Claims
- 1. A multicomponent superabsorbent fiber comprising: (a) a core comprising at least one basic water-absorbing resin and (b) a sheath comprising at least one acidic water-absorbing resin which forms a layer surrounding and in contact with the core.
- 2. The fiber of claim 1 wherein the basic resin comprises a strong basic resin, a weak basic resin, or a mixture thereof, and the acidic resin comprises a strong acidic resin, a weak acidic resin, or a mixture thereof.
- 3. The fiber of claim 1 having a weight ratio of acidic resin to basic resin of about 95:5 to about 5:95.
- 4. The fiber of claim 1 wherein the core contains at least one microdomain of at least one acidic resin.
- 5. The fiber of claim 1 wherein the sheath contains at least one microdomain of at least one basic resin.
- 6. The fiber of claim 1 wherein the fiber is elongated and acicular.
- 7. The fiber of claim 6 wherein the fiber is in the shape of a cylinder having a diameter of about 10 μm to about 1 mm and a length of about 1 mm to about 100 mm.
- 8. The fiber of claim 6 wherein the fiber is in the shape of a filament having a length diameter ratio of about 500 to about 10,000:1.
- 9. The fiber of claim 1 wherein the fiber is annealed at a temperature of about 65° C. to about 150° C. for about 20 minutes to about 16 hours.
- 10. The fiber of claim 1 wherein the fiber is surface crosslinked with up to about 10,000 ppm of a surface crosslinking agent.
- 11. The fiber of claim 10 wherein the surface crosslinking agent is selected from the group consisting of a polyhydroxy compound, a metal salt, a quaternary ammonium compound, a multifunctional epoxy compound, an alkylene carbonate, a polyaziridine, a haloepoxy, a polyamine, a polyisocyanate, and mixtures thereof.
- 12. The fiber of claim 1 wherein the basic resin has about 75% to 100% basic moieties present in a free base form.
- 13. The fiber of claim 1 wherein the basic resin is lightly crosslinked.
- 14. The fiber of claim 1 wherein the basic resin is selected from the group consisting of a poly(vinylamine), a poly(dialkylaminoalkyl (meth)acrylamide), a polymer prepared from the ester analog of an N-(dialkylamino(meth)acrylamide), a polyethylenimine, a poly(vinylguanidine), a poly(allylguanidine), a poly(allylamine), a poly(dimethyldialkylammonium hydroxide), a guanidine-modified polystyrene, a quaternized polystyrene, a quaternized poly(meth)acrylamide or ester analog thereof, poly(vinyl alcohol-co-vinylamine), and mixtures thereof.
- 15. The fiber of claim 1 wherein the acidic resin contains a plurality of carboxylic acid, sulfonic acid, sulfuric acid, phosphonic acid, or phosphoric acid groups, or a mixture thereof.
- 16. The fiber of claim 1 wherein the acidic resin has about 75% to 100% acid moieties present in the free acid form.
- 17. The fiber of claim 1 wherein the acidic resin is lightly crosslinked.
- 18. The fiber of claim 1 wherein the acidic resin is selected from the group consisting of polyacrylic acid, a hydrolyzed starch-acrylonitrile graft copolymer, a starch-acrylic acid graft copolymer, a saponified vinyl acetate-acrylic ester copolymer, a hydrolyzed acrylonitrile polymer, a hydrolyzed acrylamide copolymer, an ethylene-maleic anhydride copolymer, an isobutylene-maleic anhydride copolymer, a poly(vinylphosphonic acid), a poly(vinylsulfonic acid), a poly(vinylphosphoric acid), a poly(vinyl-sulfuric acid), a sulfonated polystyrene, a poly(aspartic acid), a poly(lactic acid), and mixtures thereof.
- 19. The fiber of claim 1 wherein the basic resin comprises a poly(vinylamine), a poly(dialkylaminoalkyl (meth)acrylamide), a poly(vinylguanidine), a polyethylenimine, or a mixture thereof, and the acidic resin comprises poly(acrylic acid).
- 20. The fiber of claim 19 wherein the poly(dialkylaminoalkyl (meth)acrylamide) comprises poly(dimethylaminoethyl acrylamide), poly(dimethylaminopropyl methacrylamide), or a mixture thereof.
- 21. The fiber of claim 19 wherein the poly(acrylic acid) resin further contains strong acid moieties.
- 22. The fiber of claim 1 wherein the core has voids.
