Claims
- 1. A process for coupling a living polymer comprising living terminal (meth)acrylic units, which process comprises the steps of:
- (i) anionically polymerizing with an initiator system having a bi-functional initiator and a ligand to obtain a living polymer comprising living terminal (meth)acrylic units;
- (ii) reacting the living polymer with an aldehyde compound of formula:
- R--(CHO).sub.r
- in which r>2; R is an alkyl, cycloalkyl, aryl, or aralkyl group having from 2 to 24 carbon atoms, unsubstituted or substituted by at least one substituent comprising a C.sub.1-6 alkoxy or di(C.sub.1-6 alkyl)amino, halogen, or trifluoromethyl; and
- (iii) recovering the final polycondensate.
- 2. The process according to claim 1, wherein said polymer comprises monomer units selected from the group consisting of acrylic, methacrylic, vinylaromatic, dienic, vinylpyridine, alkylene oxide, lactame, lactone and maleimide monomers.
- 3. The process according to claim 1, wherein step (i) comprises:
- (i)
- (a) anionically polymerizing a monomer A selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkylene oxide, lactame, lactone and maleimide monomers, using an initiator system having at least one bi-functional initiator and at least one ligand leading to the living polymer .sup.- (A).sub.a.sup.-, with a<5,000;
- (b) reacting said living polymer .sup.- (A).sub.a.sup.- with a monomer B different from A, wherein B is selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkylene oxide, lactame, lactone and maleimide monomers, in the presence of at least one ligand as defined above, leading to the polymer .sup.- (B).sub.b -(A).sub.a -(B).sub.b.sup.-, b<5,000;
- (k) reacting said .sup.- (J).sub.j -(B).sub.b -(A).sub.a -(B).sub.b - . . . -(J).sub.j.sup.- polymer with a monomer K different from J, wherein K is selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkene oxide, lactame, lactone and maleimide monomers, in the presence of at least one ligand as defined above, leading to the living tri-sequenced copolymer .sup.- (K).sub.k - . . . -(A).sub.a - . . . -(K).sub.k.sup.-, with k<5,000;
- and finally reacting the living polymer obtained from the previous step with a (meth)acrylic monomer in the presence of at least one ligand leading to a living polymer .sup.- P.sup.-.
- 4. The process according to claim 1, wherein step (i) comprises:
- (i)
- (a) anionically polymerizing a monomer A selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkylene oxide, lactame, lactone and maleimide monomers, using an initiator system having at least one bi-functional initiator and at least one ligand leading to the living polymer .sup.- (A).sub.a.sup.-, with a<5,000;
- (b) reacting said living polymer .sup.- (A).sub.a.sup.- with a monomer B different from A, wherein B is selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkene oxide, lactame, lactone and maleimide monomers, in the presence of at least one ligand as defined above, leading to the polymer .sup.- (B).sub.b -(A).sub.a -(B).sub.b.sup.-, b<5,000;
- (c) reacting said living .sup.- (B).sub.b -(A).sub.a -(B).sub.b.sup.- polymer with a (meth)acrylic monomer C different from B, in the presence of at least one ligand as defined above, leading to the living tri-sequenced copolymer .sup.- (C).sub.c -(B).sub.b -(A).sub.a -(B).sub.b -(C).sub.c.sup.-, c<5,000.
- 5. The process according to claim 4, wherein A is a vinylaromatic monomer, B is a vinylpyridine monomer, and C is a methacrylate monomer.
- 6. The process according to claim 4, wherein the molecular weights of sequences (A).sub.a, (B).sub.b and (C).sub.c are between 1,000 and 500,000.
- 7. The process according to claim 6, wherein the molecular weights of sequences (A).sub.a, (B).sub.b and (C).sub.c are between 2,000 and 300,000.
- 8. The process according to claim 4, wherein the weight ratio of sequences (A).sub.a /(B).sub.b /(C).sub.c is between 1/500/500 and 500/1/1.
- 9. The process according to claim 8, wherein the weight ratio of sequences (A).sub.a /(B).sub.b /(C).sub.c is between 1/100/100 and 100/1/1.
- 10. The process according to claim 1, wherein step (i) comprises:
- (i)
- (a) anionically polymerizing a monomer A selected from the group consisting of (meth)acrylic, vinylaromatic, dienic, vinylpyridine, alkylene oxide, lactame, lactone and maleimide monomers, using an initiator system having at least one bi-functional initiator and at least one ligand leading to the living polymer .sup.- (A).sub.a.sup.-, with a<5,000;
- (b) reacting said living polymer .sup.- (A).sub.a.sup.- with a monomer B different from A, in the presence of at least one ligand as defined above, leading to the polymer .sup.- (B).sub.b -(A).sub.a -(B).sub.b.sup.-, with b<5,000.
