooney viscosity was measured for each polymer using a Monsanto MV2000E large rotor at 100°C with a rotor speed of 2±0.02 rpm. The sample used was left at room temperature (23±3°C) for 30 minutes or more, and then 27±3g was taken and filled into the die cavity. The platen was operated to apply torque and measure the Mooney viscosity.
[0148] *Weight-average molecular weight (Mw), number-average molecular weight (Mn), and molecular weight distribution (MWD): Each polymer was dissolved in tetrahydrofuran (THF) at 40°C for 30 minutes and then loaded onto gel permeation chromatography (GPC). Two PLgel Olexis columns and one PLgel mixed-C column (both manufactured by Polymer Laboratories) were used in combination. All newly replaced columns were mixed-bed columns, and polystyrene was used as the GPC standard material.
[0149] *Cis-1,4 bond content: The cis-1,4 bond content of the conjugated diene moiety was measured by Fourier transform infrared spectroscopy (FT-IR). Specifically, carbon disulfide in the same cell was used as a blank, and the FT-IR transmittance spectrum of a carbon disulfide solution of a conjugated diene polymer prepared at a concentration of 5 mg / mL was measured. -1 The maximum peak value a (baseline) near 967 cm indicates a trans-1,4 bond. -1 The minimum peak value b near 911 cm indicates a vinyl bond -1 The minimum peak value c near 736 cm indicates a cis-1,4 bond. -1 The respective contents were calculated using the minimum peak value d in the vicinity.
[0150] [Table 2]
[0151] As shown in Table 2, the conjugated diene-based polymers prepared using the catalyst compositions prepared in Examples 1 to 4 were found to have Mooney viscosity, molecular weight distribution, and cis-1,4-bond content that were equal to or higher than those of Comparative Examples 1 and 2 in which only an alkylating agent was added during the alkylation reaction.
[0152] [Experimental Example 3: Evaluation of rubber composition properties] Using the catalyst compositions of Examples 1 to 4 and Comparative Examples 1 and 2 and the conjugated diene polymer produced in Experimental Example 1, rubber compositions and rubber test specimens were produced. Then, the Mooney viscosity, abrasion resistance, tensile properties and viscoelastic properties of the rubber compositions were measured by the following methods, and the results are shown in Table 3 below.
[0153] <Production of Rubber Composition and Rubber Test Piece> Using the catalyst compositions of Examples 1 to 4 and Comparative Examples 1 and 2, 100 parts by weight of the conjugated diene polymer prepared in Experimental Example 1 was blended with 70 parts by weight of carbon black, 22.5 parts by weight of process oil (TDAE oil), 2 parts by weight of antioxidant (TMDQ), 3 parts by weight of zinc oxide (ZnO), and 2 parts by weight of stearic acid to prepare the conjugated diene polymer.
[0154] Next, 2 parts by weight of sulfur, 2 parts by weight of a vulcanization accelerator (CZ), and 0.5 parts by weight of a vulcanization accelerator (DPG) were added to each of the rubber compositions, and the mixture was weakly mixed at 50 rpm at 50°C for 1 minute 30 seconds. After that, a sheet-shaped vulcanization compound was prepared using a roll at 50°C, and the vulcanization compound was vulcanized at 160°C for 25 minutes to prepare rubber test pieces.
[0155] *Tensile properties: After vulcanizing each rubber composition prepared above at 150°C for 90 minutes, the modulus of the vulcanized product at 300% elongation (M-300%, kg·f / cm) was measured in accordance with ASTM D412. 2 ) was measured. The measured value of Comparative Example 1 was used as a reference value, and the 300% modulus of each Example and Comparative Example was indexed using the following mathematical formula 3.
[0156] [Mathematical formula 3] M-300% Index = (measured value / reference value) x 100
[0157] *Viscoelastic properties: Using a DMTS 500N manufactured by Gabo, Germany, the viscoelastic coefficient (Tan δ) was measured at a frequency of 10 Hz, a prestrain of 3%, and a dynamic strain of 3% from -60°C to 60°C. Here, the Tan δ value at 0°C indicates rolling resistance, and the Tan δ value at 60°C indicates rolling resistance characteristics (fuel economy). Using the measured value of Comparative Example 2 as the reference value, the viscoelastic properties of each Example and Comparative Example were indexed using the following mathematical formula 4.
