Polyester carbonates from aliphatic diacids and aliphatic diols and methods for their production
A direct synthesis using a catalyst mixture with controlled alkali metal cations in melt transesterification addresses the challenges of producing aliphatic polyester carbonates, achieving improved mechanical and thermal properties with reduced complexity and cost.
Patent Information
- Application Number
- JP2022532772
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-16
- Filing Date
- 2020-12-15
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2040-12-15
AI Technical Summary
Existing methods for producing aliphatic polyester carbonates face challenges in achieving suitable molecular weights and require complex processes, high equipment expenditure, and inefficient catalyst removal, leading to poor mechanical and thermal properties.
A direct or one-pot synthesis method using a mixture of two catalysts, specifically a tertiary nitrogen base and a basic alkali metal salt, with a controlled proportion of alkali metal cations, allows for the production of aliphatic polyester carbonates with desired molecular weights through melt transesterification.
The method achieves polyester carbonates with improved mechanical and thermal properties, reduced equipment and purification steps, and efficient catalyst removal, resulting in economically and environmentally advantageous production.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a process for producing polyestercarbonates starting from an aliphatic diacid, preferably a cycloaliphatic diacid, and an aliphatic diol, the polyestercarbonates themselves produced by the process, molding compounds containing the polyestercarbonates, and molded articles containing the polyestercarbonates. [Background technology]
[0002] Polyesters, polycarbonates, and polyester carbonates are known to have good mechanical properties and good stability against heat deformation and weathering. Depending on the monomers used, each polymer group has certain important properties that characterize this type of material. For example, polycarbonates have particularly good mechanical properties, while polyesters often have better chemical stability. Depending on the monomers selected, polyester carbonates exhibit property profiles from both of the above groups.
[0003] Aromatic polycarbonates or polyesters often have a good property profile, but they exhibit shortcomings in stability against aging or weathering. For example, absorption of ultraviolet light leads to yellowing and sometimes embrittlement of these thermoplastic materials. Aliphatic polycarbonates and polyester carbonates have better properties in this respect, in particular better stability against aging and / or weathering, and better optical properties (e.g., transparency).
[0004] A drawback of aliphatic polycarbonates or polyester carbonates is often their low glass transition temperature (Tg). Therefore, it is advantageous to use cycloaliphatic alcohols as comonomers. Examples of such cycloaliphatic alcohols are tricyclodecane dimethanol (TCD alcohol), cyclohexanediol, cyclohexanedimethanol, and bio-based diols based on 1,4:3,6-dianhydrohexitol, such as isosorbide and its isomers, isomannide and isoidide. To further increase the Tg, cycloaliphatic acids, such as cyclohexane-1,2-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, or cyclohexane-1,4-dicarboxylic acid, or the corresponding naphthalene derivatives, can also be used as comonomers. Depending on the choice of reactants, polyesters or polyestercarbonates are subsequently obtained. This application relates to the direct conversion of raw materials, i.e., isosorbide and aliphatic diacids, preferably cycloaliphatic diacids, into the corresponding polyestercarbonates. Polyesters of cyclohexanedicarboxylic acid and isosorbide are described in Non-Patent Document 1, but the present invention is preferably directed to polyester carbonates.
[0005] Polyestercarbonates are produced on an industrial scale, for example, by transesterification of the corresponding ester-containing monomers with diols: for example, starting from the dimethyl esters of diacids, polyesters of cyclohexane-1,4-dimethanol and cyclohexane-1,4-dicarboxylic acid are produced (blends of this polyester with polycarbonates: DuPont's Xyrex™).
[0006] However, with regard to transesterification reactions, phenyl esters are significantly more reactive than their aliphatic analogues.
[0003] US Pat. No. 5,629,492 and US Pat. No. 5,629,492 describe processes for the preparation of polyester carbonates with phenyl esters as an intermediate step.
[0007] Example 1 of the patent describes the direct reaction of a diacid with a phenol to form the corresponding ester. In Example 2 of the patent, a dimethyl ester is reacted with a phenol. However, the yield for both variations of the phenyl ester production can be further improved. A polyester carbonate is then produced.
[0008] Patent Document 2 describes the production of diphenyl esters using phosgene in a solvent. Since the subsequent reaction to form an aliphatic polyester carbonate does not involve the use of phosgene, it is very disadvantageous to combine the phosgene process and the transesterification process in the same part of the plant. Therefore, the process described in Patent Document 2 is also not optimal.
[0009] Non-Patent Document 2 describes that polyesters based on cyclohexanedicarboxylic acid and isosorbide cannot be obtained from cyclohexanedioic acid or cyclohexanedimethyl ester (or only very low molecular weights can be obtained), and can only be produced from acid chlorides of cyclohexanedicarboxylic acid.
[0010] A simple preparation of aromatic polyester carbonates is described, for example, in U.S. Patent No. 5,627,499. This describes a direct or one-pot synthesis, i.e., a synthesis in which all structural elements forming the subsequent polyester carbonate are already present as monomers at the start of the synthesis. In this case, aromatic dihydroxy compounds such as bisphenol A, carboxylic acid diesters, and aromatic or linear aliphatic diacids are used as monomers. Because this document is limited to the preparation of aromatic polyester carbonates, it is possible to use temperatures of 300°C in the condensation reaction while removing the phenol that forms. When preparing aliphatic polyester carbonates, such temperatures are not possible because aliphatic diols tend to undergo elimination and / or thermal decomposition when exposed to such thermal stress. However, at the same time, high temperatures are required to achieve the desired high molecular weight. The difference in reactivity between aliphatic and aromatic diols is particularly evident in this case. For example, it is known from the literature that isosorbide is rarely fully incorporated into the polymer; instead, up to 25% of isosorbide is lost during the polymerization reaction, depending on the reaction conditions selected. Therefore, it is not immediately possible to transfer the reaction conditions for aromatic diols to aliphatic diols. This is particularly evident from the fact that the reaction time of the polycondensation (corresponding to process step (ii)) in Patent Document 3 is significantly longer at higher temperatures than the reaction time observed according to the present invention. This document also describes the use of very small amounts of alkali metal ions as catalysts in the examples, and the use of very wide ranges of amounts in total parts. Furthermore, quaternary nitrogen bases are used as alternative catalysts. These are generally low-volatility salts that usually remain in the reaction system. The resulting diester is then reacted with an aromatic alcohol (such as phenol) to form a polyester carbonate. Phenols have a much higher acidity than aliphatic alcohols.
[0011] Similarly, in US Pat. No. 5,629,999 and US Pat. No. 5,629,999, aromatic structural units and correspondingly high temperatures are used, and for the reasons stated above, the teaching therein cannot be transferred to aliphatic structural units. [Prior art documents] [Patent documents]
[0012] [Patent Document 1] European Patent Application Publication No. 3026074 [Patent Document 2] European Patent Application Publication No. 3248999 [Patent Document 3] International Publication No. 01 / 32742 [Patent Document 4] Unexamined Patent Publication No. 04-345616 [Patent Document 5] German Patent Application Publication No. 2438053 [Non-patent literature]
[0013] [Non-Patent Document 1] Oh et al., in Macromolecules 2013, 46, 2930-2940 [Non-patent document 2] Kricheldorf et al., (Macromol. Chem. Phys 2010, 211, 1206-1214) Summary of the Invention [Problem to be solved by the invention]
[0014] Starting from this prior art, the object of the present invention was therefore to provide a process for producing polyestercarbonates from aliphatic diacids, preferably cycloaliphatic diacids and aliphatic diols by melt transesterification, which is particularly simple and at the same time leads to polyestercarbonates having suitable molecular weights. In this context, "simple" is to be understood in particular to mean a process which requires little expenditure on equipment, involves few steps, in particular purification steps, and / or is therefore economically and also environmentally advantageous.