- 11. The process according to claim 11, wherein A is a vinylaromatic monomer and B is a methacrylate monomer.
- 12. The process according to claim 10, wherein the molecular weights of sequences (A).sub.a and (B).sub.b are between 1,000 and 500,000.
- 13. The process according to claim 12, wherein the molecular weights of sequences (A).sub.a and (B).sub.b are between 2,000 and 300,000.
- 14. The process according to claim 10, wherein the weight ratio of sequences (A).sub.a /(B).sub.b is between 49/2/49 and 1/98/1.
- 15. The process according to claim 14, wherein the weight ratio of sequences (A).sub.a /(B).sub.b is between 45/10/45 and 5/90/5.
- 16. The process according to claim 1, wherein step (i) comprises:
- (i) anionically polymerizing a (meth)acrylic monomer A using an initiator system having at least one bi-functional initiator and at least one ligand leading to the living polymer .sup.- (A).sub.a.sup.-, with a<5,000.
- 17. The process according to claim 16, wherein monomer A is methyl methacrylate or tert-butyl acrylate.
- 18. The process according to claim 16, wherein the molecular weight of sequences (A).sub.a is between 1,000 and 500,000.
- 19. The process according to claim 18, wherein the molecular weight of sequences (A).sub.a is between 2,000 and 300,000.
- 20. The process according to claim 1, wherein R is an aryl group, which is unsubstituted or substituted by 1 to 4 groups selected from the group consisting of C.sub.1-4 alkyls, trifluoromethyl and halogens.
- 21. The process according to claim 1, wherein said aldehyde compound is bi-functional, with r equal to 2.
- 22. The process according to claim 21, wherein said aldehyde compound is terephthalaldehyde.
- 23. The process according to claim 1, wherein said aldehyde compound is multifunctional, with r greater than 2.
- 24. The process according to claim 23, wherein said aldehyde compound is 1,3,5-triformylbenzene.
- 25. The process according to claim 1, wherein the di- or multi-functional aldehyde is introduced in an amount sufficient to obtain an aldehyde/bifunctional initiator ratio in the range of 0.2 to 10.
- 26. The process according to claim 25, wherein the di- or multi- functional aldehyde is introduced in an amount sufficient to obtain an aldehyde/bifunctional initiator ratio in the range of 0.5 to 2.
- 27. The process according to claim 26, wherein said aldehyde compound is introduced substantially in a stoichiometric amount with respect to said bi-functional initiator.
- 28. The process according to claim 1, wherein the ligand/bi-functional initiator ratio is in the range of 0.3 to 50.
- 29. The process according to claim 28, wherein the ligand/bi-functional initiator ratio is about 5.
- 30. The process according to claim 1, wherein the bi-functional initiator employed in the first polymerization step (i) of the process is a compound of the formula:
- (R').sub.2 --M
- wherein M is an alkaline or alkaline-earth metal of a valency of 2 and R' is a straight chain or branched alkyl radical having 2 to 6 carbon atoms, a substituted aryl radical, or an alkyl radical having 1 to 6 carbon atoms which is substituted by at least one phenyl group; or
- a compound of the formula:
- (C.sub.10 H.sub.6)M'.sub.2
- wherein M' is selected from lithium, sodium and potassium.
- 31. The process according to claim 30, wherein said bi-functional initiator is selected from the group consisting of 1,1,4,4-tetraphenyl-1,4-dilithio-butane (TPDLB), 1,1,4,4-tetraphenyl- 1,4-disodiobutane, naphthalene lithium, naphthalene sodium, naphthalene potassium and homologues thereof.
- 32. The process according to claim 31, wherein the bi-functional initiator is 1,1,4,4-tetraphenyl-1,4-dilithio-butane (TPDLB) or naphthalene lithium.
- 33. The process according to claim 1, wherein said ligand comprises
- alkaline or alkaline-earth mineral salts selected from the group consisting of chlorides, fluorides, bromides, iodides, borides, sulfates, nitrates and borates, or
- alkaline metal organic salts selected from the group consisting of alcoholates, carboxylic acid esters substituted in the alpha position by said metal, and salts in which said alkaline is associated with a group comprising:
- (A) groups of the formula: ##STR7## wherein R.sub.1 is a straight chain or alkyl radical with 1 to 20 carbon atoms, a cycloalkyl radical with 3 to 20 carbon atoms, or an aryl radical with 6 to 14 carbon atoms;
- (B) groups of the formula: ##STR8## wherein Y and Z are the same or different, and comprise a hydrogen or halogen atom; n is an integer from 0 to 4; X is a halogen atom; and m is an integer from 0 to 2;
- (C) groups of the formula:
- --O--SO.sub.2 --CT.sub.3 (IV)
- wherein T comprises a hydrogen or halogen atom; or
- (D) groups of the formula:
- --B(R.sub.2).sub.4
- wherein R.sub.2 comprises hydrogen, or an alkyl or aryl radical.
