Claims
- 1. An extraction material for separating at least one transition metal ion species from iron (III) in a solution, said extraction material comprising a matrix-polyamine base and a pyridine functional group, said matrix-polyamine base comprising the reaction product of a polyamine with a short chain hydrocarbylsilyl formed from first silanizing a matrix surface by hydrating said surface and reacting said hydrated surface with a short chain trifunctional silane having (a) hydrocarbon substituents containing 1-6 carbon atoms, (b) trifunctional leaving groups providing sites for covalently bonding said hydrocarbylsilyl to said matrix surface through Si—O bonds, and (c) terminal leaving groups providing sites for covalently bonding said polyamine to said hydrocarbylsilyl through N-hydrocarbyl bonds; and secondly reacting said polyamine with said hydrocarbylsilyl formed from the silanization of said hydrated surface so as to form an aminohydrocarbyl polymer covalently bound to said matrix surface, said aminohydrocarbyl polymer having non-crosslinked amino groups multisite bound to said hydrocarbylsilyl.
- 2. The extraction material of claim 1, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents.
- 3. The extraction material of claim 1, wherein said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and triflate.
- 4. The extraction material of claim 1, wherein said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 5. The extraction material of claim 1, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents; said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and triflate; and said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 6. The extraction material of claim 5, wherein said silane is bromopropyltrichloro silane.
- 7. The extraction material of claim 5, wherein said silane is chlorpropyltrichloro silane.
- 8. The extraction material of claim 1, wherein polyamine is polyvinylamine.
- 9. The extraction material of claim 1, wherein said polyamine is polyethyleneimine.
- 10. The extraction material of claim 1, wherein said polyamine is polyallylamine.
- 11. The extraction material of claim 1, wherein said pyridine functional group is a pyridine alkylamine with an alkyl chain of about 1-4 carbons.
- 12. The extraction material of claim 1, wherein said pyridine functional group is a pyridine alkyl aldehyde with an alkyl chain about 1-4 carbons.
- 13. The extraction material of claim 1, wherein said pyridine functional group is 2-picolylamine.
- 14. The extraction material of claim 1, wherein said pyridine functional group is 2-pyridine carboximene.
- 15. The extraction material of claim 8, wherein said pyridine functional group is 2-picolylamine.
- 16. The extraction material of claim 8, wherein said pyridine functional group is 2-pyridine carboxmine.
- 17. The extraction material of claim 9, wherein said pyridine functional group is 2-picolyamine.
- 18. The extraction material of claim 9, wherein said pyridine functional group is 2-pyridine carboximiine.
- 19. The extraction material of claim 10, wherein said pyridine functional group is 2-picolyamine.
- 20. The extraction material of claim 10, wherein said pyridine functional group is 2-pyridine carboximine.
- 21. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyvinylamine and said pyridine functional group is 2-picolyamine.
- 22. The extraction material of claim 1, wherein said silane is chloropropyltrichloro silane, said polyamine is polyvinylamine and said pyridine functional group is 2-picolyamine.
- 23. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyvinylamine and said pyridine functional group is 2-pyridine carboxmine.
- 24. The extraction material of claim 1, wherein said silane is chloropropyltrichloro silane, said polyamine is polyvinylamine and said pyridine functional group is 2-pyridine carboximine.
- 25. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyethyleneimine and said pyridine functional group is 2-picolyamine.
- 26. The extraction material of claim 1, wherein said silane is chloropropyltrichloro silane, said polyamine is polyethyleneimine and said pyridine functional group is 2-picolyamine.
- 27. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyethyleneimine and said pyridine functional group is 2-pyridine carboximine.
- 29. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyallylamine and said pyridine functional group is 2-picolyamine.
- 30. The extraction material of claim 1, wherein said silane is chloropropyltrichloro silane, said polyamine is polyallylamine and said pyridine functional group is 2-picolyamine.
- 31. The extraction material of claim 1, wherein said silane is bromopropyltrichloro silane, said polyamine is polyallylamine and said pyridine functional group is 2-pyridine carboximine.
- 32. The extraction material of claim 1, wherein said silane is chloropropyltrichloro silane, said polyamine is polyallylamine and said pyridine functional group is 2-pyridine carboximine.
- 33. The extraction material of claim 1, wherein said at least one transition metal ion species is copper (II).
- 34. A method of making an extraction material for separating at least one transition metal ion species from iron (III) ions in a solution comprising the steps of:
a) providing a matrix having a surface that is silanizable; b) hydrating said surface of said matrix with a monolayer of water; c) silanizing said hydrated surface of said matrix with a silane having short chain hydrocarbyl substituents containing 1-6 carbon atoms and terminal leaving groups so as to hydrocarbylate said matrix surface, said terminal leaving groups providing sites for covalently bonding a polyamine to the hydrocarbylsilyil through N--hydrocarbyl bonds; d) reacting said polyamine with said hydrocarbylated matrix surface after silanization is complete to form an aminohydrocarbyl polymer covalently bound to the hydrocarbylated extraction material surface with said aminohydrocarbyl polymer having non-crosslinked amino groups multisite bound to said hydrocarbylsilyl; and e) reacting a pyridine functional group with said aminohydrocarbyl polymer.
- 35. The method of claim 34, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents.
- 36. The method of claim 34, wherein said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and triflate.
- 37. The method of claim 34, wherein said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 38. The method of claim 34, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents; said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and triflate; and said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 39. The method of claim 34, wherein said silane is bromopropyltrichioro silane.