[0158] [Mathematical formula 4] Tan δ 60℃ Index = (reference value / measured value) × 100
[0159] *Abrasion resistance: A DIN abrasion test was performed on each of the prepared rubber test pieces according to ASTM D5963, and the results were expressed as a DIN wt loss index (loss volume index: ARIA (Abrasion resistance index, Method A)). The abrasion resistance of each example and comparative example was indexed using the measurement value of Comparative Example 1 as the reference value and the following mathematical formula 5:
[0160] [Mathematical formula 5] Wear Index = (reference value / measured value) x 100
[0161] [Table 3]
[0162] As shown in Table 3, it was confirmed that the rubber compositions containing the conjugated diene-based polymers prepared using the catalyst compositions prepared in Examples 1 to 4 had improved tensile properties, viscoelastic properties, and abrasion resistance compared to the rubber compositions containing the conjugated diene-based polymers prepared using the catalyst compositions prepared in Comparative Examples 1 and 2.
[0163] On the other hand, it was confirmed that the rubber composition prepared using the conjugated diene-based polymer prepared using the catalyst composition prepared in Comparative Example 2 had decreased tensile properties, viscoelastic properties, and abrasion resistance compared to the rubber composition prepared using the conjugated diene-based polymer prepared using the catalyst composition prepared in Comparative Example 1.
[0164] This result is attributable to the improved catalytic activity achieved by pretreating hydrogen-bonded lanthanum-based rare earth compounds and / or oligomeric forms of lanthanum-based rare earth compounds, which cause a decrease in catalytic activity during alkylation reactions, during the preparation of a catalyst composition for producing a conjugated diene-based polymer.
[0165] These results confirm that the catalytic activity of the catalytic composition prepared by the method for preparing a catalytic composition of the present invention is excellent because it is prepared by pretreating hydrogen-bonded lanthanum-based rare earth compounds and / or oligomeric forms of lanthanum-based rare earth compounds, which cause a decrease in catalytic activity during the alkylation reaction.
[0166] In addition, it has been confirmed that the conjugated diene polymer produced by the method for producing a conjugated diene polymer of the present invention has a low content of lanthanum-based rare earth elements remaining in the conjugated diene polymer due to its high catalytic activity, a high content of cis bonds and linearity, and a narrow molecular weight distribution, and when applied to a rubber composition, it exhibits excellent wear resistance and fuel economy.
Claims
1. an alkylation reaction step (S10) of mixing and reacting a lanthanum rare earth element compound with a pretreatment agent which is one or more trialkylaluminums selected from the group consisting of trimethylaluminum and triethylaluminum, and an alkylating agent which is an alkylaluminum compound represented by the following chemical formula 2; a halogenation reaction step (S20) of mixing and reacting the lanthanum rare earth compound alkylated in the step (S10) with a halide, the pretreatment agent is a pretreatment agent that performs a pretreatment reaction of hydrogen bonding, oligomer formation, or a combination thereof with the lanthanum rare earth element compound; The step (S10) is carried out by adding the trialkylaluminum in a molar ratio of 1 mole to 20 moles and the alkylating agent in a molar ratio of 12 moles to 30 moles, relative to 1 mole of the lanthanum rare earth element compound; The step (S20) is carried out by adding the halide in a molar ratio of 0.1 mol to 5.0 mol per 1 mol of the lanthanum rare earth element compound. , a method for producing a catalyst composition. [Chemical formula 2] AlR4R5R6 In the above Chemical Formula 2, R 4 to R 6 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms. However, when R 4 to R 6 are not all hydrogen but all alkyl groups, the number of carbon atoms of the alkyl group is 3 to 12.