[0015] By appropriate molar mass, we mean a polymer having a relative solution viscosity of 1.17 to 1.35, preferably 1.18 to 1.32, and particularly preferably 1.20 to 1.31, measured in each case using an Ubbelohde viscometer in dichloromethane at a concentration of 5 g / l at 25°C. Measuring the relative solution viscosity using an Ubbelohde viscometer is known to those skilled in the art. In accordance with the present invention, this is preferably carried out in accordance with DIN 51562-3; 1985-05. The measurement involves measuring the flow time of the polyester carbonate to be measured using the Ubbelohde viscometer, followed by determining the viscosity difference between the polymer solution and its solvent. For this purpose, the Ubbelohde viscometer is initially calibrated using measurements of the pure solvents dichloromethane, trichloroethylene, and tetrachloroethylene (always at least three and no more than nine measurements). This is followed by the actual calibration using the solvent dichloromethane. Next, a polymer sample is weighed and dissolved in dichloromethane, and the flow time of this solution is measured three times. The average flow time is corrected by Hagenbach correction to calculate the relative solution viscosity.
[0016] If the solution viscosity is above this range, the thermoplastic becomes difficult to process, whereas if the solution viscosity is too low, poor mechanical and thermal properties result. [Means for solving the problem]
[0017] At least one, and preferably all, of the above-mentioned problems have been solved by the present invention. Surprisingly, it has been found that it is possible to synthesize polyestercarbonates from aliphatic diacids, preferably cycloaliphatic diacids, and aliphatic diols by melt transesterification in a direct or one-pot synthesis, in which all structural elements forming the subsequent polyestercarbonate are already present as monomers at the start of the synthesis.
[0018] However, it has been found that this requires the use of a mixture of two specially selected catalysts and that the proportion of alkali metal cations in the reaction mixture must be within a certain range. First, despite the stated prejudices of the prior art, it was surprising that the direct synthesis also works for the reaction of an aliphatic dicarboxylic acid, preferably an alicyclic dicarboxylic acid, an aliphatic dihydroxy compound (also referred to as an aliphatic diol according to the present invention), and a diaryl carbonate. In this case, it was possible to achieve polymers with suitable molar masses even using various molar ratios of the aliphatic diacid, preferably the alicyclic diacid, and the aliphatic diol. However, certain molar ratios of the aliphatic diacid, preferably the alicyclic diacid, and the aliphatic diol are particularly advantageous.
[0019] It was even more surprising to discover that the key to the success of the polymerization reaction is not the total amount of catalyst in the catalyst mixture, but rather the proportion of alkali metal cations. This led to the discovery of a particularly simple method for obtaining polyester carbonates from aliphatic diacids, preferably cycloaliphatic diacids, and aliphatic diols, which requires little equipment expenditure and involves few steps, especially purification steps, and is therefore economically and environmentally advantageous. Furthermore, it has been found to be advantageous if the tertiary nitrogen base according to the present invention, particularly DMAP, can be removed from the system by applying negative pressure. This allows the catalyst to be removed from the system efficiently and easily.
[0020] The method for producing the polyestercarbonates of the present invention can be generally described by the reaction of, for example, cyclohexanedicarboxylic acid, isosorbide, and diphenyl carbonate, as shown below: [ka] catalyst (The listing of these three particular starting materials is purely for purposes of illustrating the invention and should not be construed as limiting).
[0021] In the direct synthesis according to the present invention, gas evolution was initially observed due to escaping carbon dioxide. When a sample was taken from the mixture after the gas evolution had almost subsided, analysis could demonstrate that oligomers had already formed. These oligomers were condensed in a further step to form the polyestercarbonates of the present invention. Furthermore, the polyestercarbonates of the present invention are more stable than the polyestercarbonates described in EP 3026074, which were prepared via a two-step process. 1 It was observed that the isosorbide exhibited more terminal phenyl groups in H NMR. Although a slight excess of isosorbide was used in the inventive examples, terminal phenyl groups still formed. This is advantageous because terminal OH groups are hydrolytically unstable, especially at the high processing temperatures of the polymer, and can cause transesterification reactions and also reduce thermal stability.
[0022] Accordingly, the present invention provides a process for producing polyester carbonates by melt transesterification, comprising the steps of: (i) reacting at least one aliphatic dicarboxylic acid and / or at least one alicyclic dicarboxylic acid with at least one diaryl carbonate in the presence of at least one aliphatic dihydroxy compound and a first catalyst and / or a second catalyst; (ii) subjecting the mixture obtained from process step (i) to further condensation in the presence of a first catalyst and a second catalyst, while removing at least the chemical compounds released during the condensation; where: the first catalyst is at least one tertiary nitrogen base; the second catalyst is at least one basic alkali metal salt; and The proportion of alkali metal cations in process step (ii) is between 0.0008% and 0.0030% by weight relative to all components used in process step (i).
[0023] The present invention also provides a method for producing a polyester carbonate by melt transesterification, comprising the steps of: (i) reacting at least one alicyclic dicarboxylic acid with at least one diaryl carbonate in the presence of at least one aliphatic dihydroxy compound and a first catalyst and / or a second catalyst; (ii) subjecting the mixture obtained from process step (i) to further condensation in the presence of a first catalyst and a second catalyst, while removing at least the chemical compounds released during the condensation; where: the first catalyst is at least one tertiary nitrogen base; the second catalyst is at least one basic alkali metal salt; and The proportion of alkali metal cations in process step (ii) is between 0.0008% and 0.0030% by weight relative to all components used in process step (i).
[0024] The proportion of alkali metal cations in process step (ii) of the present invention is preferably 0.0009% to 0.0025% by weight, more preferably 0.0010% to 0.0020% by weight, based in each case on all components used in process step (i).
[0025] In a preferred embodiment, in process step (i) a first catalyst and a second catalyst are present.
[0026] It is also possible to use part of the first catalyst and / or part of the second catalyst in process step (i) and then the remainder in process step (ii).
[0027] However, it is preferred that the total amount of the first catalyst and / or the second catalyst is used in process step (i). Most preferred is that the total amount of both catalysts is used in process step (i).
[0028] According to the present invention, process step (i) comprises at least the reaction of at least one linear aliphatic dicarboxylic acid and / or at least one alicyclic dicarboxylic acid with at least one diaryl carbonate. However, according to the present invention, the presence of at least one aliphatic dihydroxy compound means that further reaction cannot be excluded. However, according to the present invention, it is preferable to start process step (ii) only after process step (i) has progressed until the evolution of gas is observed to have almost ceased, for example, by applying negative pressure to remove chemical compounds released during condensation. However, as already mentioned above, according to the present invention, it may not always be possible to achieve a clear separation between process step (i) and process step (ii).
[0029] Method step (i) The method of the present invention is called direct synthesis or one-pot synthesis because, in process step (i), all structural elements that will form the subsequent polyester carbonate are already present as monomers. This means that, preferably, according to the present invention, all aliphatic dihydroxy compounds, all linear aliphatic dicarboxylic acids and / or cycloaliphatic dicarboxylic acids, and also all diaryl carbonates are present in this step, even if more than one dihydroxy compound, linear aliphatic dicarboxylic acid and / or cycloaliphatic dicarboxylic acid, and / or diaryl carbonate is present. Therefore, according to the present invention, it is preferred that all monomers that will be condensed into the polyester carbonate in process step (ii) are already present during process step (i). Similarly, the present invention includes an embodiment in which a small amount of at least one diaryl carbonate is additionally added in process step (ii). This can be used selectively to reduce the terminal OH group content of the polyester carbonate formed. Such an approach is described, for example, in JP 2010-077398 A. However, in order that all structural elements forming the subsequent polyester carbonate are already present as monomers in process step (i) and no further structural elements are added, it is necessary in this case that the at least one diaryl carbonate added in a small amount in process step (ii) is the same as the at least one diaryl carbonate present in process step (i).Therefore, in this sense, this method can still be called direct synthesis or one-pot synthesis.
