Process for preparing 1,3-butadiene copolymers

EP4676986A1Pending Publication Date: 2026-01-14EVONIK OPERATIONS GMBH
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Patent Information

Application Number
EP2023809531
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-03-07
Filing Date
2023-11-17
Publication Date
2026-01-14

AI Technical Summary

Technical Problem

Existing processes for producing copolymers based on 1,3-butadiene and hydrocarbons with olefinic double bonds result in high molecular weights and high dispersity, lacking high vinyl content, which limits their application as effective crosslinkers.

Method used

A solution polymerization process using lithium organic compounds as initiators, operating at 0°C to 50°C and 0.2 to 0.6 MPa pressure, with 55 to 65% 1,3-butadiene by weight, to produce copolymers with a high proportion of 1,3-butadiene-derived units and a specific molecular weight range, enabling low molecular weight and low dispersity copolymers with high vinyl content.

Benefits of technology

The process safely produces copolymers with low molecular weight and low dispersity, offering excellent properties as crosslinkers and enabling various functionalizations, with a glass transition temperature range of -15°C to 5°C and a number average molecular weight of 2,000 to 5,400 g/mol.

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Abstract

The present invention relates to a process for preparing a copolymer based on at least 1,3-butadiene and at least one hydrocarbon different from 1,3-butadiene comprising at least one olefinic double bond as monomers by solution polymerization utilizing one or more lithium organic compounds as initiator, wherein the polymerization is performed at a temperature of the reaction mixture of from 0 °C to 50 °C and at a pressure of from 0.2 to 0.6 MPa, and wherein of from 55 to 65% by weight of 1,3-butadiene based on the total mass of monomers is added to the reaction mixture, to a copolymer comprising units derived from 1,3-butadiene and units derived from at least one hydrocarbon different from 1,3-butadiene comprising at least one olefinic double bond as monomer, wherein that the copolymer comprises the monomer units derived from 1,3-butadiene of formula (A), (B), and (C) wherein the proportion of (A) in the entirety of the 1,3-butadiene-derived monomer units present in the copolymer is at least 80 mol-%, and wherein the sum of the proportions of (B) and (C) in the entirety of the 1,3-butadiene-derived monomer units present in the polybutadiene is not more than 20 mol-%, and wherein the copolymer has a number average molecular weight Mn of from 2,000 to 5,400 g / mol and a glass transition temperature TG of from -15 °C to 5 °C, and to the use of a copolymer according to the invention as reactive crosslinker.
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Description

[0001] Process for preparing 1,3-butadiene copolymers

[0002] The present invention relates to a process for preparing a copolymer based on at least 1 ,3- butadiene and at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomers by solution polymerization utilizing one or more lithium organic compounds as initiator, wherein the polymerization is performed at a temperature of the reaction mixture of from 0 °C to 50 °C and at a pressure of from 0.2 to 0.6 MPa, and wherein of from 55 to 65% by weight of 1 ,3-butadiene based on the total mass of monomers is added to the reaction mixture, to a copolymer comprising units derived from 1 ,3-butadiene and units derived from at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomer, wherein that the copolymer comprises the monomer units derived from 1 ,3-butadiene of formula (A), (B), and (C) wherein the proportion of (A) in the entirety of the 1 ,3-butadiene-derived monomer units present in the copolymer is at least 80 mol-%, and wherein the sum of the proportions of (B) and (C) in the entirety of the 1 ,3-butadiene-derived monomer units present in the polybutadiene is not more than 20 mol-%, and wherein the copolymer has a number average molecular weight Mn of from 2,000 to 5,400 g / mol and has a glass transition temperature TG of from -15 °C to 5 °C, and to the use of a copolymer according to the invention as reactive crosslinker.

[0003] Copolymers based on at least 1 ,3-butadiene and styrene as monomers are well known from rubber industries. The production of those copolymers (styrene-butadiene rubber) is normally done by anionic-initiated polymerization.

[0004] US 2010 / 0206443 A1 describes a process for preparing a solution-polymerized styrene butadiene rubber (s-SBR) having a number average molecular weight which is within the range of about 100,000 to about 475,000 g / mol.

