Claims
- 1. A porous inorganic/organic hybrid material, comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry.
- 2. A porous inorganic/organic hybrid material, comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry, wherein said particles have been surface modified with a surface modifier having the formula Za(R′)bSi—R, where Z=Cl, Br, I, C1-C5 alkoxy, dialkylamino or trifluoromethanesulfonate; a and b are each an integer from 0 to 3 provided that a+b=3; R′ is a C1-C6 straight, cyclic or branched alkyl group, and R is a functionalizing group.
- 3. The hybrid material of claim 1, wherein said particles have a specific surface area of about 50 to 800 m2/g.
- 4. The hybrid material of claim 1, wherein said particles have a specific surface area of about 75 to 600 m2/g.
- 5. The hybrid material of claim 1, wherein said particles have a specific surface area of about 100 to 200 m2/g.
- 6. The hybrid material of claim 1, wherein said particles have specific pore volumes of about 0.25 to 1.5 cm3/g.
- 7. The hybrid material of claim 1, wherein said particles have specific pore volumes of about 0.4 to 1.2 cm3/g.
- 8. The hybrid material of claim 1, wherein said particles have a micropore surface area of less than about 110 m2/g.
- 9. The hybrid material of claim 8, wherein said particles have a micropore surface area of less than about 105 m2/g.
- 10. The hybrid material of claim 8, wherein said particles have a micropore surface area of less than about 80 m2/g.
- 11. The hybrid material of claim 8, wherein said particles have a micropore surface area of less than about 50 m2/g.
- 12. The hybrid material of claim 1, wherein said particles have an average pore diameter of about 50 to 500 Å.
- 13. The hybrid material of claim 1, wherein said particles have an average pore diameter of about 100 to 300 Å.
- 14. The hybrid material of claim 1 wherein said particles have a specific surface area of about 50 to 800 m2/g, said particles have specific pore volumes of about 0.25 to 1.5 cm3/g, and said particles have an average pore diameter of about 50 to 500 Å.
- 15. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by coating with a polymer.
- 16. The hybrid material of claim 2 wherein R′ is selected from the group consisting of methyl, ethyl, propyl, isopropyl, butyl, t-butyl, sec-butyl, pentyl, isopentyl, hexyl and cyclohexyl.
- 17. The hybrid material of claim 2, wherein the functionalizing group R is selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, cyano, amino, diol, nitro, ester, a cation or anion exchange group, or an alkyl or aryl group containing an embedded polar functionality.
- 18. The hybrid material of claim 17, wherein said functionalizing group R is a C1-C30 alkyl group.
- 19. The hybrid material of claim 17, wherein said functionalizing group R is a C1-C20 alkyl group.
- 20. The hybrid material of claim 2, wherein said surface modifier is selected from the group consisting of octyltrichlorosilane, octadecyltrichlorosilane, octyldimethylchlorosilane, and octadecyldimethylchlorosilane.
- 21. The hybrid material of claim 20, wherein said surface modifier is selected from the group consisting of octyltrichlorosilane and octadecyltrichlorosilane.
- 22. The hybrid material of claim 1 or 2 having the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1.
- 23. The hybrid material of claim 22, wherein n is a number from 0.1 to 1
- 24. The hybrid material of claim 22 having average pore diameters of about 100 to 300 Å.
- 25. The hybrid material of claim 22 wherein n is a number from 0.2 to 0.5.
- 26. The hybrid material of claim 1 or 2 wherein said inorganic portion of said hybrid material is selected from the group consisting of alumina, silica, titanium or zirconium oxides, and ceramic materials.
- 27. The hybrid material of claim 1 or 2 wherein said inorganic portion of said hybrid material is silica.
- 28. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by a combination of organic group and silanol group modification.
- 29. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by a combination of organic group modification and coating with a polymer.
- 30. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by a combination of silanol group modification and coating with a polymer.
- 31. The hybrid material of claim 1 or 2, wherein said particles have been surface modified via formation of an organic covalent bond between the particle's organic group and the modifying reagent.
- 32. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by a combination of organic group modification, silanol group modification, and coating with a polymer.
- 33. The hybrid material of claim 1 or 2, wherein said particles have been surface modified by silanol group modification.
- 34. A method of preparation of porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry, comprising the steps of
a) forming porous inorganic/organic hybrid particles, b) modifying the pore structure of said porous particles.
- 35. The method of claim 34 wherein said particles have been surface modified by coating with a polymer.