[0030] Furthermore, the present invention does not exclude the presence of aromatic dihydroxy compounds and / or aromatic dicarboxylic acids in process step (i). However, these are preferably present only in small amounts. It is particularly preferred that aromatic dihydroxy compounds are further present in process step (i) in a content of up to 20 mol%, more preferably up to 10 mol%, and very particularly preferably up to 5 mol%, based on the total molar amount of dihydroxy compounds used in each case. It is equally particularly preferred that aromatic dicarboxylic acids are further present in process step (i), optionally in addition to aromatic dihydroxy compounds, in a content of up to 20 mol%, more preferably up to 10 mol%, and very particularly preferably up to 5 mol%, based on the total molar amount of dicarboxylic acids used in each case. In these cases, according to the present invention, it is still preferred to call the product an aliphatic polyester carbonate. However, it is particularly preferred not to use aromatic dihydroxy compounds in process step (i). It is also preferred not to use aromatic dicarboxylic acids in process step (i). Likewise, it is preferred not to use aromatic dihydroxy compounds or aromatic dicarboxylic acids in process step (i).
[0031] These additional aromatic dihydroxy compounds are preferably bisphenol A, 1,1-bis(4-hydroxyphenyl)-3,3,5-trimethylcyclohexane, 4,4′-dihydroxybiphenyl (DOD), 4,4′-dihydroxydiphenyl ether (DOD ether), bisphenol B, bisphenol M, and bisphenol (I) to bisphenol (III): [ka] in these formulae (I) to (III), R' in each case represents C1-C4 alkyl, aralkyl or aryl, preferably methyl or phenyl, very particularly preferably methyl.
[0032] These additional aromatic dicarboxylic acids are preferably selected from the group consisting of isophthalic acid, terephthalic acid, furandicarboxylic acid, and naphthalene-2,6-dicarboxylic acid, and it is known that small amounts of these aromatic diacids can reduce the absorption of water by aliphatic polyester carbonates.
[0033] According to the present invention, in process step (i), at least one aliphatic dihydroxy compound is used. This at least one aliphatic dihydroxy compound is preferably selected from the group consisting of cyclohexane-1,2-diol, cyclohexane-1,3-diol, cyclohexane-1,4-diol, cyclohexane-1,2-dimethanol, cyclohexane-1,3-dimethanol, cyclohexane-1,4-dimethanol, tricyclodecane dimethanol, 3,9-bis(1,1-dimethyl-2-hydroxyethyl)-2,4,8,10-tetraoxaspiro[5.5]undecane, 2,2-bis(4-hydroxycyclohexyl)propane, tetrahydrofuran-2,5-dimethanol, and 1,4:3,6-dianhydrohexitols such as isomannide, isoidide, and isosorbide. Any desired mixtures can also be used. The at least one aliphatic dihydroxy compound is very particularly preferably isosorbide.
[0034] Similarly, in process step (i), at least one linear aliphatic dicarboxylic acid and / or at least one cycloaliphatic dicarboxylic acid is used according to the present invention. Preferably, at least one cycloaliphatic dicarboxylic acid is used. Also preferably, at least one linear aliphatic dicarboxylic acid is used. Also preferably, a mixture of a linear aliphatic dicarboxylic acid and an cycloaliphatic dicarboxylic acid is used.
[0035] The at least one linear aliphatic dicarboxylic acid and / or the at least one alicyclic dicarboxylic acid has the general formula (1): [ka] (In the formula, A represents R3, where: R3 represents a linear alkylene group having 3 to 16 carbon atoms, preferably 3 to 8 carbon atoms, more preferably 3 to 6 carbon atoms, and even more preferably 3 or 4 carbon atoms, which alkylene group may be optionally mono- or polysubstituted, or A is a group represented by formula (Ia) or (Ib): [ka] where: B represents, independently in each occurrence, a CH group, O, or S; R1 independently in each occurrence represents a single bond or an alkylene group having 1 to 10 carbon atoms, preferably a single bond or an alkylene group having 1 to 9 carbon atoms, more preferably a single bond or an alkylene group having 1 to 8 carbon atoms, likewise preferably a single bond or an alkylene group having 1 to 5 carbon atoms, particularly preferably a single bond; and R2, independently in each occurrence, has 1 to 10 carbon atoms, preferably 1 to 9 carbon atoms, and more preferably 1 to 8 carbon atoms. Alkyl represents a group, n is a number between 0 and 3, preferably between 0 and 2, particularly preferably between 0 and 1, very particularly preferably 1, It is particularly preferred that m is a number between 0 and 6, preferably between 0 and 3, particularly preferably between 0 and 2, very particularly preferably 0, and "*" indicates the position in formula (1) where the carboxylic acid group is present.
[0036] Thus, when R1 represents a single bond, it will be understood that R1 includes 0 carbon atoms.
[0037] According to the present invention, the terms "linear alkylene group" and "linear (aliphatic) dicarboxylic acid" are used to distinguish them from "alicyclic alkylene group" and "alicyclic dicarboxylic acid", respectively. Linear variants do not contain any ring system. However, for example, R3 representing a linear alkylene group may be optionally substituted. As a result, a linear alkylene group may be "branched" in the broadest sense. Therefore, according to the present invention, the term "linear alkylene group" preferably also includes "branched alkylene groups", which, however, do not contain a ring system in any case.
[0038] When A represents R3, preferably R3 represents a linear alkylene group having 3 to 16 carbon atoms, preferably 3 to 8 carbon atoms, more preferably 3 to 6 carbon atoms, and even more preferably 3 or 4 carbon atoms, which alkylene group may optionally be mono- or polysubstituted. Preferably, the alkylene group comprises at least one alkylene group, preferably having 1 to 5 carbon atoms. AlkylThe linear alkylene group R3 may be substituted with a group. Particularly preferably, the linear alkylene group is unsubstituted or substituted with at least one alkylene group having 1 to 5 carbon atoms, preferably 1 to 4 carbon atoms, more preferably 1 to 3 carbon atoms. If the linear alkylene group is substituted, it will have at least one tertiary carbon atom and, optionally, at least one quaternary carbon atom. Particularly preferably, the linear alkylene group R3 is unsubstituted or substituted with 1 to 3 alkylene groups. When two or more substitutions are present, the substitutions may occur on one carbon atom of the linear alkylene group R3 (resulting in one quaternary carbon atom) or on two or more carbon atoms (resulting in two tertiary carbon atoms). Even more preferably, the linear alkylene group R3 is unsubstituted or substituted with 1 to 3 methyl groups. Very particularly preferably, R3 is selected from -CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-C(CH3)2-CH2-, -CH2-CH(CH3)-CH2-C(CH3)2-, -CH2-C(CH3)2-CH2-CH(CH3)- and -CH(CH3)-CH2-CH2-C(CH3)2-. Also preferably, R3 is selected from -CH2-CH2-CH2-CH2-, -CH2-C(CH3)2-CH2-, -CH2-CH(CH3)-CH2-C(CH3)2-, -CH2-C(CH3)2-CH2-CH(CH3)-, and -CH(CH3)-CH2-CH2-C(CH3)2-. Very particularly preferably, R3 represents -CH2-C(CH3)2-CH2-(3,3-dimethylglutaric acid).
[0039] When A represents either formula (Ia) or formula (Ib), preferably B independently in each occurrence represents a CH group, O or S, preferably a CH group; R1 independently in each case represents a single bond or a linear alkylene group having 1 to 10 carbon atoms, particularly preferably a single bond; R2, independently in each occurrence, is a linear alkyl group having 1 to 10 carbon atoms, preferably 1 to 9 carbon atoms, and more preferably 1 to 8 carbon atoms. Alkyl represents a group, n is a number from 0 to 3, preferably from 0 to 2, particularly preferably from 0 to 1, very particularly preferably 1, m is a number of 0 to 6, preferably 0 to 3, particularly preferably 0 to 2, and very particularly preferably 0, and "*" indicates the position in formula (1) where a carboxylic acid group is present.