[0005] CN 100596300 C describes a process of anionic-initiated polymerization for preparing a butadienestyrene random copolymer substantially free of styrene micro-blocks having a number-average molecular weight Mn of from 50,000 to 600,000 g / mol.

[0006] CN109749010A describes a random copolymer, the application of the random copolymer in tire tread rubber, and the preparation of the random copolymer by anionic polymerization. The random copolymer obtained has a number average molecular weight (Mn) of 70,000 to 220,000 g / mol and a molecular weight distribution index (Mw / Mn) of 1 .03 to 1.1 , preferably 1 .05 to 1 .07. The polymerization temperature used is in the range of from 50 to 95 °C.

[0007] In US 4,367,325 A, a method for synthesizing rubber with high vinyl content (80% and more) by anionic polymerization is described. The reaction needs to be carried out at a low starting temperature of 0 °C followed by a maximum polymerization temperature of 80 °C. The document is silent about the molecular weight of the copolymers produced. US 4,139,690 A describes a process for preparing conjugated diene polymers by either polymerizing at least one selected from a group of conjugated diene compounds or copolymerizing a conjugated diene compound with an alkenyl aromatic compound. The polymerization temperature usually ranges from -80 °C to 150 °C. The document is silent about the molecular weight of the copolymers produced. The copolymers show a vinyl content of below 50%.

[0008] In light of this background, it was an object of the invention to provide a process for preparing copolymers with a low molecular weight and a low dispersity while also having a high vinyl content.

[0009] Surprisingly, it has been found that these and further objects can be achieved by the subject matter of the present patent application and especially by the subject matter of the accompanying independent claims, with embodiments being specified in the dependent claims.

[0010] The present invention accordingly provides a process for preparing a copolymer based on at least 1 ,3-butadiene and at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomers by solution polymerization utilizing one or more lithium organic compounds as initiator, wherein the polymerization is performed at a temperature of the reaction mixture from 0 °C to 50 °C and at a pressure of from 0.2 to 0.6 MPa, and wherein of from 55 to 65% by weight of 1 ,3-butadiene based on the total mass of monomers is added to the reaction mixture.

[0011] The present invention further provides a copolymer comprising units derived from 1 ,3-butadiene and units derived from at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomer, wherein that the copolymer comprises the monomer units derived from 1 ,3-butadiene of formula (A), (B), and (C) wherein the proportion of (A) in the entirety of the 1 ,3-butadiene-derived monomer units present in the copolymer is at least 60 mol-%, and wherein the sum of the proportions of (B) and (C) in the entirety of the 1 ,3-butadiene-derived monomer units present in the polybutadiene is not more than 40 mol-%, and wherein the copolymer has a number average molecular weight Mn of from 2,000 to 5,400 g / mol and has a glass transition temperature TG of from -15 °C to 5 °C.

[0012] The present invention is also directed to the use of a copolymer according to the invention as reactive crosslinker.

[0013] The process according to the invention has the advantage that the reaction has a lower exothermic reaction potential and can therefore be run in a much safer way.

[0014] The process of the present invention has the further advantage, that copolymers based on at least 1 ,3-butadiene and at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond, most preferably styrene can be produced, having a low molecular weight and a lower dispersity compared to copolymers already known in the art.

[0015] The copolymers according to the invention have a high number of vinyl groups and therefore excellent properties when used as a crosslinker.

[0016] The copolymer according to the invention can be used as raw material for addition reactions, making copolymers with different functionalizations available.

[0017] The process, product and use according to the invention are described below by way of example, without any intention that the invention be limited to these illustrative embodiments. Where ranges, general formulae or classes of compounds are specified below, these are intended to encompass not only the corresponding ranges or groups of compounds, which are explicitly mentioned but also all subranges and subgroups of compounds which can be obtained by removing individual values (ranges) or compounds. Where documents are cited in the context of the present description, their content shall fully form part of the disclosure content of the present invention, particularly in respect of the matters referred to. Where figures are given in per cent hereinafter, these are percentages by weight unless stated otherwise. Where averages, for example molar mass averages, are specified hereinafter, these are the weight average unless stated otherwise. Where properties of a material are referred to hereinafter, for example viscosities or the like, these are properties of the material at 20 °C unless stated otherwise. Where chemical (empirical) formulae are used in the present invention, the given indices may be either absolute numbers or average values. For polymeric compounds, the indices preferably represent average values.

