Claims
- 1. Apparatus comprising:
(a) a substrate containing a microchannel; and (b) a multilayer bound to the interior of the microchannel; wherein:
(i) said multilayer comprises a layered mixture of positively charged polymer molecules and negatively charged polymer molecules; and (ii) at least some of said charged polymer molecules comprise charged polymerized micelles.
- 2. Apparatus as recited in claim 1, wherein said substrate comprises a fused silica capillary having an internal diameter between about 5 μm and about 200 μm.
- 3. Apparatus as recited in claim 1, wherein:
(a) said multilayer comprises n layers, wherein n is an integer greater than or equal to 2; (b) said layers alternate between a layer comprising positively charged polymer molecules, and a layer comprising negatively charged polymer molecules, wherein said positively charged and negatively charged layers bind to one another electrostatically; (c) the charge of polymer molecules of the first said layer is opposite to the surface charge on the interior of said microchannel; and (d) the n-th layer comprises charged polymerized micelles.
- 4. Apparatus as recited in claim 1, wherein at least some of said polymerized micelles are chiral.
- 5. Apparatus as recited in claim 4, wherein at least one polymeric layer within said multilayer was deposited on the interior of the microchannel from a solution comprising an ionic liquid, wherein the solution was substantially free of sodium chloride.
- 6. Apparatus as recited in claim 1, wherein at least some of said positively charged polymer molecules are selected from the group consisting of polymers containing a quaternary ammonium group, poly (diallyidimethylammonium chloride), poly (vinylbenzyltrimethyl ammonium chloride), ionenes, cationic polyacrylamides, poly (acryloxyethyltrimethyl ammonium chloride), poly (methacryloxy(2-hydroxy)propyltrimethyl ammonium chloride), polymers containing a pyridinium group, poly (N-methylvinylpyridine), poly (N-alkylvinylpyridines), protonated polyamines, poly (allylaminehydrochloride), polyethylenimine polybrene, corresponding salts, and corresponding copolymers.
- 7. Apparatus as recited in claim 1, wherein said positively charged polymer molecules comprise poly (diallyidimethylammonium chloride).
- 8. Apparatus as recited in claim 1, wherein at least some of said negatively charged polymer molecules are selected from the group consisting of polyelectrolytes containing a sulfonate group, poly (styrenesulfonic acid), poly (2-acrylamido-2-methyl-1-propane sulfonic acid), sulfonated poly (ether ether ketone), sulfonated lignin, poly (ethylenesulfonic acid), poly (methacryloxyethylsulfonic acid), polycarboxylates, poly (acrylic acid), poly (methacrylic acid), carrageenan, dextran sulfate, corresponding salts, and corresponding copolymers.
- 9. Apparatus as recited in claim 1, wherein at least some of said micelles are selected from the group consisting of poly (sodium N-undecylenic sulfate), poly (sodium N-undecylenyl-L-glycinate), poly (sodium N-undecylenyl-L-leucine-L-valinate), poly (sodium N-undecylenyl-L-valinate), poly (sodium N-undecylenyl-L-leucine-L-alininate), and poly (sodium N-undecylenyl-L-glycine-L-leucinate).
- 10. Apparatus comprising:
(a) a substrate containing a microchannel; and (b) at least one layer bound to the interior of the microchannel, wherein said layer comprises at least one polyelectrolytic, zwitterionic polymer.
- 11. Apparatus as recited in claim 10, wherein said substrate comprises a fused silica capillary having an internal diameter between about 5 μm and about 200 μm.
- 12. Apparatus as recited in claim 10, wherein said polymer comprises poly (3-dimethyl methacryloyloxyethyl ammonium propane sulfonate).
- 13. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 1, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 14. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 2, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 15. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 3, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 16. A process for separating two enantiomers, said process comprising transporting the enantiomers through an apparatus as recited in claim 4, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two enantiomers; and wherein the different affinities cause the two enantiomers to move through the apparatus at different speeds; whereby the two enantiomers become separated from one another.
- 17. A process for separating two enantiomers, said process comprising transporting the enantiomers through an apparatus as recited in claim 5, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two enantiomers; and wherein the different affinities cause the two enantiomers to move through the apparatus at different speeds; whereby the two enantiomers become separated from one another.