- 23. An article comprising a core containing a superabsorbent polymer, said core comprising about 1% to 100% by weight of a multicomponent superabsorbent fiber of claim 1.
- 24. A method of absorbing an aqueous medium comprising contacting the medium with a plurality of fibers of claim 1.
- 25. A method of claim 24 wherein the aqueous medium contains electrolytes.
- 26. A method of claim 25 wherein the electrolyte-containing aqueous medium is selected from the group consisting of urine, saline, menses, and blood.
- 27. A superabsorbent material comprising:
(a) multicomponent superabsorbent fibers of claim 1, and (b) particles of a second water-absorbing resin selected from the group consisting of an acidic water-absorbing resin, a basic water-absorbing resin, and mixtures thereof.
- 28. The superabsorbent material of claim 27 wherein the multicomponent superabsorbent fibers are present in an amount of about 10% to about 90%, by weight, of the material.
- 29. The superabsorbent material of claim 27 wherein the multicomponent superabsorbent fibers are 0% to 25% neutralized, and the second water-absorbing resin is 0% to 100% neutralized.
- 30. The superabsorbent material of claim 27 wherein the second water-absorbing resin comprises an acidic water-absorbing resin.
- 31. A multicomponent superabsorbent fiber comprising: (a) a core comprising at least one acidic water-absorbing resin and (b) a sheath comprising at least one basic water-absorbing resin which forms a layer surrounding and in contact with the core.
- 32. The fiber of claim 31 wherein the fiber is surface crosslinked with up to about 10,000 ppm of a surface crosslinking agent.
- 33. The fiber of claim 32 wherein the surface crosslinking agent is selected from the group consisting of
(a) a dihalide or a disulfonate ester having the formula Y—(CH2)p—Y,wherein p is an integer 2 to 12 and Y, independently, is halo, tosylate, mesylate, an alkyl sulfonate ester, or an aryl sulfonate ester; (b) a multifunctional aziridine; (c) a multifunctional aldehyde, and acetals and bisulfites thereof; (d) a halohydrin; (e) a multifunctional epoxy compound; (f) a multifunctional carboxylic acid containing 2 to 12 carbon atoms, and methyl and ethyl esters, acid chlorides, and anhydrides derived therefrom; (g) an organic titanate; (h) a melamine resin; (i) a hydroxymethyl urea; (j) a multifunctional isocyanate; and (k) mixtures thereof.
- 34. The fiber of claim 31 wherein the particle is annealed at a temperature of about 65° C. to about 150° C. for about 20 minutes to about 16 hours.
- 35. The fiber of claim 31 wherein the core contains at least one microdomain of at least one basic resin.
- 36. The fiber of claim 31 wherein the sheath contains at least one microdomain of at least one acidic resin.
- 37. An article comprising a multicomponent superabsorbent fiber of claim 31.
- 38. A method of absorbing an aqueous medium comprising contacting the medium with a plurality of fibers of claim 31.
- 39. A superabsorbent material comprising:
(a) multicomponent superabsorbent fibers of claim 31, and (b) particles of a second water-absorbing resin selected from the group consisting of an acidic water-absorbing resin, a basic water-absorbing resin, and mixtures thereof.
- 40. The superabsorbent material of claim 39 wherein the multicomponent superabsorbent fibers are 0% to 25% neutralized, and the second water-absorbing resin is 0% to 100% neutralized.
- 41. The superabsorbent material of claim 39 wherein the second water-absorbing resin comprises an acidic water-absorbing resin.
- 42. A multicomponent superabsorbent fiber comprising:
(a) one or more first fibers comprising an acidic resin, and (b) one or more second fibers comprising a basic resin, wherein the first and second fibers are twisted together in the form of a braid.
- 43. The fiber of claim 42 wherein the first fiber contains at least one microdomain of at least one basic resin.
- 44. The fiber of claim 42 wherein the second fiber contains at least one microdomain of at least one acidic resin.
- 45. The fiber of claim 42 wherein the fiber is annealed at a temperature of about 65° C. to about 150° C. for about 20 minutes to about 16 hours.
- 46. The fiber of claim 42 wherein the first fiber, the second fiber, both the first and second fibers are surface crosslinked with up to about 10,000 ppm of a surface crosslinking agent.
- 47. The fiber of claim 42 wherein the fiber is surface crosslinked with up to about 10,000 ppm of a surface crosslinking agent.
- 48. An article comprising a core containing a superabsorbent polymer, said core comprising about 1% to 100% by weight of a multicomponent superabsorbent fiber of claim 42.