[0018] The process according to the invention for preparing a copolymer based on at least 1 ,3-butadiene and at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomers by solution polymerization utilizing one or more lithium organic compounds as initiator, is performed at a temperature of the reaction mixture of from 0 °C to 50 °C, preferably of from 5 °C to 45 °C.

[0019] Preferred hydrocarbons different from 1 ,3-butadiene and comprising at least one olefinic double bond are preferably selected from the group consisting of styrene, divinylbenzene, ethyl- vinylbenzene, diisopropenylbenzene, and isoprene. More preferably styrene, divinylbenzene, or mixtures thereof are used as hydrocarbons different from 1 ,3-butadiene. Most preferably styrene is used as hydrocarbon different from 1 ,3-butadiene.

[0020] Preferably the starting temperature is in a temperature range of from 0 to 20 °C. At this starting temperature preferably the lithium organic compound and at least one of the monomers is added to the reaction mixture, which preferably already includes a solvent. In the process according to the invention any solvent that is inert to the other compounds present in the reaction mixture can be used as a solvent. Preferred solvents used are hydrocarbons, more preferably pentane, isooctane, n-octane, cyclohexane, n-hexane, benzene, toluene, xylene, and ethylbenzene, alone or in admixture thereof. Most preferably cyclohexane, n-octane, or toluene is used as solvent. Even more preferably cyclohexane is used as solvent.

[0021] In the process according to the invention any suitable lithium organic can be used as initiator. Typical examples of the organolithium initiators useful in the practice of the invention are alkyl lithiums, such as ethyl lithium, propyl lithium, n-butyl lithium, sec-butyl lithium, or tert-butyl lithium; aryl lithiums, such as phenyl lithium or tolyl lithium; alkenyl lithium, such as vinyl lithium or propenyl lithium; alkylene dilithiums, such as tetramethylene dilithium, pentamethylene dilithium, hexamethylene dilithium, or decamethylene dilithium; arylene dilithiums, such as 1 ,3- dilithiobenzene or 1 ,4-dilithiobenzene; and 1 ,3,5-trilithiocyclohexane, 1 ,2,5-trilithionaphthalene, 1 ,3,5,8-tetralithiodecane, and 1 ,2,3,5-tetralithio-4-hexyl-anthracene. Of these initiators, n-butyl lithium, sec-butyl lithium, tert-butyl lithium, and tetramethylene dilithium are preferable, and n-butyl lithium is most preferably used as an initiator.

[0022] The amount of the organolithium initiator to be used depends on the polymerization rate and the molecular weight of the product polymer desired. In terms of lithium atoms, usually an amount from 0.2 to 25 grams lithium atoms, preferable from 0.5 to 15 grams lithium atoms, per 1000 grams of the total sum of monomers used will give satisfactory result.

[0023] In the process according to the invention the polymerization is performed at a pressure of from 0.2 to 0.6 MPa. The pressure can be adjusted using an inert gas. Preferable inert gases used are noble gases, e.g. helium or argon, or nitrogen. Most preferably nitrogen is used as inert gas.

[0024] The process according to the invention can be performed as discontinuous (batchwise) process or as continuous process. Preferably the process is performed as discontinuous (batchwise) process.

[0025] In the process according to the invention it might be advantageous that first at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond, preferably styrene, is added to the reaction mixture and after addition of the at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond, preferably styrene, the 1 ,3- butadiene and optional monomers are added to the reaction mixture. Preferably first styrene is added to the reaction mixture and only after the addition of the styrene is complete the 1 ,3- butadiene and optional monomers are added to the reaction mixture. In the event that blockcopolymers shall be produced, the addition of the 1 ,3-butadiene and optional monomers should be started only after the polymerization of the first added monomer is completed. It might be advantageous to add a Lewis base to the reaction mixture as a randomizing agent as suggested by US 2,975,160. Typical Lewis bases include ethers, tertiary amines, phosphines, and sulfides. Suitable Lewis bases are for example diethyl ether, di-n-propyl ether, di-isopropyl ether, di-n- butylether, ethyl butyl ether, ethylene glycol dimethyl ether, diethylene glycol diethyl ether, triethylene glycol dimethyl ether, tetrahydrofuran, alpha-methoxytetrahydrofuran, alpha-methyltetrahydrofuran, dioxane, and 1 ,2-dimethoxybenzene. Among useful tertiary amines are trimethylamine, triethylamine, N,N,N',N'-tetramethylethylenediamine, N-methylmorpholine, N-ethylmorpholine, and N- phenylmorpholine. Suitable sulfide compounds are dialkyl and diallyl sulfides. Moreover, certain phosphorus compounds, e.g., hexamethyl phosphoric triamide, may be used.