- 36. The method of claim 34 wherein said particles have been surface modified by a combination of organic group and silanol group modification.
- 37. The method of claim 34 wherein said particles have been surface modified by a combination of organic group modification and coating with a polymer.
- 38. The method of claim 34 wherein said particles have been surface modified by a combination of silanol group modification and coating with a polymer.
- 39. The method of claim 34 wherein said particles have been surface modified by a combination of organic group modification, silanol group modification, and coating with a polymer.
- 40. The hybrid material of claim 34, wherein said particles have been surface modified by silanol group modification.
- 41. The method of claim 34 wherein said surface modification step includes formation of an organic covalent bond between the particle's organic group and the modifying reagent.
- 42. The method of claim 34 wherein said porous particles are prepared by prepolymerizing one or more organoalkoxysilanes and a tetraalkoxysilane to produce a polyorganoalkoxysiloxane, and preparing an aqueous suspension of said polyorganoalkoxysiloxane, and gelling in the presence of a base catalyst so as to produce said porous particles.
- 43. The method of claim 34 wherein said porous particles are prepared by prepolymerizing an organotrialkoxysilane and a tetraalkoxysilane to produce a polyalkyloxysiloxane, and preparing an aqueous suspension of said polyalkyloxysiloxane, and gelling in the presence of a base catalyst so as to produce said porous particles.
- 44. The method of claim 42 or 43 wherein said pore structure of said porous particles is modified by further including a surfactant in said suspension, and by subjecting said porous particles to hydrothermal treatment.
- 45. The method of claim 42 or 43 wherein said pore structure of said porous particles is modified by further including a surfactant or combination of different surfactants in said suspension, and by subjecting said porous particles to hydrothermal treatment.
- 46. The method of claim 45 wherein said surfactant or combination of surfactants are selected from the group consisting of Triton X-45, sodium dodecylsulfate, tris(hydroxymethyl)aminomethane, and any combination thereof.
- 47. The method of claim 34 wherein said method further comprises surface modifying said porous particles.
- 48. The method of claim 42 wherein said prepolymerization step comprises hydrolyzing and condensing a mixture of one or more organoalkoxysilanes and a tetraalkoxysilane in the presence of an acid catalyst to produce said polyalkyloxysiloxane.
- 49. The method of claim 43 wherein said prepolymerization step comprises hydrolyzing and condensing an mixture of an organotrialkoxysilane and a tetraalkoxysilane in the presence of an acid catalyst to produce said polyalkyloxysiloxane.
- 50. A method of preparation of porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry, comprising the steps of
a) forming porous inorganic/organic hybrid particles, b) modifying the pore structure of said porous particles, and c) surface modifying said particles, wherein said surface modification step includes surface modifying said porous particles with a surface modifier having the formula Za(R′)bSi—R, where Z=Cl, Br, I, C1-C5 alkoxy, dialkylamino or trifluoromethanesulfonate; a and b are each an integer from 0 to 3 provided that a+b=3; R′ is a C1-C6 straight, cyclic or branched alkyl group, and R is a functionalizing group.
- 51. The method of claim 50 wherein said particles have been surface modified by coating with a polymer.
- 52. The method of claim 50 wherein said particles have been surface modified by a combination of organic group and silanol group modification.
- 53. The method of claim 50 wherein said particles have been surface modified by a combination of organic group modification and coating with a polymer.
- 54. The method of claim 50 wherein said particles have been surface modified by a combination of silanol group modification and coating with a polymer.
- 55. The method of claim 50 wherein said particles have been surface modified by a combination of organic group modification, silanol group modification, and coating with a polymer.
- 56. The method of claim 50, wherein said particles have been surface modified by silanol group modification.
- 57. The method of claim 50 wherein said surface modification step includes formation of an organic covalent bond between the particle's organic group and the modifying reagent.
- 58. The method of claim 50 wherein R′ is selected from the group consisting of methyl, ethyl, propyl, isopropyl, butyl, t-butyl, sec-butyl, pentyl, isopentyl, hexyl and cyclohexyl.
- 59. The method of claim 50 wherein said functionalizing group R is a C1-C30 alkyl group.
- 60. The method of claim 50 wherein said functionalizing group R is a C1-C20 alkyl group.
- 61. The method of claim 50 wherein said surface modifier is selected from the group consisting of octyltrichlorosilane, octadecyltrichlorosilane, octyldimethylchlorosilane, and octadecyldimethylchlorosilane.
- 62. The method of claim 61 wherein said surface modifier is selected from the group consisting of octyltrichlorosilane and octadecyltrichlorosilane.
