Multi-block copolymers
The present invention provides a multi-block copolymer comprising at least blocks A-B-A or B-A-B, wherein block A comprises a polyester formed by polymerisation of a lactone and/or a lactide; and block B comprises a copolyester formed by polymerisation of an epoxide and an anhydride, or a polycarbonate formed by polymerisation of an epoxide and carbon dioxide, and methods of production thereof.
1. A multi-block copolymer comprising blocks A-B-A, wherein block A comprises a polyester formed by polymerisation of ϵ-decalactone; and block B comprises a copolyester formed by polymerisation of (1) cyclohexene oxide or 4-vinyl-1-cyclohexene-1,2-epoxide and (2) phthalic anhydride, wherein the multi-block copolymer is a triblock copolyester, a pentablock copolyester, or a heptablock copolyester, and wherein the multi-block copolymer comprises urethane linkages.
2. The multi-block copolymer of claim 1 , wherein the copolymer has a measureable T g for each of blocks A and B, with a difference of at least 10° C. between the T g for blocks A and B.
3. The multi-block copolymer of claim 1 , wherein block B has a T g of ≥30° C., and no more than 250° C.
4. The multi-block copolymer of claim 1 , wherein the multi-block copolymer is characterised by feature (i) or (ii) and feature (iii):
(i) a degree of crystallinity (x) of block A of no more than 20% as determined by DSC; and/or
(ii) a degree of crystallinity (x) of block A of no more than 20% as determined by WAXS; and/or
(iii) a measureable T g for each of blocks A and B, with a difference of at least 10° C. between the T g for blocks A and B.
5. The multi-block copolymer of claim 1 , wherein, the weight content of block B, with reference to block A, is from 10 to 90%.
6. The multi-block copolymer of claim 1 , having a M n (number average molecular weight) of at least 1 kg/mol.
7. The multi-block copolymer of claim 1 , having a Young's modulus of 1 MPa to 7000 MPa.
8. The multi-block copolymer of claim 1 , wherein block B comprises a copolyester formed by polymerisation of (1) cyclohexene oxide and (2) phthalic anhydride.
9. The multi-block copolymer of claim 1 , wherein Block B comprises poly(cyclohexylene phthalic)ester, an alternating copolyester formed from polymerization of cyclohexene oxide and phthalic anhydride.
10. A packaging material, a biomedical material, a sealant, an adhesive, an engineering material, a synthetic fibre, an automobile part or a foam comprising a copolymer according to claim 1 .
11. The multi-block copolymer of claim 5 , wherein the weight content of block B, with reference to block A, is from 20 to 80%.
12. The multi-block copolymer of claim 5 , wherein the weight content of block B, with reference to block A, is from 30 to 55%.
13. The multi-block copolymer of claim 1 , wherein block B comprises a copolyester formed by polymerisation of (1) 4-vinyl-1-cyclohexene-1,2-epoxide and (2) phthalic anhydride.
14. The multi-block copolymer of claim 2 , wherein the copolymer has a measureable T g for each of blocks A and B, with a difference of at least 100° C. between the T g for blocks A and B.
15. The multi-block copolymer of claim 1 , wherein block B of the multiblock copolymer is amorphous.
16. The multi-block copolymer of claim 1 , characterised by one or more of features (i) to (ii):
(i) a degree of crystallinity (x) of block A of no more than 20% as determined by DSC; and/or
(ii) a degree of crystallinity (x) of block A of no more than 20% as determined by WAXS.
17. The multi-block copolymer of claim 1 , formed from a catalytic system comprising 1,2-cyclohexane diol and a catalyst of the formula:
wherein each X is phenyl.
18. The multi-block copolymer of claim 7 , having a Young's modulus of 50 MPa to 7000 MPa.