[0026] Of the Lewis bases mentioned above, preferred ones are diethyl ether, di-n-butyl ether, ethylene glycol dimethyl ether, ethylene glycol diethyl ether, diethylene glycol diethyl ether, tetrahydrofuran, dioxane, triethylamine, and N,N,N',N'-tetramethyl ethylenediamine. More preferred are ethylene glycol dimethyl ether, diethylene glycol dimethyl ether, and tetrahydrofuran. Most preferable tetrahydrofuran is added as Lewis base.

[0027] In accordance with the invention, the Lewis base is preferably used in an amount from 0.02 to 100 moles, preferably from 0.05 to 30 moles, per mole of the lithium atoms.

[0028] The process according to the invention can be performed in any suitable vessel. Preferably the process is conducted in a stainless-steel autoclave as reactor. The vessel preferably is made from stainless steel. The vessel preferably shows a pressure rating of from 0.01 to 4.0 MPa.

[0029] The process according to the invention can be used to produce the copolymers according to the invention.

[0030] The copolymers according to the invention comprise units derived from 1 ,3-butadiene and units derived from at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomer, wherein the copolymer comprises the monomer units derived from 1 ,3- butadiene (A), in literature often named vinyl unit, , , wherein the proportion of (A), in the entirety of the 1 ,3-butadiene-derived monomer units present in the copolymer is at least 80 mol-% and wherein the sum of the proportions of (B) and (C) in the entirety of the 1 ,3-butadiene-derived monomer units present in the polybutadiene is not more than 20 mol-%, and that the copolymer has a number average molecular weight Mn of from 2,000 to 5,400 g / mol and a glass transition temperature TG of from -15 °C to 5 °C. The methods for determination of the proportion of the units (A), (B), and (C), TG, and of the number average molecular weight is given in the example section below.

[0031] The copolymer according to the invention has preferably a polydispersity of from 1 .0 to 2.6, more preferably of from 1 .05 to 1 .4, determined as given in the example section below.

[0032] The copolymer according to the invention has preferably a glass transition temperature TG of from - 15 °C to 0 °C determined by the method given in the example section below.

[0033] The copolymers according to the invention are preferably liquid at room temperature (23 °C). Preferably the copolymers according to the invention have a viscosity of at least 50 Pa*s at 20 °C, determined by the method described in the example section.

[0034] The copolymer according to the invention can comprise one or more units derived from styrene, divinylbenzene, ethyl-vinylbenzene, diisopropenylbenzene, and / or isoprene used as at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as (co- )monomer. Preferably the copolymer comprises one or more units derived from styrene and divinylbenzene as monomer, more preferably the copolymer comprises one or more units derived from styrene as (co-)monomer only.

[0035] The copolymer according to the invention is preferably a random copolymer or a block copolymer, more preferably the copolymer is a random copolymer. The copolymer according to the invention can be prepared by any known suitable processes. Preferably the copolymer according to the invention is prepared by the process according to the invention.

[0036] The copolymer according to the invention might be used, as a reactive crosslinker, preferably for the preparation of casting compounds.

[0037] The present invention will be further illustrated by the following nonlimiting examples which indicate further features, embodiments, aspects, and advantages of the present invention.