[0040] In formula (Ia) and formula (Ib), it can be seen from the number for m that two R2 may each be present on one carbon atom, or alternatively, one R1-* and one R2 may each be present on one carbon atom. Also, only one substituent R1-* or R2 may always be present on one carbon atom.
[0041] Particularly preferably, the alicyclic dicarboxylic acid is hydrogenated dimer fatty acid, or a compound of formula (IIa) or formula (IIb), or a mixture thereof.Hydrogenated dimer fatty acid is known to those skilled in the art.In particular, it is known that it can be a mixture of different compounds.This mixture can also contain alicyclic compounds and linear compounds.According to the present invention, this is realized by using at least one linear aliphatic dicarboxylic acid and at least one alicyclic dicarboxylic acid.
[0042] Therefore, it is preferred to use hydrogenated dimer fatty acids as the linear aliphatic and / or alicyclic dicarboxylic acids in the present invention.
[0043] The at least one alicyclic dicarboxylic acid may be represented by the formula (IIa), the formula (IIb): [ka] (In the formula, B is preferably selected from the compounds or mixtures thereof, wherein B independently in each occurrence represents a carbon atom or a heteroatom selected from the group consisting of O and S, preferably a CH2 group, or a heteroatom selected from the group consisting of O and S, and n is a number from 0 to 3. More preferably, B represents a carbon atom or O, preferably a CH2 group or O, and n is a number from 0 to 3, preferably 0 or 1.
[0044] The at least one linear aliphatic dicarboxylic acid is particularly preferably selected from the group consisting of 2,2,4-trimethyladipic acid, 2,4,4-trimethyladipic acid, 2,2,5-trimethyladipic acid and 3,3-dimethylglutaric acid, with very particular preference given to 3,3-dimethylglutaric acid.
[0045] The at least one alicyclic dicarboxylic acid is particularly preferably cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, Tetrahydrofuran The at least one alicyclic dicarboxylic acid is preferably selected from the group consisting of cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, cyclohexane-1,3 ... Tetrahydrofuran The dicarboxylic acid is selected from the group consisting of cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, or cyclohexane-1,2-dicarboxylic acid.
[0046] Particularly preferably, a mixture of a linear aliphatic dicarboxylic acid and an alicyclic dicarboxylic acid is used. Particularly preferably, the at least one linear aliphatic dicarboxylic acid is selected from the group consisting of 2,2,4-trimethyladipic acid, 2,4,4-trimethyladipic acid, 2,2,5-trimethyladipic acid, and 3,3-dimethylglutaric acid, and the at least one alicyclic dicarboxylic acid is selected from the group consisting of cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, Tetrahydrofuran The fatty acids are selected from the group consisting of 3,3-dimethylglutaric acid, tetradihydrodimethylfuran-2,5-dicarboxylic acid, decahydronaphthalene-2,4-dicarboxylic acid, decahydronaphthalene-2,5-dicarboxylic acid, decahydronaphthalene-2,6-dicarboxylic acid, decahydronaphthalene-2,7-dicarboxylic acid, and hydrogenated dimer fatty acids. Particularly preferred are mixtures of 3,3-dimethylglutaric acid with 1,4-cyclohexanedicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, or cyclohexane-1,2-dicarboxylic acid.
[0047] According to the invention, in process step (i) at least one diaryl carbonate is also used. The at least one diaryl carbonate preferably has the formula (2): [ka] (wherein R, R', and R'' may be independently the same or different and may be hydrogen, an optionally branched C1-C 34 Alkyl, C7-C 34 Alkylaryl, C6-C 34The at least one diaryl carbonate is preferably selected from the group consisting of diphenyl carbonate, 4-tert-butylphenyl phenyl carbonate, di(4-tert-butylphenyl)carbonate, biphenyl-4-ylphenyl carbonate, di(biphenyl-4-yl)carbonate, 4-(1-methyl-1-phenylethyl)phenyl phenyl carbonate, di[4-(1-methyl-1-phenylethyl)phenyl]carbonate, bis(methyl salicyl)carbonate, bis(ethyl salicyl)carbonate, bis(propyl salicyl)carbonate, bis(2-benzoylphenyl)carbonate, bis(phenyl salicyl)carbonate, and / or bis(benzyl salicyl)carbonate. In particular, the at least one diaryl carbonate is preferably diphenyl carbonate, 4-tert-butylphenyl phenyl carbonate, di(4-tert-butylphenyl) carbonate, biphenyl-4-ylphenyl carbonate, di(biphenyl-4-yl) carbonate, 4-(1-methyl-1-phenylethyl)phenyl phenyl carbonate, and / or di[4-(1-methyl-1-phenylethyl)phenyl]carbonate. The at least one diaryl carbonate is particularly preferably diphenyl carbonate.
[0048] Further, according to the present invention, in process step (i) a first catalyst and / or a second catalyst is present.
[0049] The first catalyst is a tertiary nitrogen base, preferably selected from the group consisting of guanidine-derived bases, 4-dimethylaminopyridine (DMAP), 1,8-diazabicyclo[5.4.0]undec-7-ene, 1,5-diazabicyclo[4.3.0]non-5-ene, 1,5,7-triazabicyclo[4.4.0]dec-5-ene, hexamethylphosphorimide triamide, 1,2-dimethyl-1,4,5,6-tetrahydropyridine, 7-methyl-1,5,7-triazabicyclodec-5-ene, 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU), DBN, ethylimidazole, N,N-diisopropylethylamine (Hunig's base), pyridine, TMG, and mixtures thereof. More preferably, the first catalyst is selected from the group consisting of guanidine-derived bases, 4-dimethylaminopyridine (DMAP), 1,8-diazabicyclo[5.4.0]undec-7-ene, 1,5-diazabicyclo[4.3.0]non-5-ene, and 1,5,7-triazabicyclo[4.4.0]dec-5-ene. It is particularly preferred to use 4-dimethylaminopyridine.
[0050] The first catalyst is preferably used in an amount of 0.002% to 0.10% by weight, more preferably in an amount of 0.005% to 0.050% by weight and particularly preferably in an amount of 0.008% to 0.030% by weight, in each case based on all components used in process step (i).
[0051] The alkali metal cations present in process step (ii) are preferably lithium cations, potassium cations, sodium cations, caesium cations, and mixtures thereof.
[0052] The second catalyst used is an organic or inorganic alkali metal or alkaline earth metal salt of a weak acid (pKa between 3 and 7 at 25° C.). Suitable weak acids are, for example, carboxylic acids, preferably C2-C6 22Carboxylic acids such as acetic acid, propionic acid, oleic acid, stearic acid, lauric acid, benzoic acid, 4-methoxybenzoic acid, 3-methylbenzoic acid, 4-tert-butylbenzoic acid, p-tolueneacetic acid, 4-hydroxybenzoic acid, salicylic acid, partial esters of polycarboxylic acids such as monoesters of succinic acid, branched aliphatic carboxylic acids such as 2,2-dimethylpropanoic acid, 2,2-dimethylpropanoic acid, 2,2-dimethylbutanoic acid, and 2-ethylhexanoic acid.
[0053] Suitable organic and inorganic salts are, or are derived from, sodium bicarbonate, potassium bicarbonate, lithium bicarbonate, sodium carbonate, lithium carbonate, potassium carbonate, sodium acetate, potassium acetate, lithium acetate, sodium stearate, potassium stearate, lithium stearate, sodium oleate, lithium oleate, potassium oleate, sodium benzoate, potassium benzoate, lithium benzoate, and the disodium, dipotassium, and dilithium salts of BPA. It is also possible to use calcium bicarbonate, barium bicarbonate, magnesium bicarbonate, strontium bicarbonate, calcium carbonate, barium carbonate, magnesium carbonate, strontium carbonate, calcium acetate, barium acetate, magnesium acetate, strontium acetate, calcium stearate, barium stearate, magnesium stearate, and the corresponding oleates. It is also possible to use the corresponding salts of phenols, especially phenols. These salts can be used individually or in mixtures.