- 18. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 6, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 19. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 7, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 20. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 8, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 21. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 9, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 22. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 10, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said zwitterionic layer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 23. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 11, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said zwitterionic layer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 24. A process for separating two compounds, said process comprising transporting the compounds through an apparatus as recited in claim 12, by applying a voltage across said microchannel under conditions conducive to capillary electrochromatography; wherein said zwitterionic layer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 25. A composition comprising:
(a) beads of a size and shape suitable for use in chromatographic separations; and (b) a multilayer bound to the surface of the beads; wherein:
(i) said multilayer comprises a layered mixture of positively charged polymer molecules and negatively charged polymer molecules; and (ii) at least some of said charged polymer molecules comprise charged polymerized micelles.
- 26. A composition as recited in claim 25, wherein said beads comprise silica.
- 27. A composition as recited in claim 25, wherein:
(a) said multilayer comprises n layers, wherein n is an integer greater than or equal to 2; (b) said layers alternate between a layer comprising positively charged polymer molecules, and a layer comprising negatively charged polymer molecules, wherein said positively charged and negatively charged layers bind to one another electrostatically; (c) the charge of polymer molecules of the first said layer is opposite to the surface charge on the surface of said beads; and (d) the n-th layer comprises charged polymerized micelles.
- 28. A composition as recited in claim 25, wherein at least some of said polymerized micelles are chiral.
- 29. A composition as recited in claim 25, wherein at least some of said positively charged polymer molecules are selected from the group consisting of polymers containing a quaternary ammonium group, poly (diallyldimethylammonium chloride), poly (vinylbenzyltrimethyl ammonium chloride), ionenes, cationic polyacrylamides, poly (acryloxyethyltrimethyl ammonium chloride), poly(methacryloxy(2-hydroxy)propyltrimethyl ammonium chloride), polymers containing a pyridinium group, poly (N-methylvinylpyridine), poly (N-alkylvinylpyridines), protonated polyamines, poly (allylaminehydrochloride), polyethylenimine polybrene, corresponding salts, and corresponding copolymers.
- 30. A composition as recited in claim 25, wherein at least some of said negatively charged polymer molecules are selected from the group consisting of polyelectrolytes containing a sulfonate group, poly (styrenesulfonic acid), poly (2-acrylamido-2-methyl-1-propane sulfonic acid), sulfonated poly (ether ether ketone), sulfonated lignin, poly (ethylenesulfonic acid), poly (methacryloxyethylsulfonic acid), polycarboxylates, poly (acrylic acid), poly (methacrylic acid), carrageenan, dextran sulfate, corresponding salts, and corresponding copolymers.
- 31. A composition as recited in claim 25, wherein at least some of said micelles are selected from the group consisting of poly (sodium N-undecylenic sulfate), poly (sodium N-undecylenyl-L-glycinate), poly (sodium N-undecylenyl-L-leucine-L-valinate), poly (sodium N-undecylenyl-L-valinate), poly (sodium N-undecylenyl-L-leucine-L-alininate), and poly (sodium N-undecylenyl-L-glycine-L-leucinate).
- 32. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 25; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 33. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 26; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 34. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 27; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 35. A process for separating two enantiomers, said process comprising transporting the enantiomers through a column packed with a composition as recited in claim 28; wherein said multilayer has different affinities for the two enantiomers; and wherein the different affinities cause the two enantiomers to move through the apparatus at different speeds; whereby the two enantiomers become separated from one another.
- 36. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 29; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 37. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 30; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
- 38. A process for separating two compounds, said process comprising transporting the compounds through a column packed with a composition as recited in claim 31; wherein said multilayer has different affinities for the two compounds; and wherein the different affinities cause the two compounds to move through the apparatus at different speeds; whereby the two compounds become separated from one another.
Government Interests
[0001] The development of this invention was partially funded by the Government under grant number NIGMS/NIH-2 R01 GM39844-11 awarded by the National Institutes of Health; and under grant number CHE-9632916 awarded by the National Science Foundation. The Government has certain rights in this invention.