IP Library Patent Application 12451914
Patent Application
App. No. 12/451,914

SILICA PARTICLES AND METHODS OF MAKING AND USING THE SAME

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Quick Facts
Patent No.
US None
App. No.
12/451,914
Abstract

Silica particles and compositions containing silica particles are disclosed. Methods of making silica particles and methods of using silica particles are also disclosed.

Claims (39)

1 . A porous silica particle comprising (i) an interior portion having a first elastic modulus, and (ii) a particle outer surface portion having a second elastic modulus, wherein the first elastic modulus is greater than the second elastic modulus.

2 . The porous silica particle of claim 1 , wherein the particle has an elastic modulus gradient with a maximum elastic modulus in an interior of the particle and a minimum elastic modulus proximate to or on an outer surface of the particle.

3 . The porous silica particle of claim 1 , wherein the particle has a first pore density in an interior of the particle and a second pore density proximate to or on an outer surface of the particle, the second pore density being greater than the first pore density.

4 . The porous silica particle of claim 1 , wherein the particle is substantially spherical.

5 . The porous silica particle of claim 1 , wherein the particle has an average largest particle dimension of less than about 100 μm, a pore volume of from about 0.40 cc/g to about 1.4 cc/g, an average pore diameter of from about 40 Å to about 700 Å, and a surface area of from about 200 m 2 /g to about 450 m 2 /g.

6 . The porous silica particle of claim 1 , wherein the particle has an average largest particle dimension of from about 3 to about 20 μm, a pore volume of from about 0.75 cc/g to about 1.1 cc/g, an average pore diameter of from about 90 Å to about 150 Å, and a surface area of about 260 m 2 /g to about 370 m 2 /g.

7 . The porous silica particle of claim 6 , wherein the particle has a pore volume of about 0.95 cc/g, and a surface area of about 320 m 2 /g.

8 . The porous silica particle of claim 1 , wherein the particle has an average largest particle dimension of from about 3 μm to about 20 μm.

9 . A plurality of silica particles comprising at least one porous silica particle of claim 1 .

10 . A media for use in a chromatography column comprising at least porous one silica particle of claim 1 .

11 . A chromatography column in combination with at least one porous silica particle of claim 1 .

12 . The chromatography column of claim 11 , wherein the at least one porous silica particle is positioned within the column.

13 . A method of using a chromatography column, said method comprising the steps of:

processing a fluid through the chromatography column of claim 12 .

14 . A method of making silica particles, said method comprising the steps of:

partially hydrolyzing an organosilicate so as to form a partially hydrolyzed material;

distilling the partially hydrolyzed material to remove any ethyl alcohol and to form distilled partially hydrolyzed material;

emulsifying the distilled partially hydrolyzed material in a polar continuous phase so as to form droplets of partially hydrolyzed silicates in the polar continuous phase;

gelling the droplets via a condensation reaction with ammonium hydroxide so as to form spherical, porous particles;

washing the spherical, porous particles;

hydrothermally aging the spherical, porous particles; and

drying the spherical, porous particles to form dried porous particles.

15 . The method of claim 14 , further comprising separating silica particles having a first particle size from silica particles that do not having the first particle size.

16 . The method of claim 15 , wherein the first particle size ranges from about 3 μm to about 20 μm.

17 . A method of making a chromatography column, said method comprising the steps of:

incorporating at least one silica particle formed by the method of claim 14 into the chromatography column.

18 . A method of using a chromatography column, said method comprising the steps of:

processing a fluid through a chromatography column containing at least one silica particle formed by the method of claim 14 .

19 . The method of claim 18 , wherein the fluid comprises a peptide.

20 . Silica particles formed by the method of claim 14 .

21 . A porous silica particle comprising a plastic deformation of at least about 100 MPa.

22 . A porous silica particle according to claim 21 , wherein said plastic deformation is at least about 200 MPa.

23 . A porous silica particle according to claim 21 , wherein said plastic deformation is at least about 300 MPa.

24 . A porous silica particle according to claim 21 , wherein said plastic deformation is at least about 400 MPa.

25 . A porous silica particle comprising a surface elastic deformation of less than 4 GPa.

26 . A porous silica particle according to claim 25 , wherein said elastic deformation is less than about 3 GPa.

27 . A porous silica particle according to claim 25 , wherein said elastic deformation is less than about 2 GPa.

28 . A porous silica particle according to claim 25 , wherein said elastic deformation is less than about 1 GPa.

29 . A porous silica particle comprising a plastic deformation of at least about 100 MPa and an elastic deformation of less than about 4 GPa.

Assignments (2)
RELEASE OF SECURITY AGREEMENT RECORDED AT REEL/FRAME NO.: 032157/0264 Recorded Apr 3, 2018
From: GOLDMAN SACHS BANK USA, AS THE COLLATERAL AGENT
To: ALLTECH ASSOCIATES, INC.
Reel/Frame 045832/0804 →
SECURITY AGREEMENT Recorded Feb 4, 2014
From: ALLTECH ASSOCIATES, INC.
To: GOLDMAN SACHS BANK USA, AS THE COLLATERAL AGENT
Reel/Frame 032157/0264 →