[0054] The second catalyst is preferably selected from the group consisting of sodium hydroxide, lithium hydroxide, sodium phenoxide, lithium phenoxide, sodium benzoate, lithium benzoate, lithium chloride, lithium acetylacetonate, and cesium carbonate, and mixtures of these substances. It is particularly preferred to use sodium phenoxide, lithium phenoxide, sodium hydroxide, lithium hydroxide, sodium benzoate, lithium benzoate, lithium chloride, and / or lithium acetylacetonate. Lithium chloride is preferably used as an aqueous solution, for example in the form of a 15% solution.
[0055] The second catalyst is also preferably selected from the group consisting of sodium hydroxide, sodium phenoxide, sodium benzoate, and cesium carbonate, and mixtures of these substances. It is particularly preferred to use sodium phenoxide, sodium hydroxide, and / or sodium benzoate. Sodium benzoate is preferably used as an aqueous solution, for example in the form of a 15% solution.
[0056] It has been found that the molar ratio of all aliphatic dihydroxy compounds present in process step (i) to all cycloaliphatic dicarboxylic acids present in process step (i) before the reaction in process step (i) is preferably 1:0.6 to 1:0.05, more preferably 1:0.5 to 1:0.15 and very particularly preferably 1:0.4 to 1:0.2.
[0057] In order to achieve particularly advantageous mechanical properties, good chemical resistance, and good processing properties, it is preferred that the ratio of aliphatic dihydroxy compounds to cycloaliphatic dicarboxylic acids in the subsequent polyester carbonate is not too high (i.e., the content of incorporated cycloaliphatic dicarboxylic acids is not too low).
[0058] Furthermore, step (i) of the method of the present invention preferably comprises at least one, more preferably all, of the following steps (ia) to (ic):
[0059] (ia) Melting all components present in process step (i), i.e., at least one linear aliphatic dicarboxylic acid and / or at least one cycloaliphatic dicarboxylic acid, at least one diaryl carbonate, and at least one aliphatic dihydroxy compound, in the presence of at least one catalyst. This is preferably carried out under an inert gas atmosphere, preferably under nitrogen and / or argon. Step (ia) is preferably carried out in the absence of a solvent. The term "solvent" in this context is known to those skilled in the art. According to the present invention, the term "solvent" is understood to mean a compound that preferably does not undergo a chemical reaction in either process step (i) or process step (ii). Exceptions are compounds formed by the reaction (e.g., phenol when diphenyl carbonate is used as at least one diaryl carbonate). Of course, the presence of traces of solvent in the starting compounds cannot be excluded. This possibility is preferably within the scope of the present invention. However, according to the present invention, it is preferable to avoid an active step of adding such a solvent.
[0060] (ib) heating the mixture, preferably the melt obtained from step (ia). Steps (ia) and (ib) may overlap, since heating may also be required to produce the melt in step (ia). Heating is preferably initially to a temperature of 150°C to 180°C.
[0061] (ic) Reacting the mixture, preferably the mixture obtained from step (ib), while introducing mixing energy, preferably by stirring. In this case, step (ic) may overlap with step (ib), since the reaction of the mixture may have already begun by heating. In this case, the melt has already been heated to a temperature between 150°C and 180°C in step (ib), preferably under standard pressure. Depending on the catalyst selected, the temperature can remain within the range of 160°C to 200°C. Alternatively, the temperature in step (ic) is increased stepwise to 200°C to 300°C, preferably 210°C to 260°C, more preferably 215°C to 240°C, depending on the observed reactivity. Reactivity can be estimated from gas evolution, as known to those skilled in the art. While higher temperatures are in principle possible in this step, secondary reactions (e.g., discoloration) may occur at higher temperatures. Therefore, higher temperatures are less preferred. The mixture is stirred under standard pressure until gas evolution has almost ceased. According to the invention, under these conditions it is already possible to partially remove the aryl alcohol (e.g., phenol when diphenyl carbonate is used) formed from the reaction of at least one carboxylic acid with at least one diaryl carbonate.
[0062] In accordance with the present invention, it has also been observed that at least one dihydroxy compound has also already begun to react by this time, as evidenced by the detection of oligomers containing carbonate units from the reaction of at least one dihydroxy compound with at least one diaryl carbonate and / or ester units from the reaction of at least one dihydroxy compound with at least one dicarboxylic acid.
[0063] Therefore, according to the present invention, it is preferred that, before carrying out process step (ii), the mixture resulting from process step (i) comprises oligomers comprising carbonate units from the reaction of at least one dihydroxy compound with at least one diaryl carbonate and / or ester units from the reaction of at least one dihydroxy compound.
[0064] The reaction time in step (ic) depends on the amount of starting materials. Preferably, the reaction time in step (ic) is between 0.5 hours and 24 hours, preferably between 0.75 hours and 5 hours, more preferably between 1 hour and 3 hours. Preferably, a reaction time should be selected that ensures that gas evolution has almost ceased (see reaction scheme above).
[0065] According to the present invention, the molar ratio of the sum of all aliphatic dihydroxy compounds and all linear aliphatic dicarboxylic acids and / or cycloaliphatic dicarboxylic acids present in process step (i) to all diaryl carbonates present in process step (i) before the reaction in process step (i) is preferably 1:0.4 to 1:1.6, preferably 1:0.5 to 1:1.5, even more preferably 1:0.6 to 1:1.4, even more preferably 1:0.7 to 1:1.3, particularly preferably 1:0.8 to 1:1.2, and very particularly preferably 1:0.9 to 1:1.1. Those skilled in the art will be able to select the appropriate optimum ratio depending on the purity of the starting materials.
[0066] Method step (ii) In process step (ii), the mixture obtained from process step (i) is subjected to further condensation, while removing at least the chemical compounds eliminated during the condensation.In the context of the present invention, the expression "further" condensation should be understood to mean that at least some condensation has already occurred in process step (i).This is preferably the reaction of at least one linear aliphatic dicarboxylic acid and / or at least one cycloaliphatic dicarboxylic acid with at least one diaryl carbonate, with the elimination of aryl alcohol.However, it is preferred that further condensation to oligomers has also already occurred (see process step (i)).
[0067] If only the first catalyst or only the second catalyst is used in process step (i), the catalyst not used in process step (i) is added in process step (ii).
[0068] The term "condensation" is known to those skilled in the art. It is preferably understood to mean a reaction in which two molecules (of the same or different substances) combine to form a larger molecule, while a molecule of a chemically simpler substance is eliminated. The compounds eliminated during the condensation are removed in process step (ii). Preferably, the chemical compounds eliminated during the condensation are removed in process step (ii) by reduced pressure. Therefore, the process of the present invention is preferably characterized in that volatile substances having a boiling point below that of the cycloaliphatic diester formed in process step (i), below that of the at least one aliphatic dihydroxy compound, and below that of the at least one diaryl carbonate, optionally by stepwise reduced pressure, are removed during the reaction in process step (i). In this case, stepwise removal is the preferred option when removing various volatile substances. Stepwise removal is also preferred in order to remove the volatile substances as completely as possible. The volatile substances are the chemical compound(s) eliminated during the condensation.
[0069] Gradual decompression can be achieved, for example, by reducing the pressure as soon as the overhead temperature drops, thus ensuring continuous removal of the chemical compounds released during condensation. Once a pressure of 1 mbar, preferably less than 1 mbar, is reached, condensation is continued until the desired viscosity is reached. This can be done, for example, by monitoring the torque. That is, polycondensation is stopped when the desired stirrer torque is reached.