- 63. The method of claim 50, wherein said functionalizing group R is selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, cyano, amino, diol, nitro, ester, a cation or anion exchange group, or an alkyl or aryl group containing an embedded polar functionality.
- 64. The method of claim 50 wherein any free silanol groups remaining from said surface modification procedure are endcapped.
- 65. The method of claim 42 wherein the molar ratio of said organoalkoxysilane and tetraalkoxysilane is from about 0.5:1 to 0.2:1.
- 66. The method of claim 34 wherein said particles have a specific surface area of about 50 to 800 m2/g.
- 67. The method of claim 34 wherein said particles have a specific surface area of about 100 to 200 m2/g.
- 68. The method of claim 34 wherein said particles have specific pore volumes of about 0.25 to 1.5 cm3/g.
- 69. The method of claim 34 wherein said particles have specific pore volumes of about 0.4 to 1.2 cm3/g.
- 70. The method of claim 34 wherein said particles have an average pore diameter of about 50 to 500 Å.
- 71. The method of claim 34 wherein said particles have a micropore surface area of less than about 110 m2/g.
- 72. The method of claim 34 wherein said particles have an average pore diameter of about 100 to 300 Å.
- 73. The method of claim 34, wherein said particles have a specific surface area of about 50 to 800 m2/g, said particles have specific pore volumes of about 0.25 to 1.5 cm3/g, and said particles have an average pore diameter of about 50 to 500 Å.
- 74. The method of claim 34 wherein said suspension further comprises a porogen.
- 75. The method of claim 74 wherein said porogen is toluene.
- 76. The method of claim 42 wherein said tetaaalkoxysilane has the formula Si(OR1)4, where R1 is a C1-C3 alkyl moiety.
- 77. The method of claim 42 wherein said tetraalkoxysilane is selected from the group consisting of tetramethoxysilane and tetraethoxysilane.
- 78. The method of claim 42 wherein said organoalkoxysilane has the formula R2Si(OR1)3 or R6[Si(OR1)3]m where R2 is a C1-C18 aliphatic or aromatic moiety, R1 is a C1-C4 alkyl moiety, R6 is a C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, and m is an integer greater than or equal to two.
- 79. The method of claim 42 wherein said organotrialkoxysilane has the formula R2Si(OR1)3, where R2 is a C1-C18 aliphatic or aromatic moiety and R1 is a C1-C4 alkyl moiety.
- 80. The method of claim 42 wherein said base catalyst is free of alkali or alkaline earth metal cations.
- 81. The method of claim 80 wherein said base catalyst is ammonium hydroxide.
- 82. The method of claim 78 wherein R2 is methyl, ethyl, phenyl, vinyl, methacryloxypropyl, or styrylethyl and R1 is ethyl; or R6 is a bridging ethylene group, m=2, and R1 is ethyl or methyl.
- 83. The method of claim 34 wherein said porous inorganic/organic hybrid particles have the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1.
- 84. The method of claim 83, wherein n is a number from 0.1 to 1
- 85. The method of claim 83 wherein said porous inorganic/organic hybrid particles have average pore diameters of about 100 to 300 Å.
- 86. The method of claim 83 wherein n is a number from 0.2 to 0.5.
- 87. A separations device having a stationary phase comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry.
- 88. The separations device of claim 87, wherein said device is selected from the group consisting of chromatographic columns, thin layer plates, filtration membranes, sample cleanup devices, and microtiter plates.
- 89. The separations device of claim 87, wherein said particles have a specific surface area of about 100 to 200 m2/g.
- 90. The separations device of claim 87 wherein said particles have a micropore surface area of less than about 110 m2/g.
- 91. The separations device of claim 87, wherein said particles have specific pore volumes of about 0.4 to 1.2 cm3/g.
- 92. The separations device of claim 87, wherein said particles have a micropore surface area of less than about 105 m2/g.
- 93. The separations device of claim 87, wherein said particles have a micropore surface area of less than about 80 m2/g.
- 94. The separations device of claim 87, wherein said particles have a micropore surface area of less than about 50 m2/g.
- 95. The separations device of claim 87, wherein said particles have an average pore diameter of about 100 to 300 Å.
- 96. A separations device having a stationary phase comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry, wherein the particles have been surface modified with a surface modifier having the formula Za(R′)bSi—R, where Z=Cl, Br, I, C1-C5 alkoxy, dialkylamino or trifluoromethanesulfonate; a and b are each an integer from 0 to 3 provided that a+b=3; R′ is a C1-C6 straight, cyclic or branched alkyl group, and R is a functionalizing group.
