Claims
- 1. A method comprising:
providing a polymeric composition comprising a soft component A having a Tg,s of less than room temperature, a hard component B in contact with the soft component A, the hard component having a Tg,h such that hard component has negligible flow at room temperature; and applying a pressure of at least about 100 psi such that the polymeric composition exhibits Newtonian flow at a temperature of less than 150° C.
- 2. A method as in claim 1, wherein components A and B of the composition are selected to have a relation φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] having a positive value at a temperature above 100° C., wherein φA and φB represent volume fractions of the components A and B respectively, {tilde over (ρ)}A and {tilde over (ρ)}B represent reduced densities of the components A and B respectively, and δA and δB represent solubility parameters of the components A and B respectively; and
the densities ρA and ρB being matched as defined by the following relationship: 1.06 ρA<ρB<0.94 ρA.
- 3. A polymeric composition comprising:
a soft component A having a Tg,s of less than room temperature; a hard component B in contact with the soft component A, the hard component having a Tg,h such that hard component has negligible flow at room temperature; components A and B selected to have a relation φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] of the composition having a positive value at a temperature above 100° C., wherein φA and φB represent volume fractions of the components A and B respectively, {tilde over (ρ)}A and {tilde over (ρ)}B represent reduced densities of the components A and B respectively, and δA and δB represent solubility parameters of the components A and B respectively; and the densities ρA and ρB being matched as defined by the following relationship: 1.06 ρA<ρB<0.94 ρA.
- 4. The composition of claim 3, wherein φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] has a positive value at a temperature above 50° C.
- 5. The composition of claim 3, wherein φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] has a positive value at a temperature above 0° C.
- 6. The composition of claim 3, wherein a pressure coefficient dT/dP, the composition has an absolute value greater than about 30° C./kbar.
- 7. The composition of claim 3, wherein the pressure coefficient has an absolute value greater than about 50° C./kbar.
- 8. The composition of claim 3, wherein the pressure coefficient has an absolute value greater than about 100° C./kbar.
- 9. The composition of claim 3, wherein upon the application of pressure of greater than about 100 psi and at a temperature of no more than 150° C., the composition is in a miscible state and has a glass transition temperature Tg,mix, as defined by the relation:
- 10. The composition of claim 9, wherein the composition is a polymer blend and each component comprises a polymer.
- 11. The composition of claim 9, wherein the composition is a block copolymer having the block B is bonded to block A, and each component comprises a polymer block.
- 12. The composition of claim 11, wherein the block copolymer is selected from the group consisting of polystyrene-b-poly(hexyl methacrylate) copolymers wherein 0<ws≦45%, poly(ethyl methacrylate)-b-poly(ethyl acrylate) copolymers wherein 0<wEMA≦85%, polycaprolactone-b-poly(ethyl acrylate) wherein 0<wPCL<100%, polycaprolactone-block-poly(ethyl methacrylate) wherein 0<wEMA<92%, poly(caprolactone)-block-poly(methyl methacrylate) wherein 0<wMMA≦75%, poly(methyl methacrylate)-b-poly(ethyl acrylate) copolymers wherein 0<wMMA≦65%, poly(ethyl methacrylate)-b-poly(methyl acrylate) copolymers wherein 0<wEMA≦85%, polystyrene-block-poly(vinyl ethyl ether) wherein 0<wSTY≦80%, polystyrene-block-poly(butyl acrylate) wherein 0<wSTY≦80%, polystyrene-block-poly(hexyl acrylate) wherein 0<ws≦80%, poly(propyl methacrylate)-block-poly(ethyl acrylate) wherein 0<wPPMA<100%, poly(butyl methacrylate)-block-poly(butyl acrylate) wherein 0<wPBMA<100%, poly(propyl methacrylate)-block-poly(propyl acrylate) wherein 0<wPPMA<100%, poly(propyl methacrylate)-block-poly(butyl acrylate) wherein 0<wPPMA<100%, poly(ethyl methacrylate)-block-poly(propyl acrylate) wherein 0<wEMA≦90%, poly(ethyl methacrylate)-block-poly(butyl acrylate) wherein 0<wEMA≦90%, poly(cyclohexyl methacrylate)-block-poly(propyl acrylate) wherein 0<wCHMA≦80%, poly(cyclohexyl methacrylate)-block-poly(butyl acrylate) wherein 0<wCHMA≦85%, poly(propyl acrylate)-block-poly(butyl methacrylate) wherein 0<wPPA<100%, and poly(propyl acrylate)-block-polycaprolactone wherein 0<wPPA<100%.