- 40. The method of claim 34, wherein said silane is chloropropyltrichloro silane.
- 41. The method of claim 34, wherein said polyamine is polyvinylamine.
- 42. The method of claim 34, wherein said polyamine is polyethyleneimine.
- 43. The method of claim 34, wherein said polyamine is polyallylamine.
- 44. The method of claim 34, wherein said pyridine functional group is a pyridine ring, with an alkl chain of about 1-4 carbons with a terminal halogen selected from the group consisting of tosylate, mesylate, brosylate and tritlate.
- 45. The method of claim 34, wherein said pyridine functional group is a pyridine ling with an alkyl chain of about 1-4 carbons with a terminal aidehyde.
- 46. The method of claim 34, wherein said pyridine functional group is picolyichloride hydrochloride.
- 47. The method of claim 34, wherein said pyridine functional group is pyridine 2-carboxaldehyde.
- 48. The method of claim 41, wherein said pyridine functional group is picolylchloride hydrochloride.
- 49. The method of claim 41, wherein said pyridine functional group is pyridine 2-carboxaldehyde.
- 50. The method of claim 42, wherein said pyridine functional group is picolylchioride hydrochloride.
- 51. The method of claim 42, wherein said pyridine functional group is pyridine 2-carboximine.
- 52. The method of claim 43, wherein said pyridine functional group is picolychloride hydrochloride.
- 53. The method of claim 43, wherein said pyridine functional group is pyridine 2-carboxaldehyde.
- 54. The method of claim 34, wherein said at least one transition metal ion species is copper (II).
- 55. A process for separating at least one transition metal ion species from iron (III) ions in a solution comprising at least one transition metal ion species, iron (III) ions and chloride ions said process comprising the steps of:
a) applying said solution to an extraction material comprising a matrix-polyamine base and a pyridine functional group, said matrix-polyamine base comprising the reaction product of a polyamine with a short chain hydrocarbylsilyl formed from first silanizing a matrix surface by hydrating said surface and reacting said hydrated surface with a short chain trifunctional silane having (a) hydrocarbon substituents containing 1-6 carbon atoms, (b) trifunctional leaving groups providing sites for covalently bonding said hydrocarbylsilyl to the extraction material surface through Si—O bonds, and (c) terminal leaving groups providing sites for covalently bonding said polyamine to said hydrocarbylsilyl through-hydrocarbyl bonds; and secondly reacting said polyamine with said hydrocarbylsilyl formed from the silanization of said hydrated surface so as to form an aminohydrocarbyl polymer covalently bound to said matrix surface, said aminohydrocarbyl polymer having non-crosslinked amine groups multisite bound to said hydrocarbylsilyl, wherein said amino/imino pyridine functional group binds and selectively extracts said transition metal ions from said solution; b) purging said transition metal ions bound to said extraction material of cholide ions; and c) stripping said bound transition metal ions from said extraction material.
- 56. The process of claim 55, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents.
- 57. The process of claim 55, wherein said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and triflate.
- 58. The process of claim 55, wherein said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 59. The extraction material of claim 55, wherein said silane has trifunctional substituents selected from the group consisting of trichloro, trimethoxy and triethoxy substituents; said silane has terminal leaving group substituents selected from the group consisting of halogens, tosylate, mesylate, brosylate and trifiate; and said hydrocarbon substituents are short chain aliphatic hydrocarbons having 1-6 carbon atoms.
- 60. The process of claim 55, wherein said silane is bromopropyltrichloro silane.
- 61. The process of claim 55, wherein said silane is chloropropyltricholoro silane.
- 62. The process of claim 55, wherein said polyamine is polyvinylamine.
- 63. The process of claim 55, wherein said polyamine is polyethyleneimine.
- 64. The process of claim 55, wherein said polyamine is polyallylamine.
- 65. The process of claim 55, wherein said pyridine functional group is a pyridine alkylamine with an alkyl chain of about 1-4 carbons.
- 66. The process of claim 55, wherein said pyridine functional group is a pyridine alkyl aldehyde with an alkyl chain about 1-4 carbons.
- 67. The process of claim 55, wherein said pyridine functional group is 2-picolylamine.
- 68. The process of claim 55, wherein said pyridine functional group is 2-pyridine carboximene.
- 69. The process of claim 62, wherein said pyridine functional group is 2-picolylamine.
- 70. The process of claim 62, wherein said pyridine functional group is 2-pyridine carboxmine.
- 71. The process of claim 63, wherein said pyridine functional group is 2-picolylamine.
- 72. The process of claim 63, wherein said pyridine functional group is 2-pyridine carboximine.
- 73. The process of claim 64, wherein said pyridine functional group is 2-picolylamine.
- 74. The process of claim 64, wherein said pyridine functional group is 2-pyridine carboximine.
- 75. The process of claim 55, wherein said chloride ions are purged with a solution selected from the group consisting of saturated sodium sulfate and dilute sulfuric acid.
- 76. The process of claim 55, wherein said copper (II) ions are stripped from said extraction material with sulfuric acid.
- 77. The process of claim 55, wherein said extraction material is in a column.
- 78. The process of claim 55, wherein said at least one transition metal ion species is copper (II).
Government Interests
[0001] The subject invention was made with government support under a research project supported by the National Science Foundation Grant No. 9961006. The government has certain rights in this invention.