[0070] The removal of the condensation product in process step (ii) is preferably carried out at temperatures between 200°C and 280°C, more preferably between 210°C and 260°C, particularly preferably between 220°C and 250°C. The vacuum during removal is further preferably between 500 mbar and 0.01 mbar. It is particularly preferred to remove it stepwise by lowering the vacuum. It is very particularly preferred that the vacuum in the final stage is between 10 mbar and 0.01 mbar.
[0071] In a further aspect of the present invention, there is provided a polyester carbonate obtained by the above-described process of the present invention in all the disclosed combinations and preferred features. The polyester carbonate of the present invention can be directly processed into all kinds of molded articles. It can also be processed into thermoplastic molding compounds together with other thermoplastic and / or polymer additives. Molding compounds and molded articles are further provided by the present invention.
[0072] The polymer additives are preferably selected from the group consisting of flame retardants, anti-drip agents, flame retardant aids, smoke suppressants, lubricants and mold release agents, nucleating agents, antistatic agents, conductive additives, stabilizers (e.g. hydrolysis stabilizers, heat aging stabilizers and UV stabilizers, and also transesterification inhibitors), flow promoters, compatibilizers, dyes and pigments, impact modifiers and also fillers and reinforcing agents.
[0073] Thermoplastic molding compounds may be produced, for example, by mixing polyester carbonates and other ingredients and melt-compounding and melt-extruding the resulting mixture in known manner in conventional equipment, such as internal kneaders, extruders, and twin-screw systems, preferably at temperatures between 200° C. and 320° C. This process is generally referred to as compounding in the context of the present invention.
[0074] The term "moulding compound" is therefore understood to mean the product obtained when the components of the composition are melt compounded and melt extruded.
[0075] Molded articles obtained from the polyestercarbonates of the invention or from thermoplastic molding compounds containing them can be produced, for example, by injection molding, extrusion and blow molding processes. Another form of processing is the production of molded articles by thermoforming from pre-manufactured sheets or films. DETAILED DESCRIPTION OF THE INVENTION
[0076] Embodiments 0 to 25 of the present invention are described below.
[0077] 0. A process for producing polyester carbonate by melt transesterification, comprising: (i) at least reacting at least one linear aliphatic dicarboxylic acid and / or alicyclic dicarboxylic acid with at least one diaryl carbonate in the presence of at least one aliphatic dihydroxy compound and a first catalyst and / or a second catalyst; (ii) subjecting the mixture obtained from process step (i) to further condensation in the presence of a first catalyst and a second catalyst, while removing at least the chemical compounds released during the condensation; where: the first catalyst is at least one tertiary nitrogen base; the second catalyst is at least one basic alkali metal salt; and A process wherein the proportion of alkali metal cations in process step (ii) is between 0.0008% and 0.0030% by weight relative to all components used in process step (i).
[0078] 1. A process for producing polyester carbonate by melt transesterification, comprising: (i) at least reacting at least one alicyclic dicarboxylic acid with at least one diaryl carbonate in the presence of at least one aliphatic dihydroxy compound and a first catalyst and / or a second catalyst; (ii) subjecting the mixture obtained from process step (i) to further condensation in the presence of a first catalyst and a second catalyst, while removing at least the chemical compounds released during the condensation; where: the first catalyst is at least one tertiary nitrogen base; the second catalyst is at least one basic alkali metal salt; and A process wherein the proportion of alkali metal cations in process step (ii) is between 0.0008% and 0.0030% by weight relative to all components used in process step (i).
[0079] 2. The method of embodiment 0 or 1, characterized in that the at least one aliphatic dihydroxy compound is selected from the group consisting of cyclohexane-1,2-diol, cyclohexane-1,3-diol, cyclohexane-1,4-diol, cyclohexane-1,2-dimethanol, cyclohexane-1,3-dimethanol, cyclohexane-1,4-dimethanol, tricyclodecane dimethanol, 3,9-bis(1,1-dimethyl-2-hydroxyethyl)-2,4,8,10-tetraoxaspiro[5.5]undecane, 2,2-bis(4-hydroxycyclohexyl)propane, tetrahydrofuran-2,5-dimethanol, and 1,4:3,6-dianhydrohexitols such as isomannide, isoidide, and isosorbide.
[0080] 3. The method of embodiment 2, wherein the at least one aliphatic dihydroxy compound is isosorbide.
[0081] The at least one linear aliphatic dicarboxylic acid and / or the at least one alicyclic dicarboxylic acid has the general formula (1): [ka] (In the formula, A represents R3, where: R3 represents a linear alkylene group having 3 to 16 carbon atoms, preferably 3 to 8 carbon atoms, more preferably 3 to 6 carbon atoms, and even more preferably 3 or 4 carbon atoms, which alkylene group may be optionally mono- or polysubstituted, or A is a group represented by formula (Ia) or (Ib): [ka] where: B represents, independently in each occurrence, a CH group, O, or S; R1 independently in each occurrence represents a single bond or an alkylene group having 1 to 10 carbon atoms, preferably a single bond or an alkylene group having 1 to 9 carbon atoms, more preferably a single bond or an alkylene group having 1 to 8 carbon atoms, likewise preferably a single bond or an alkylene group having 1 to 5 carbon atoms, particularly preferably a single bond; and R2, independently in each occurrence, has 1 to 10 carbon atoms, preferably 1 to 9 carbon atoms, and more preferably 1 to 8 carbon atoms. Alkyl represents a group, n is a number between 0 and 3, preferably between 0 and 2, particularly preferably between 0 and 1, very particularly preferably 1, The method according to any of the previous embodiments, characterized in that m is a number between 0 and 6, preferably between 0 and 3, particularly preferably between 0 and 2, very particularly preferably 0, and "*" indicates the position in formula (1) where the carboxylic acid group is present.
[0082] 4. The method of embodiment 3, wherein R3 is selected from -CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-CH2-, -CH2-C(CH3)2-CH2-, -CH2-CH(CH3)-CH2-C(CH3)2-, -CH2-C(CH3)2-CH2-CH(CH3)-, and -CH(CH3)-CH2-CH2-C(CH3)2-.
[0083] 5. At least one alicyclic dicarboxylic acid is represented by the formula (IIa) or (IIb): [ka] wherein B represents, independently in each occurrence, a carbon atom or a heteroatom selected from the group consisting of O and S, preferably a CH group or a heteroatom selected from the group consisting of O and S, and n is a number between 0 and 3, or a mixture thereof.
[0084] 6. The method of any of the preceding embodiments, wherein the at least one alicyclic dicarboxylic acid is selected from the group consisting of cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, tetradihydrofuran-2,5-dicarboxylic acid, tetradihydrodimethylfuran-2,5-dicarboxylic acid, decahydronaphthalene-2,4-dicarboxylic acid, decahydronaphthalene-2,5-dicarboxylic acid, decahydronaphthalene-2,6-dicarboxylic acid, decahydronaphthalene-2,7-dicarboxylic acid, and hydrogenated dimer fatty acid.
[0085] 7. The method according to any of the previous embodiments, wherein B in formula (Ia) and formula (Ib) represents a CH2 group.
[0086] 8. The method according to any of the previous embodiments, wherein the at least one alicyclic dicarboxylic acid is selected from the group consisting of cyclohexane-1,4-dicarboxylic acid, cyclohexane-1,3-dicarboxylic acid, cyclohexane-1,2-dicarboxylic acid, and mixtures of these aliphatic dicarboxylic acids.
[0087] 9. The method of any of the previous embodiments, wherein the at least one cycloaliphatic dicarboxylic acid is cyclohexane-1,4-dicarboxylic acid.