[0038] Examples:

[0039] Raw materials used:

[0040] Table 1 below gives an overview of the (raw) materials used

[0041] Table 1 : (raw) materials used

[0042] Test methods: a) Determination of glass transition temperature TG:

[0043] The glass transition temperature was determined by Differential Scanning Calorimetry (DSC). For differential scanning calorimetry a DSC Q2000 from TA Instruments was used. The samples of 5 mg to 10 mg were filled into an aluminum pan ( zero) and are heated from -100 to 200 °C at a rate of 10 K / min. The reported values were determined with a TA Universal Analysis from the third heating cycle. b) Determination of molecular weight and dispersity:

[0044] The number-average and weight-average molecular weight (Mn and Mw, respectively) of the polymers in the context of the present invention is determined according to DIN 55672-1 by means of gel permeation chromatography in tetrahydrofuran as eluent and polystyrene for calibration. Measurements were carried out at 40 °C in tetrahydrofuran (THF) at a concentration of 5 g / l and a flow rate of 0.3 ml / min. Chromatographic separation was achieved using a PSS SDV Micro 5p / 4.6 x 30 mm precolumn and a PSS SDV Micro linear S 5p / 4.6 x 300 mm (2x) separation column. Detection was by means of an Rl detector. Calibration was carried out by means of polybutadiene standards (PSS-Kit polybutadiene-1 ,4, Mp 831-106000, Part No.PSS-bdfkit, Mn: 1830 / 4330 / 9300 / 18000 / 33500). Dispersity D = Mw / Mn. c) Determination of viscosity:

[0045] The viscosity of the copolymers produced was determined in accordance with DIN EN ISO 3219 in Pa.s using a rotational viscometer at the temperature specified in each case. d) Determination of the molar proportions of the monomer units

[0046] The molar proportions of the monomer units according to the formula (A), (B) and (C) are determined by IR spectroscopy relative to polybutadiene standards. For this purpose, the samples (ca. 80 to 250 mg) are dissolved in 10 ml of carbon disulfide (CS2). In the case of high vinyl content low concentrations are used and at high cis content higher concentrations are used. The measurements are carried out in IR cuvettes with NaCI windows and 0.5 mm path length. The solvent is subtracted and the spectrum is shown as absorbance in the evaluation range 1100 to 600 cm1. At absorbances above 1 , the measurement is repeated with a lower concentration. The absorbances above baselines of the following signals are determined: trans-1 ,4-polybutadiene: 968 cm'11 ,2-polybutadiene: 91 1 cm'1cis-1 ,4-polybutadiene: 730 cm'1

[0047] The molar proportions of the monomer components are given by (comp(i) = Ext(i) * 100% I (E(i) * c * d *) where

[0048] Ext(i) = absorbance above baseline

[0049] E(i) = extinction coefficient (substance specific, to be determined by calibration) [E] = L / (g*cm) d = path length of the cuvette in cm c = concentration of the sample in g / L

[0050] Example 1 :

[0051] 2128 g of dried cyclohexane were firstly placed in a passivated, pressure- resista nt 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 47.5 g of THF and 2 M n- butyl lithium (82.4 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 225.4 g styrene was added continuously at a pressure of 0.1 MPa within 15 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 351 .2 g 1 ,3-butadiene were added continuously within 30 minutes while keeping the temperature at 25 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 30 minutes at a temperature of 30 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 26.4 g of methanol were added and the reaction mixture was stirred for another 30 minutes.

[0052] Afterwards 50 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 550 g of a clear, viscous liquid was obtained which corresponds to a yield of about 95%. The product was analyzed, and the results are given in table 2 below.

[0053] Example 2:

[0054] 715 g of dried cyclohexane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 7 °C. Subsequently, 358 g of THF and 2 M n-butyl lithium (229.8 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 338.9 g styrene was added continuously at a pressure of 0.1 MPa within 25 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 920.1 g 1 ,3-butadiene were added continuously within 65 minutes while keeping the temperature at 25 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 30 minutes at a temperature of 40 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 51 .3 g of methanol were added and the reaction mixture was stirred for another 30 minutes.

[0055] Afterwards 30 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 1230 g of a clear, viscous liquid was obtained which corresponds to a yield of about 94%. The product was analyzed, and the results are given in table 2 below.

