Claims
- 1. Crosslinked polymer particles, wherein the particles are between 0.1 and 200 microns in diameter and have a network mesh size between about 10 and about 500 Angstroms.
- 2. The particles of claim 1, wherein the polymer is selected from the group consisting of: vinyl acetates, vinyl pyrrolidones, vinyl ethers, olefins, styrenes, vinyl chlorides, ethylenes, acrylates, methacrylates, nitriles, acrylamides, maleates, epoxies, epoxides, lactones, ethylene oxides, ethylene glycols, ethyloxazolines, amino acids, saccharides, proteins, anhydrides, amides, carbonates, phenylene oxides, acetals, sulfones, phenylene sulfides, esters, fluoropolymers, imides, amide-imides, etherimides, ionomers, aryletherketones, amines, phenols, acids, benzenes, cinnamates, azoles, silanes, chlorides, and epoxides.
- 3. The particles of claim 1, wherein the polymer comprises a plurality of converted carbon-carbon double bond functional groups.
- 4. The particles of claim 3, wherein the conversion of the carbon-carbon double bonds is between about 20% and about 100%.
- 5. The particles of claim 3, wherein the conversion of the carbon-carbon double bonds is between about 70% and about 100%.
- 6. The particles of claim 1, wherein the polymer comprises a plurality of converted acrylate groups.
- 7. The particles of claim 1, wherein the polymer is poly(ethylene glycol) (PEG) diacrylate.
- 8. The particles of claim 1, wherein the polymer comprises a plurality of converted methacrylate groups.
- 9. The particles of claim 1, wherein the polymer is methacrlyated sebacic anhydride (MSA)
- 10. The particles of claim 1, wherein the polymer is a copolymer.
- 11. The particles of claim 1, wherein the polymer is a copoly(PEG-b-D,L PLA) diacrylate.
- 12. The particles of claim 1, wherein the polymer is biodegradable.
- 13. The particles of claim 1, wherein the particles comprise less than about 1% of residual solvent.
- 14. The particles of claim 1, wherein the polymer is a functionalized polymer having at least one unreacted reactive group comprising a carbon-carbon double bond.
- 15. The particles of claim 3, wherein the reactive group is selected from the group consisting of acrylates, methacrylates, alkenes and alkynes.
- 16. Crosslinked polymer particles wherein the particles are between 0.1 and 200 microns in diameter, the polymer comprises a plurality of converted carbon-carbon double bond functional groups, and the conversion of the carbon-carbon double bonds is between about 20% and about 100%.
- 17. Crosslinked polymer particles wherein a bioactive material is encapsulated within the polymer.
- 18. The particles of claim 17 wherein the encapsulation efficiency of the bioactive material is above about 60%.
- 19. The particles of claim 17 wherein the polymer comprises a plurality of converted acrylate groups.
- 20. The particles of claim 17 wherein the polymer comprises a plurality of converted methacrylate groups.
- 21. The particles of claim 17 wherein the polymer is selected from the group consisting of: poly(ethylene glycol) (PEG) diacrylate, methacrylated sebacic anhydride (MLA), and copoly(PEG-b-D,L-PLA) diacrylate.
- 22. The particles of claim 17 wherein the bioactive material has a molecular weight less than about 1000 Da.
- 23. The particles of claim 17 wherein the bioactive material is selected from the group consisting of: tacrine, erythromycin, erythromycin estolate, and erythromycin ethylsuccinate.
- 24. A method for making crosslinked polymer particles with a desired double bond conversion amount comprising the steps of:
exposing a composition comprising a polymer precursor, a non-aqueous solvent or solvent mixture, and an antisolvent or antisolvent mixture to photoradiation under conditions whereby crosslinked particles of the desired conversion amount are formed, wherein the antisolvent is a supercritical or near supercritical fluid in which the polymer precursor is not substantially soluble.
- 25. A method for making crosslinked polymer particles having a desired network mesh size comprising the steps of:
selecting a polymer precursor; determining a double bond conversion amount which corresponds to the desired network mesh size for the polymer; exposing a composition comprising the polymer precursor, a non-aqueous solvent or solvent mixture, and an antisolvent or antisolvent mixture to photoradiation under conditions whereby crosslinked particles having the double bond conversion amount are formed, wherein the antisolvent is a supercritical or near supercritical fluid in which the polymer precursor is not substantially soluble and whereby the crosslinked particles have the desired network mesh size.
- 26. The method of claim 24, wherein the double bond conversion amount is between about 70% and 100%.
- 27. The method of claim 25, wherein the network mesh size is between about 10 and about 500 Angstroms.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application takes priority from U.S. provisional Patent Application No. 60/110,816, filed Nov. 30, 1998, and U.S. patent application Ser. No. 09/451,481, filed Nov. 30, 1999, now allowed, which are hereby incorporated in their entirety by reference to the extent not inconsistent with the disclosure herein.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] This invention was made with government support by the National Institutes of Health under grant number 5 RO1 HL59400 and the National Science Foundation. The federal government may have certain rights in this invention.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60110816 |
Nov 1998 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09451481 |
Nov 1999 |
US |
| Child |
10161544 |
Jun 2002 |
US |