- 34. The process according to claim 33, wherein said ligand comprises:
- (i) acetate, propionate or benzoate groups for formula (II);
- (ii) .alpha.-bromoacetate or trifluoroacetate groups for formula (III);
- (iii) trifluoromethanesulfonic or methane-sulfonic groups for formula (IV); or
- (iv) borohydrate or tetraphenylborate groups for formula (V).
- 35. The process according to claim 1, wherein said ligand comprises a non-nitrogenous macrocyclic complexing agent, which complexing agent is selected from the group consisting of cyclic polyethers and polythioethers.
- 36. The process according to claim 35, wherein said ligand is a macrocyclic poly(thio)ether with a macrocyclic ring having at least 14 carbon atoms and oxygen, wherein each oxygen atom of the ring is separated from the other oxygen atoms of the ring by two or three carbon atoms.
- 37. The process according to claim 33, wherein said ligand is LiCl.
- 38. The process according to claim 1, wherein the reactions of steps (i) and (ii) are carried out in the presence of a solvent, wherein said solvent is an aromatic solvent selected from benzene and toluene, tetrahydrofuran (THF), diglyme, tetraglyme, orthoterphenyl, biphenyl, decaline, tetraline or dimethylformamide.
- 39. The process according to claim 38, wherein said solvent is THF or toluene.
- 40. The process according to claim 1, wherein the reaction temperature of steps (i) and (ii) is between about -100.degree. C. and 60.degree. C.
- 41. The process according to claim 40, wherein the reaction temperature of steps (i) and (ii) is between about -80.degree. C. and 20.degree. C.
- 42. The process according to claim 1, wherein the reactions of steps (i) and (ii) of the process are carried out in a non-oxidizing, anhydrous and aprotic medium.
- 43. The process according to claim 1, wherein the total amount of said aldehyde compound is added before gelation of the medium.
- 44. The process according to claim 1, wherein said aldehyde compound is introduced dropwise.
- 45. The process according to claim 1, wherein the medium is acidified before separation, using an acid selected from the group consisting of hydrochloric, sulfuric, acetic, para- or methane-toluenesulfonic acids, and mixtures thereof.
- 46. The process according to claim 1, wherein the blocks representing an acrylic and/or methacrylic monomer sequence are totally or partially hydrolysed to the corresponding acrylic and/or methacrylic acid sequence.
- 47. The process according to claim 46, wherein said corresponding acrylic and/or methacrylic acid sequence is subsequently totally or partially saponified with an alkaline or alkaline-earth metal salt to a corresponding alkaline or alkaline-earth acrylate and/or methacrylate sequence.
- 48. The process according to claim 1, wherein the blocks representing an acrylic and/or methacrylic monomer sequence are totally or partially transesterified to a sequence of another acrylic and/or methacrylic monomer to replace tertiary (meth)acrylate by a secondary (meth)acrylate or vice-versa, a secondary (meth)acrylate by a primary (meth)acrylate or vice-versa, a tertiary (meth)acrylate by a primary (meth)acrylate or vice-versa.
- 49. A polycondensate obtained by the process of claim 1.
Priority Claims (1)
Number |
Date |
Country |
Kind |
92 00200 |
Jan 1992 |
FRX |
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Parent Case Info
This application is a division of application Ser. No. 08/002,818, filed Jan. 11, 1993, now U.S. Pat. No. 5,346,956.
US Referenced Citations (2)
Foreign Referenced Citations (4)
Number |
Date |
Country |
02 58 065 |
Mar 1988 |
EPX |
2019473 |
Nov 1970 |
DEX |
42-007633 |
Mar 1967 |
JPX |
44-011379 |
May 1969 |
JPX |
Non-Patent Literature Citations (1)
Entry |
Polymer Preprints, vol. 29, No. 2, Sep. 1988, pp. 48-49, S. D. Smith, "Synthesis of poly(methyl methacrylate) macromonomers via anionic polymerizations". |
Divisions (1)
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Number |
Date |
Country |
Parent |
2818 |
Jan 1993 |
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