- 13. The composition of claim 12, wherein poly (butyl acrylate) is substituted by a random copolymer of two or more monomers selected from MA, EA, PA, HA, OA, DA, and LA.
- 14. The composition of claim 12, wherein poly (ethyl acrylate) is substituted by a random copolymer of two or more monomers selected from MA, PA, BA, HA, OA, DA, and LA.
- 15. The composition of claim 12, wherein poly (propyl acrylate) is substituted by a random copolymer of two or more monomers selected from MA, EA, BA, HA, OA, DA, and LA.
- 16. The composition of claim 12, wherein poly (butyl methacrylate) is substituted by a random copolymer of two or more monomers selected from MMA, EMA, PMA, HMA, OMA, DMA, and LMA.
- 17. The composition of claim 12, wherein poly (ethyl methacrylate) is substituted by a random copolymer of two or more monomers selected from MMA, PMA, BMA, OMA, HMA, DMA, and LMA.
- 18. The composition of claim 12, wherein poly (propyl methacrylate) is substituted by a random copolymer of two or more monomers selected from MMA, EMA, BMA, OMA, HMA, DMA, and LMA.
- 19. The composition of claim 12, wherein polystyrene is substituted by a random copolymer comprising any of the following combinations: BMA/CHMA, S/BMA, S/CHMA, S/BMA/CHMA.
- 20. The composition of claim 9, wherein the hard block has a Tg of less than about 80° C.
- 21. The composition of claim 9, wherein the hard block has a Tg of less than about 50° C.
- 22. A pressure sensitive adhesive comprising the composition of claim 3.
- 23. A pressure molded or injection molded article comprising the composition of claim 3.
- 24. An elastomer comprising the composition of claim 3.
- 25. A block copolymer comprising:
a soft block having a Tg,s of less than room temperature; a hard block bonded to the soft block, the hard block having a Tg,h such that the hard block has negligible flow at room temperature; and wherein a pressure coefficient that favors miscibility, dTDOT/dP, of the block copolymer has an absolute value greater than about 30° C./kbar.
- 26. The block copolymer of claim 25, wherein the pressure coefficient has an absolute value greater than about 50° C./kbar.
- 27. The block copolymer of claim 25, wherein the pressure coefficient has an absolute value greater than about 100° C./kbar.
- 28. The block copolymer of claim 25, wherein at a temperature of no more than 150° C. and under the application of pressure of at least 100 psi, the block copolymer is in a miscible state and has a glass transition temperature Tg,mix, as defined by the relation:
- 29. The block copolymer of claim 28, wherein the block copolymer is in a miscible state at a temperature of no more than 100° C. under the application of pressure of at least 100 psi.
- 30. The block copolymer of claim 28, wherein the block copolymer is in a miscible state at a temperature of no more than 60° C. under the application of pressure of at least 100 psi.
- 31. A method for selecting a polymeric composition, comprising:
selecting a component A, having a polymerization index of NA; selecting a component B, in contact with the component A, the component B having a polymerization index of NB; determining a value of a relation φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B−) (δA2−δB2 )] of the composition such that the relation has a positive value at a temperature above 100° C., wherein φA and φB represent volume fractions of the components A and B respectively, {tilde over (ρ)}A and {tilde over (ρ)}B represent reduced densities of the components A and B respectively, and δA and δB represent solubility parameters of the components A and B respectively, and the densities ρA and ρB being matched as defined by the following relationship: 1.06 ρA<ρB<0.94 ρA.
- 32. The method of claim 31, wherein φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] has a positive value at a temperature above 50° C.
- 33. The method of claim 31, wherein the φAφB[({tilde over (ρ)}A−{tilde over (ρ)}B)(δA2−δB2)] has a positive value at a temperature above 0° C.
- 34. The method of claim 31, wherein the component A is a soft component having a Tg,s of less than room temperature.
- 35. The method of claim 31, wherein the component B is a hard component having a Tg,h such that the component B has negligible flow at room temperature.
- 36. A method comprising:
determining the phase diagram of a polymer composition by determining the free energy of the composition from the following equation: 7Δ gmix= RT[φAρ~ANAvAln φA+φBρ~BNBvBln φB]+ φAφBρ~Aρ~Bv(RT χFH)+ φAφB[(ρ~A-ρ~B)(δA2-δB2)].
RELATED APPLICATION
[0001] This non-provisional application claims the benefit under Title 35 U.S.C. §119(e) of co-pending U.S. provisional application Serial No. 60/183,505, filed Feb. 17, 2000, entitled, “Baroplastic Materials” by Anne Mayes et al., incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60183505 |
Feb 2000 |
US |