[0056] Example 3:

[0057] 2180 g of dried cyclohexane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 41 .8 g of THF and 2 M n- butyl lithium (119 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 296.7 g styrene was added continuously at a pressure of 0.1 MPa within 30 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 290 g 1 ,3-butadiene were added continuously within 45 minutes while keeping the temperature at 20 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 60 minutes at a temperature of 40 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 38.2 g of methanol were added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0058] Afterwards 80 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 580 g of a clear, viscous liquid was obtained which corresponds to a yield of about 99%. The product was analyzed, and the results are given in table 2 below.

[0059] Example 4:

[0060] 2170 g of dried cyclohexane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 25.1 g of THF and 2 M n- butyl lithium (62 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 225.9 g styrene was added continuously at a pressure of 0.1 MPa within 30 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 353 g 1 ,3-butadiene were added continuously within 45 minutes while keeping the temperature at 20 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 20 minutes at a temperature of 30 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 20 g of methanol were added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0061] Afterwards 20 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 551 g of a clear, viscous liquid was obtained which corresponds to a yield of about 95%. The product was analyzed, and the results are given in table 2 below.

[0062] Example 5:

[0063] 1378 g of dried n-octane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 84.8 g of THF and 2 M n-butyl lithium (147 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 400.6 g styrene was added continuously at a pressure of 0.1 MPa within 60 minutes in such a way, that the temperature of the reaction mixture did not went up above 18 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 623 g 1 ,3-butadiene were added continuously within 65 minutes while keeping the temperature at 28 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 20 minutes at a temperature of 35 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 47 g of methanol were added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0064] Afterwards 80 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 998 g of a clear, viscous liquid was obtained which corresponds to a yield of about 97%. The product was analyzed, and the results are given in table 2 below.

[0065] Example 6: block-co-polymer

[0066] 1255 g of dried cyclohexane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 55 g of THF and 2 M n-butyl lithium (190 ml) were added while keeping the temperature of the reaction mixture at 10 °C.

[0067] Subsequently 260 g styrene was added continuously at a pressure of 0.1 MPa within 30 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor was increased to 0.35 MPa using nitrogen and 811 g 1 ,3-butadiene were added continuously within 45 minutes while keeping the temperature at 20 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 30 minutes at a temperature of 30 °C. Subsequently a second portion of 260 g styrene was added continuously within 20 minutes at 30 °C. The pressure was released to atmospheric pressure and 61 g of methanol were added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0068] Afterwards 30 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 1224 g of a clear, viscous liquid was obtained which corresponds to a yield of about 92%. The product was analyzed, and the results are given in table 2 below.

[0069] Example 7: ter-polymer

[0070] 1403 of dried toluene were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 9 °C. Subsequently, 55 g of THF and 2 M n-butyl lithium (185 ml) were added while keeping the temperature of the reaction mixture at 10 °C. Subsequently 459 g styrene was added continuously at a pressure of 0.1 MPa within 30 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 811 g 1 ,3-butadiene was added continuously within 45 minutes while keeping the temperature at 20 °C. The pressure in the reactor increased to 0.4 MPa. Subsequently 127 g of divinylbenzene were added at 20 °C, and the mixture was stirred for another 20 minutes at a pressure of 0.4 MPa and a temperature of 20 °C. At atmospheric pressure 61 g of methanol was added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0071] Afterwards 30 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 1270 g of a clear, viscous liquid was obtained which corresponds to a yield of about 91%. The product was analyzed, and the results are given in table 2 below.

[0072] Example 8:

[0073] 695 g of dried cyclohexane were firstly placed in a passivated, pressure-resistant 5 I stainless steel autoclave from Biichi (model 4; stainless steel: 1 .4571 ; pressure rating: from -0.1 to 4.0 MPa) as reactor and cooled down to a temperature of 10 °C. Subsequently, 885 g of THF and 2 M n-butyl lithium (260 ml) were added while keeping the temperature of the reaction mixture at 15 °C.