2. 2. The method for producing a catalyst composition according to claim 1, wherein the lanthanum-based rare earth element compound is a neodymium compound represented by the following chemical formula 1: 【Transformation 5】 In the above formula 1, R 1 ~R 3 are each independently hydrogen or an alkyl group having 1 to 12 carbon atoms, and R 1 ~R 3 But it's not all hydrogen.
3. The lanthanum rare earth element compound is Nd(2-ethylhexanoate). 3 , Nd(2,2-dimethyldecanoate) 3 , Nd(2,2-diethyldecanoate) 3 , Nd(2,2-dipropyldecanoate) 3 , Nd(2,2-dibutyldecanoate) 3 , Nd(2,2-dihexyldecanoate) 3 , Nd(2,2-dioctyldecanoate) 3 , Nd(2-ethyl-2-propyl decanoate) 3 , Nd(2-ethyl-2-butyldecanoate) 3 , Nd(2-ethyl-2-hexyldecanoate) 3 , Nd(2-propyl-2-butyldecanoate) 3 , Nd(2-propyl-2-hexyldecanoate) 3 , Nd(2-propyl-2-isopropyldecanoate) 3 , Nd(2-butyl-2-hexyldecanoate) 3 , Nd(2-hexyl-2-octyldecanoate) 3 , Nd(2,2-diethyloctanoate) 3 , Nd(2,2-dipropyl octanoate) 3 , Nd(2,2-dibutyl octanoate) 3 , Nd(2,2-dihexyl octanoate) 3 , Nd(2-ethyl-2-propyl octanoate) 3 , Nd(2-ethyl-2-hexyl octanoate) 3 , Nd(2,2-diethylnonanoate) 3 , Nd(2,2-dipropylnonanoate) 3 , Nd(2,2-dibutylnonanoate) 3 , Nd(2,2-dihexylnonanoate) 3 , Nd(2-ethyl-2-propylnonanoate) 3 and Nd(2-ethyl-2-hexylnonanoate) 3 The method for producing a catalyst composition according to claim 1, wherein the catalyst is one or more selected from the group consisting of:
4. 2. The method for producing a catalyst composition according to claim 1, wherein the alkylating agent is a dialkylaluminum hydride.
5. The method for preparing a catalyst composition according to claim 1, wherein the alkylation reaction in step (S10) is carried out using a conjugated diene monomer.
6. 2. The method for producing a catalyst composition according to claim 1, wherein the halide is at least one selected from the group consisting of alkylaluminum halides represented by the following Chemical Formula 3 and alkylaluminum sesquihalides represented by the following Chemical Formula 4: [Chemical formula 3] AlR 7 R 8 R 9 In the above Chemical Formula 3, R 7 and R 8 are each independently an alkyl group having 1 to 4 carbon atoms, and R 9 is a halogen group. 【Transformation 6】 In the above Chemical Formula 4, R 10 ~R 12 are each independently an alkyl group having 1 to 12 carbon atoms, X 1 ~X 3 are each independently a halogen group.
7. The method for producing a catalyst composition according to claim 1, wherein the halide is at least one selected from the group consisting of dialkylaluminum halides and alkylaluminum sesquihalides.
8. The method for producing a catalyst composition according to claim 1, wherein the steps (S10) and (S20) are carried out in separate reactors connected in series.
9. The method for producing a catalyst composition according to claim 1 , wherein the steps (S10) and (S20) are carried out consecutively.
10. 2. The method for producing a catalyst composition according to claim 1, wherein step (S10) is continuously performed in a plurality of reactors connected in series, and the pretreatment agent is added to the plurality of reactors connected in series in several batches.
11. 2. The method for preparing a catalyst composition according to claim 1, wherein step (S10) is continuously performed in a plurality of reactors connected in series, and the alkylating agent is added to the plurality of reactors connected in series in several batches.
12. A method for producing a conjugated diene polymer, comprising the step (S100) of polymerizing a conjugated diene monomer in a hydrocarbon solvent in the presence of a catalyst composition produced by the method for producing a catalyst composition according to claim 1 to produce an activated polymer.
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