- 49. A method of absorbing an aqueous medium comprising contacting the medium with a plurality of fibers of claim 42.
- 50. The method of claim 49 wherein the aqueous medium contains electroytes.
- 51. A multicomponent superabsorbent fiber comprising:
(a) a plurality of first fibers comprising an acidic resin, and (b) a plurality of second fibers comprising a basic resin, wherein the first and second fibers are admixed, then formed into the shape of a mat.
- 52. The fiber of claim 51 wherein the mat is annealed at a temperature of about 65° C. to about 150° C. for about 20 minutes to about 160 hours.
- 53. The fiber of claim 51 wherein the mat retains its structural integrity after hydration with a liquid medium.
- 54. An article comprising a core containing about 1% to 100% by weight of a multicomponent superabsorbent fiber of claim 51.
- 55. A method of manufacturing a multicomponent superabsorbent fiber comprising a core comprising a poly(vinylamine) surrounded by a sheath comprising a poly(acrylic acid), said method comprising:
(a) forming an aqueous solution comprising an uncrosslinked poly(vinylamine) and about 0.001 mol % to about 0.1 mol % of a crosslinking agent, (b) heating the aqueous solution of step (a) to lightly crosslink the uncrosslinked polyvinylamine and form a spinning dope, (c) introducing the spinning dope of step (b) into a coagulation bath containing about 0.1% to about 2% by weight of a crosslinking agent dissolved in a nonsolvent for poly(vinylamine) to form a filament of crosslinked poly(vinylamine), (d) directing the crosslinked poly(vinylamine) filament of step (c) from the coagulation bath to a bath comprising poly(acrylic acid), about 0.5 to about 5% by weight of a crosslinking agent, and a solvent, (e) passing the crosslinked poly(vinylamine) through the bath of step (d) to form a sheath of poly(acrylic acid) over the crosslinked poly(vinylamine) filament, (f) directing the filament from step (e) to a doping bath containing a curing catalyst, and (g) curing the filament from step (f) to provide the multicomponent superabsorbent fiber.
- 56. The method of claim 55 wherein the crosslinked poly(vinylamine) dried after step (c) and prior to step (d).
- 57. The method of claim 55 wherein the filament formed in step (e) is dried prior to step (f).
- 58. The method of claim 55 wherein the crosslinking agent in step (a) comprising ethylene glycol diglycidyl ether.
- 59. The method of claim 55 wherein the crosslinking agent in step (c) comprising ethylene glycol diglycidyl ether.
- 60. The method of claim 55 wherein the crosslinking agent in step (d) comprising ethylene glycol diglycidyl ether.
- 61. The method of claim 55 wherein the curing catalyst of step (f) comprises triethylamine.
- 62. The method of claim 55 wherein the filament of step (f) is cured in step (g) by heating for about 10 to about 60 minutes at about 60° C. to about 150° C.
- 63. A method of manufacturing a multicomponent superabsorbent comprising a mixed bed of fibers of an acidic resin and fibers of a basic resin, said method comprising:
(a) admixing a plurality of acidic resin fibers and a plurality of basic resin fibers to form a fiber mixture; (b) forming the fiber mixture into a mixed bed of a predetermined shape and thickness; and (c) annealing the mixed bed at a temperature of about 65° C. to about 150° C. for about 20 minutes to about 16 hours.
- 64. The method of claim 63 wherein the fiber mixture is formed into the shape of a diaper core.
- 65. The fiber of claim 1 wherein the fiber retains its structural integrity after hydration with a liquid medium.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This is a continuation-in-part application of U.S. patent application Ser. No. 09/179,553, filed Oct. 28, 1998, pending, which is a continuation-in-part of U.S. patent application Ser. No. 09/120,674, filed Jul. 22, 1998, pending, which is a continuation-in-part of U.S. patent application Ser. No. 08/974,125, filed Nov. 19, 1997, pending.
Divisions (1)
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Number |
Date |
Country |
| Parent |
09273878 |
Mar 1999 |
US |
| Child |
09860095 |
May 2001 |
US |
Continuation in Parts (3)
|
Number |
Date |
Country |
| Parent |
09179553 |
Oct 1998 |
US |
| Child |
09273878 |
Mar 1999 |
US |
| Parent |
09120674 |
Jul 1998 |
US |
| Child |
09179553 |
Oct 1998 |
US |
| Parent |
08974125 |
Nov 1997 |
US |
| Child |
09120674 |
Jul 1998 |
US |