[0088] 10. At least one diaryl carbonate is represented by the formula (2): [ka] (wherein R, R', and R'' may be independently the same or different and may be hydrogen, an optionally branched C1-C 34 Alkyl, C7-C 34 Alkylaryl, C6-C 34 3. The method according to any of the previous embodiments, wherein the aryl, nitro group, carbonyl-containing group, carboxyl-containing group, or halogen group is selected from the group consisting of compounds.
[0089] 11. The method of any of the previous embodiments, wherein at least one diaryl carbonate is diphenyl carbonate.
[0090] 12. The first catalyst is a base derived from guanidine, 4-dimethylaminopyridine, 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU), 1,5-diazabicyclo[4.3.0]non-5-ene (DBN), 1,5,7-triazabicyclo[4.4.0]dec-5-ene, and mixtures of these substances. selected from the group consisting of 10. The method of any of the preceding embodiments.
[0091] 13. The method of any of the previous embodiments, wherein the first catalyst is 4-dimethylaminopyridine.
[0092] 14. The method according to any of the previous embodiments, wherein a first catalyst and a second catalyst are present in method step (i).
[0093] 15. The method according to any of the previous embodiments, wherein the first catalyst is used in an amount of 0.002% to 0.1% by weight, relative to all components used in method step (i).
[0094] 16. The method according to any of the previous embodiments, characterized in that the molar ratio of all aliphatic dihydroxy compounds present in method step (i) to all linear aliphatic dicarboxylic acids and / or cycloaliphatic dicarboxylic acids, preferably cycloaliphatic dicarboxylic acids, present in method step (i) prior to the reaction in method step (i) is from 1:0.6 to 1:0.05.
[0095] 17. The method according to any of the previous embodiments, characterized in that the molar ratio of the sum of all aliphatic dihydroxy compounds present in method step (i) and all linear aliphatic dicarboxylic acids and / or cycloaliphatic dicarboxylic acids, preferably cycloaliphatic dicarboxylic acids, present in method step (i) to all diaryl carbonates present in method step (i) before the reaction in method step (i) is from 1:0.4 to 1:1.6.
[0096] 18. The method according to any of the previous embodiments, wherein the alkali metal cations in method step (ii) are selected from lithium cations, potassium cations, sodium cations, cesium cations, and mixtures thereof.
[0097] 19. The method of embodiment 18, wherein the second catalyst is selected from the group consisting of sodium phenoxide, lithium phenoxide, sodium hydroxide, lithium hydroxide, sodium benzoate, lithium benzoate, and mixtures thereof, preferably selected from the group consisting of sodium phenoxide, sodium hydroxide, sodium benzoate, and mixtures thereof.
[0098] 20. The method according to any of the previous embodiments, wherein method step (ii) is carried out at a temperature in the range of 210°C to 280°C.
[0099] 21. The method according to any of the previous embodiments, characterized in that all monomers that are condensed to the polyester carbonate in method step (ii) are already present during method step (i).
[0100] 22. The method according to any of the previous embodiments, characterized in that the chemical compounds eliminated during condensation are removed in method step (ii) by reduced pressure.
[0101] 23. A polyester carbonate obtainable by the method according to any one of embodiments 0 to 22.
[0102] 24. A molding compound comprising the polyester carbonate of embodiment 23.
[0103] 25. A molded article comprising the polyester carbonate of embodiment 23. [Example]
[0104] Materials used: Cyclohexanedicarboxylic acid: Cyclohexane-1,4-dicarboxylic acid; CAS 1076-97-7 99%; Tokyo Chemical Industry Co., Ltd. (Japan), abbreviated as CHDA. Elemental analysis showed that CHDA contained less than 1 ppm sodium.
[0105] Diphenyl carbonate: Diphenyl carbonate, 99.5%, CAS 102-09-0; Acros Organics (Geel, Belgium), abbreviated DPC.
[0106] 4-Dimethylaminopyridine: 4-Dimethylaminopyridine; ≥ 98.0%; purum; CAS 1122-58-3; Sigma-Aldrich (Munich, Germany), abbreviated as DMAP.
[0107] Isosorbide: Isosorbide (CAS: 652-67-5), 99.8%, Polysorb PS A; Roquette Freres (France, Restron 62136); abbreviated as ISB.
[0108] Sodium benzoate: Sodium benzoate (CAS 532-32-1); Sigma-Aldrich (Munich, Germany).
[0109] 3,3-Dimethylglutaric acid: (CAS 4839-46-7) ABCR GmbH (Karlsruhe, Germany).
[0110] Lithium hydroxide (LiOH): (CAS 1310-66-3); Sigma-Aldrich (Munich, Germany).
[0111] Analysis method: solution viscosity Determination of solution viscosity: Relative solution viscosity (η rel The viscosity (η) of the polymer solution was determined at 25°C in a concentration of 5 g / l using an Ubbelohde viscometer. The measurements were carried out in accordance with DIN 51562-3; 1985-05. The viscosity difference between the polymer solution and its solvent was then measured after measuring the flow time of the polyester carbonate under test using the Ubbelohde viscometer. For this purpose, the Ubbelohde viscometer was initially calibrated using the pure solvents dichloromethane, trichloroethylene, and tetrachloroethylene (always at least three and no more than nine measurements). This was followed by an actual calibration using the solvent dichloromethane. The polymer sample was then weighed and dissolved in dichloromethane, and the flow time of this solution was then measured three times. The average flow time was then corrected by Hagenbach correction, and the relative solution viscosity was calculated.
[0112] Example 1: 10 ppm Na 17.20 g (0.10 mol) of cyclohexane-1,4-dicarboxylic acid, 29.83 g (0.204 mol) of isosorbide, 64.30 g (0.3 mol) of diphenyl carbonate, 0.0111 g of DMAP (4-dimethylaminopyridine; 100 ppm relative to the starting materials CHDA, DPC, and ISB), and 50.2 μl of an aqueous solution of sodium benzoate (141.4 g / L), corresponding to approximately 10 ppm of Na, were placed in a flask equipped with a short-path separator. Oxygen was removed from the mixture by degassing and releasing the vacuum with nitrogen four times. The mixture was melted and heated to 160 °C under stirring at standard pressure. The mixture was stirred at 160 °C for 50 minutes, 175 °C for 50 minutes, 190 °C for 30 minutes, and 205 °C for 50 minutes. Carbon dioxide was continuously evolved during this procedure. Once the evolution of CO2 has ceased, the bath temperature is adjusted to 220°C. After a further 20 minutes, negative pressure is applied. The pressure is reduced to 10 mbar over 30 minutes. During this operation, phenol is continuously removed. The mixture is stirred at 10 mbar for approximately 10 minutes. The pressure is then reduced to less than 1 mbar (approximately 0.7 mbar) and the condensation is continued for a further 10 minutes. The mixture is then stopped.
[0113] A light brown polymer was obtained with a solution viscosity of relative η of 1.258.
[0114] Other examples (Ex.) and comparative examples (Comp.) were prepared as described for Example 1, varying only the amounts of sodium benzoate and DMAP used. The data are summarized in Table 1. In each case, the weight percentages in ppm of DMAP and alkali metal relative to the weight of the components used are given.
[0115] In all cases, both catalysts were added in process step (i). The catalysts remained completely in the reaction mixture. The ratio of DMAP and alkali metal was based on all components used in process step (i).
[0116] [Table 1]
[0117] Examples 1 to 4 demonstrate that the method of the present invention provides the desired polyester carbonate within the desired viscosity window. If the alkali ion content is too low, only an insufficient increase in molecular weight can be achieved, as shown in Comparative Examples 1 and 2. If the alkali content is too high, this results in a viscosity that is virtually no longer processable, as shown in Comparative Example 3. If only one catalyst is used (Comparative Example 4), the resulting viscosity is also too low.