[0074] Subsequently 424 g styrene was added continuously at a pressure of 0.1 MPa within 30 minutes in such a way, that the temperature of the reaction mixture did not went up above 15 °C. Thereafter the pressure in the reactor is increased to 0.35 MPa using nitrogen and 293 g 1 ,3-butadiene were added continuously within 30 minutes while keeping the temperature at 20 °C. The pressure in the reactor increased to 0.4 MPa. After the addition of the 1 ,3-butadiene was complete the reaction mixture was stirred for 20 minutes at a temperature of 30 °C. Then the reaction mixture was cooled down to 20 °C. At atmospheric pressure 85 g of methanol was added and the reaction mixture was stirred for another 30 minutes at a temperature of 23 °C.

[0075] Afterwards 30 g of the filtration aid TONSIL®, sold by Clariant, was added and then the reaction mixture was filtrated, using a K800 filter from Seitz-Pall. From the raw solution obtained as filtrate the solvent(s) were removed using a rotary evaporator and reduced atmospheric pressure up to 10 mbar. 667 g of a clear, viscous liquid was obtained which corresponds to a yield of about 93%. The product was analyzed, and the results are given in table 2 below.

[0076] Table 2: vinyl content (%) = proportion of (A), in the entirety of the 1 ,3-butadiene-derived monomer units present in the copolymer in mol-% It can be seen from table 2, that the process according to the invention makes available co- and ter-polymers based on at least 1 ,3-butadiene and styrene as monomers having a relatively low number average molecular weight Mn of from 1 ,350 to 5,400 g / mol and a dispersity D between 1 .0 to 1.25.

Claims

Claims1 . Process for preparing a copolymer based on at least 1 ,3-butadiene and at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomers by solution polymerization utilizing one or more lithium organic compounds as initiator, characterized in that the polymerization is performed at a temperature of the reaction mixture of from 0 °C to 50 °C, preferably of from 5 °C to 45 °C and at a pressure of from 0.2 to 0.6 MPa, and wherein of from 55 to 65% by weight of 1 ,3-butadiene based on the total mass of monomers is added to the reaction mixture.

2. Process according to Claim 1 , characterized in that pentane, isooctane, n-octane, cyclohexane, n-hexane, benzene, toluene, xylene, and ethylbenzene, alone or in admixture is used as solvent.

3. Process according to Claim 1 or 2, characterized in that n-butyl lithium is used as initiator.

4. Process according to any of Claims 1 to 3, characterized in that it is performed as discontinuous process.

5. Process according to any of claims 1 to 4, characterized in that first at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond is added to the reaction mixture and after addition of the at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond the 1 ,3-butadiene and optional monomers are added to the reaction mixture.

6. Copolymer comprising units derived from 1 ,3-butadiene and units derived from at least one hydrocarbon different from 1 ,3-butadiene comprising at least one olefinic double bond as monomer, characterized in that the copolymer comprises the monomer units (A), (B), and (C) derived from 1 ,3-butadienewherein the proportion of (A) in the entirety of the 1 ,3-butadiene-derived monomer units present in the copolymer is at least 80 mol-%, and wherein the sum of the proportions of (B) and (C) in the entirety of the 1 ,3-butadiene-derived monomer units present in the polybutadiene is not more than 20 mol-%, and that the copolymer has a number average molecular weight Mn of from 2,000 to 5,400 g / mol and has a glass transition temperature TG of from -15 °C to 5 °C determined by the methods given in the description.

7. Copolymer according to claim 6, characterized in that it has a polydispersity of from 1 .0 to 2.6, more preferably 1 .05 to 1 .4, determined as given in the description.

8. Copolymer according to claim 6 or 7, characterized in that it has a glass transition temperature TG of from -15 °C to 0 °C determined by the method given in the description.

9. Copolymer according to anyone of claims 6 to 8, characterized in that it comprises one or more units derived from styrene, divinylbenzene, ethyl-vinylbenzene, diisopropenylbenzene, or isoprene as monomer.

10. Copolymer according to claim 9, characterized in that it comprises one or more units derived from styrene and divinylbenzene as monomer, more preferably from styrene as monomer only.11 . Copolymer according to any of claims 6 to 10, characterized in that the copolymer is a random or block copolymer, more preferably a random copolymer.

12. Copolymer according to any of claims 6 to 11 , obtained by a process according to any of claims 1 to 5.

13. Use of a copolymer according to any of claims 6 to 12, as reactive crosslinker, preferably for the preparation of casting compounds.