- 97. The separations device of claim 96, wherein said surface modifier is selected from the group consisting of octyltrichlorosilane, octadecyltrichlorosilane, octyldimethylchlorosilane, and octadecyldimethylchlorosilane.
- 98. The separations device of claim 97, wherein said surface modifier is selected from the group consisting of octyltrichlorosilane and octadecyltrichlorosilane.
- 99. The separations device of claim 96, wherein said functionalizing group R is selected from the group consisting of alkyl, alkenyl, alkynyl, aryl, cyano, amino, diol, nitro, ester, a cation or anion exchange group, or an alkyl or aryl group containing an embedded polar functionality.
- 100. The separations device of claim 96, wherein said functionalizing group R is a C1-C30 alkyl group.
- 101. The separations device of claim 96, wherein said functionalizing group R is a C1-C20 alkyl group.
- 102. The separations device of claim 87, wherein said hybrid particles have the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1.
- 103. The separations device of claim 102, wherein n is a number from 0.1 to 1.
- 104. The separations device of claim 102, wherein said hybrid particles have average pore diameters of about 100 to 300 Å.
- 105. The method of claim 102 wherein n is a number from 0.2 to 0.5.
- 106. The separations device of claim 87 wherein said inorganic portion of said hybrid material is selected from the group consisting of alumina, silica, titanium or zirconium oxides, and ceramic materials.
- 107. The separations device of claim 87 wherein said inorganic portion of said hybrid material is silica.
- 108. A chromatographic column having improved lifetime, comprising
a) a column having a cylindrical interior for accepting a packing material, and b) a packed chromatographic bed comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry of the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1, said porous hybrid silica chromatographic matrix having a chromatographically-enhancing pore geometry and average pore diameters of about 100 to 300 Å, and said porous particles of hybrid silica have been surface modified.
- 109. The chromatographic column of claim 108, wherein n is a number from 0.1 to 1.
- 110. A chromatographic column having improved lifetime, comprising
a) a column having a cylindrical interior for accepting a packing material, and b) a packed chromatographic bed comprising porous inorganic/organic hybrid particles having a chromatographically-enhancing pore geometry that have been surface modified with a surface modifier having the formula Za(R′)bSi—R, where Z=Cl, Br, I, C1-C5 alkoxy, dialkylamino or trifluoromethanesulfonate; a and b are each an integer from 0 to 3 provided that a+b=3; R′ is a C1-C6 straight, cyclic or branched alkyl group, and R is a functionalizing group.
- 111. A method of preparation of porous particles of hybrid silica having a chromatographically-enhancing pore geometry, comprising the steps of
a) prepolymerizing a mixture of one or more organoalkoxysilanes and a tetraalkoxysilane in the presence of an acid catalyst to produce a polyorganoalkoxysiloxane; b) preparing an aqueous suspension of said polyorganoalkoxysiloxane, said suspension further comprising a surfactant or combination of surfactants, and gelling in the presence of a base catalyst so as to produce porous particles; and c) modifying the pore structure of said porous particles by hydrothermal treatment, thereby preparing porous particles of hybrid silica having a chromatographically-enhancing pore geometry.
- 112. The method of claim 111 wherein the molar ratio of said organotrialkoxysilane and tetraalkoxysilane is from about 0.5:1 to 0.2:1.
- 113. The method of claim 111 wherein said particles have a specific surface area of about 75 to 600 m2/g.
- 114. The method of claim 111 wherein said particles have a specific surface area of about 100 to 200 m2/g.
- 115. The method of claim 111 wherein said particles have a micropore surface area of less than about 110 m2/g.
- 116. The method of claim 111 wherein said particles have specific pore volumes of about 0.4 to 1.2 cm3/g.
- 117. The method of claim 111, wherein said particles have a micropore surface area of less than about 105 m2/g.
- 118. The method of claim 111, wherein said particles have a micropore surface area of less than about 80 m2/g.
- 119. The method of claim 111, wherein said particles have a micropore surface area of less than about 50 m2/g.
- 120. The method of claim 111 wherein said particles have an average pore diameter of about 50 to 500 Å.
- 121. The method of claim 111 wherein said particles have an average pore diameter of about 100 to 300 Å.
- 122. The method of claim 111 wherein said surfactant is an alkylphenoxypolyethoxyethanol.
- 123. The method of claim 111 wherein said suspension further comprises a porogen.