[0118] negative pressure used according to the present invention; Example 4 103.2 g (0.60 mol) of cyclohexane-1,4-dicarboxylic acid, 176.35 g (1.206 mol) of isosorbide, 385.8 g (1.80 mol) of diphenyl carbonate, 0.0666 g of DMAP (4-dimethylaminopyridine; 100 ppm relative to the starting materials CHDA, DPC, and ISB), and 30 ppm of sodium in the form of an aqueous solution of sodium benzoate (same concentration as in Example 1) were placed in a flask equipped with a short-path separator. The mixture was deoxygenated by degassing and releasing the vacuum with nitrogen four times. The mixture was melted and heated to 180°C at standard pressure while stirring. Once the starting materials were completely melted, the mixture was stirred for 20 minutes. This was followed by a reduction in pressure to 240 mbar over 25 minutes. The pressure was then reduced to 140 mbar over 40 minutes. During this operation, phenol was continuously distilled off. The vacuum on the reaction mixture is released with nitrogen and the mixture is checked to see if CO evolution is still occurring. Once CO evolution has ceased, the condensation stage (stage 2) is initiated (if CO evolution can still be observed at this point, wait until it ceases; at this point, an additional 100 ppm of DMAP can be added. This is necessary if the catalyst was completely removed in the first stage, which may be evidenced by a stalled polycondensation stage). The pressure is adjusted to 140 mbar and the bath temperature is adjusted to 105 °C. The pressure is reduced to 70 mbar over 15 minutes. After this, the pressure is reduced to 1 mbar over 50 minutes and the bath temperature is increased to 240 °C. At 1 mbar and 240 °C, the mixture is stirred for another 20 minutes. When the melt is drawn up into the stirrer, it is removed from the stirrer and returned to the melt. To do this, the vacuum on the mixture must be temporarily released. A light brown polycondensate with a relative η of 1.32 is obtained.
[0119] Example 4 shows that the method of the present invention can significantly shorten the reaction time in step 1 by applying negative pressure. Despite the larger amounts used, step 1 could be significantly shortened.
[0120] Example 5: 3,3-Dimethylglutaric acid 24.63 g (0.1685 mol) of isosorbide, 8.01 g (0.05 mol) of 3,3-dimethylglutaric acid, 46.36 g (0.2165 mol) of diphenyl carbonate, 100 ppm (0.079 g) of DMAP, and 30 ppm of Li (as an aqueous solution of LiOH from a stock solution (100.00 g / L) → 0.078 mL) were placed in a three-neck flask equipped with a short-path separator. The contents of the flask were deoxygenated by degassing and releasing the vacuum with nitrogen four times. The mixture was heated to 160 °C and melted. After melting, the mixture was stirred at 160 °C for 45 minutes. The temperature was then increased stepwise to 225 °C over 1.5 hours. The pressure was reduced to 500 mbar over 30 minutes. Phenol was continuously removed during this operation. The temperature was increased to 235° C. and the pressure was slowly reduced to 0.1 mbar over 2 hours. After stirring for 10 minutes at 235° C. and 0.1 mbar, the reaction was stopped and the melt was discharged.
[0121] A light colored polymer melt was obtained with a melt viscosity of 1.256 and a glass transition temperature of 121°C.
[0122] Example 6: Mixture of 3,3-dimethylglutaric acid and cyclohexanedicarboxylic acid 29.83 g (0.2040 mol) of isosorbide, 8.01 g (0.05 mol) of 3,3-dimethylglutaric acid, 8.60 g (0.050 mol) of cyclohexanedicarboxylic acid, 64.30 g (0.30 mol) of diphenyl carbonate, 100 ppm (0.0111 g) of DMAP, and 10 ppm of Na as sodium benzoate (0.0069 g) were placed in a three-neck flask equipped with a short-path separator. Oxygen was removed from the contents of the flask by evacuating and releasing the vacuum with nitrogen four times. The mixture was heated to 160°C and melted. After melting, the mixture was stirred at 160°C for 15 minutes. The temperature was increased to 175°C, and stirring was continued at this temperature for 75 minutes. An additional 100 ppm (0.0111 g) of DMAP was then added, and the mixture was stirred at 175°C for an additional 30 minutes. After gas evolution had ceased, the temperature was increased stepwise to 220°C over 1.5 hours. During this operation, phenol was continuously removed. The temperature was then increased to 230°C and the pressure was reduced stepwise to 1 mbar over 1 hour. The mixture was stirred at 1 mbar for a further 10 minutes, after which the melt was removed.
[0123] A pale polymer melt was obtained with a solution viscosity of relative η of 1.24.
[0124] Examples 5 and 6 demonstrate that polyestercarbonates with desirable processable viscosities can be obtained with both linear aliphatic dicarboxylic acids and mixtures of linear aliphatic and cycloaliphatic dicarboxylic acids.
Claims
1. 1. A process for producing polyester carbonate by melt transesterification, comprising: (i) reacting at least one linear aliphatic dicarboxylic acid and / or at least one alicyclic dicarboxylic acid with at least one diaryl carbonate in the presence of at least one aliphatic dihydroxy compound and a first catalyst and / or a second catalyst; (ii) subjecting the mixture obtained from process step (i) to further condensation in the presence of said first catalyst and said second catalyst, while removing at least chemical compounds released during the condensation; where: the first catalyst is at least one tertiary nitrogen base; the second catalyst is at least one basic alkali metal salt; and A process wherein the proportion of alkali metal cations in process step (ii) is between 0.0009% and 0.0025% by weight relative to all components used in process step (i).
2. 10. The method of claim 1, wherein the at least one aliphatic dihydroxy compound is isosorbide.
3. The at least one linear aliphatic dicarboxylic acid and / or the at least one alicyclic dicarboxylic acid may be represented by the general formula (1): 【Chemical 1】 (In the formula, A is R 3 where: R 3 represents a linear alkylene group having 3 to 16 carbon atoms, which alkylene group may be optionally mono- or polysubstituted, or A is a group of formula (Ia) or formula (Ib): 【Chemistry 2】 where: B is, independently in each occurrence, CH 2 represents a group, O, or S, R 1 represents, independently in each occurrence, a single bond or an alkylene group having 1 to 10 carbon atoms, and R 2 represents, independently in each occurrence, an alkylene group having 1 to 10 carbon atoms; n is between 0 and 3; 3. The method according to claim 1 or 2, characterized in that m is between 0 and 6, and "*" indicates the position where the carboxylic acid group is present in formula (1).
4. 4. The method of claim 3, wherein the at least one cycloaliphatic dicarboxylic acid is cyclohexane-1,4-dicarboxylic acid.
5. The at least one diaryl carbonate has the formula (2): 【Chemistry 3】 (wherein R, R′, and R″ may each independently be the same or different and may be hydrogen, optionally branched C 1 ~C 34 Alkyl, C 7 ~C 34 Alkylaryl, C 6 ~C 34 5. The method according to claim 1, wherein the aryl, nitro, carbonyl-containing, carboxyl-containing or halogen group is selected from the group consisting of the compounds of the formula (I).
6. 6. The method according to claim 1, wherein the first catalyst is selected from the group consisting of bases derived from guanidine, 4-dimethylaminopyridine, 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU), 1,5-diazabicyclo[4.3.0]non-5-ene (DBN), 1,5,7-triazabicyclo[5.4.0]dec-5-ene, and mixtures of these substances.
7. 7. The process according to any one of claims 1 to 6, characterized in that the first catalyst is used in an amount of 0.002% to 0.1% by weight relative to all components used in process step (i).
8. A method according to any one of claims 1 to 7, wherein an aromatic dihydroxy compound may further be present in method step (i), and if present, the aromatic dihydroxy compound is present in an amount of up to 20 mol% relative to the total molar amount of dihydroxy compounds used.
9. A polyester carbonate obtainable by the process according to any one of claims 1 to 8.
10. A molding compound comprising the polyester carbonate of claim 9.
11. A molded article comprising the polyester carbonate of claim 9.
Citation Information
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