- 124. The method of claim 111 wherein said tetraalkoxysilane is selected from the group consisting of tetramethoxysilane and tetraethoxysilane.
- 125. The method of claim 111, wherein said hybrid silica particles have the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1.
- 126. The method of claim 125, wherein n is a number from 0.1 to 1.
- 127. The method of claim 125, wherein said hybrid silica particles have average pore diameters of about 100 to 300 Å.
- 128. The method of claim 125 wherein n is a number from 0.2 to 0.5.
- 129. Porous particles of hybrid silica having a chromatographically-enhancing pore geometry, produced by the process of
a) prepolymerizing a mixture of one or more organoalkoxysilanes and a tetraalkoxysilane in the presence of an acid catalyst to produce a polyalkyloxysiloxane; b) preparing an aqueous suspension of said polyalkyloxysiloxane, said suspension further comprising a surfactant or a combination of surfactants, and gelling in the presence of a base catalyst so as to produce porous particles; and c) modifying the pore structure of said porous particles by hydrothermal treatment, thereby producing porous particles of hybrid silica having a chromatographically-enhancing pore geometry.
- 130. The porous hybrid silica particles of claim 129 wherein the molar ratio of said organoalkoxysilane and tetraalkoxysilane is from about 0.5:1 to 0.2:1.
- 131. The porous hybrid silica particles of claim 129 wherein said particles have a specific surface area of about 75 to 600 m2/g.
- 132. The porous hybrid silica particles of claim 129 wherein said particles have a specific surface area of about 100 to 200 m2/g.
- 133. The porous hybrid silica particles of claim 129 wherein said particles have a micropore surface area of less than about 110 m2/g.
- 134. The porous hybrid silica particles of claim 129 wherein said particles have specific pore volumes of about 0.4 to 1.2 cm3/g.
- 135. The method of claim 129, wherein said particles have a micropore surface area of less than about 105 m2/g.
- 136. The method of claim 129, wherein said particles have a micropore surface area of less than about 80 m2/g.
- 137. The method of claim 129, wherein said particles have a micropore surface area of less than about 50 m2/g.
- 138. The porous hybrid silica particles of claim 129 wherein said particles have an average pore diameter of about 50 to 500 Å.
- 139. The porous hybrid silica particles of claim 129 wherein said particles have an average pore diameter of about 100 to 300 Å.
- 140. The porous hybrid silica particles of claim 129 wherein said surfactant is an alkylphenoxypolyethoxyethanol.
- 141. The porous hybrid silica particles of claim 129 wherein said suspension further comprises a porogen.
- 142. The porous hybrid silica particles of claim 129 wherein said tetraalkoxysilane is selected from the group consisting of tetramethoxysilane and tetraethoxysilane.
- 143. The porous hybrid silica particles of claim 129, having the formula SiO2/(R2pR4qSiOt)n or SiO2/[R6(R2rSiOt)m]n wherein R2 and R4 are independently C1-C18 aliphatic or aromatic moieties, R6 is a substituted or unsubstituted C1-C18 alkylene, alkenylene, alkynylene or arylene moiety bridging two or more silicon atoms, p and q are 0, 1 or 2, provided that p+q=1 or 2, and that when p+q=1, t=1.5, and when p+q=2, t=1; r is 0 or 1, provided that when r=0, t=1.5, and when r=1, t=1; m is an integer greater than or equal to 2, and n is a number from 0.03 to 1.
- 144. The porous hybrid silica particles of claim 143, wherein said hybrid silica particles have average pore diameters of about 100 to 300 Å.
- 145. The porous hybrid silica particles of claim 143 wherein n is a number from 0.2 to 0.5.
- 146. The porous hybrid silica particles of claim 143, wherein n is a number from 0.1 to 1.
Parent Case Info
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/858,087, filed May 14, 2001, which is a continuation of U.S. Ser. No. 09/244,795, filed Feb. 5, 1999, now abandoned. The disclosures of the aforementioned U.S. patent applications are expressly incorporated herein by reference in their entireties.
Divisions (1)
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Number |
Date |
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Parent |
09924399 |
Aug 2001 |
US |
Child |
10744598 |
Dec 2003 |
US |
Continuations (1)
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Number |
Date |
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Parent |
09244795 |
Feb 1999 |
US |
Child |
09858087 |
May 2001 |
US |
Continuation in Parts (1)
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Date |
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09858087 |
May 2001 |
US |
Child |
09924399 |
Aug 2001 |
US |