Claims
- 1. A particulate adsorbent comprising particles which consist essentially of:
(a) at least one core consisting essentially of a transition metal-containing component selected from the group consisting of superparamagnetic materials, low Curie Temperature materials, and mixtures thereof, and (b) a siliceous oxide coating on the surface of said core(s), wherein said coating covers the entire surface of said core(s) such that said adsorbent particles have a transition metal leach value when present as 0.33 g dried adsorbent particles in 20 ml of 1N hydrochloric acid aqueous solution for 15 minutes of less than about 50 ppm metal based on the weight of said solution.
- 2. The adsorbent of claim 1 wherein said transition metal is selected from Group VIII transition metals and mixtures thereof.
- 3. The adsorbent of claim 2 wherein said transition metal-containing component is selected from the group consisting of iron, iron oxides, and mixtures thereof.
- 4. The adsorbent of claim 3 wherein said transition metal-containing component consists essentially of magnetite.
- 5. The adsorbent of claim 1 wherein said siliceous oxide coating contains hydroxyl groups on its outer surface.
- 6. The adsorbent of claim 5 wherein said siliceous oxide coating consists essentially of silica.
- 7. The adsorbent of claim 1 wherein said siliceous oxide coating contains externally accessible porosity.
- 8. The adsorbent of claim 7 wherein said particles contain at least about 0.2 ml/g pore volume measured by nitrogen BET method based on the total dry weight of said particles.
- 9. The adsorbent of claim 1 wherein said particles have a surface area of at least about 30 m2/g measured by nitrogen BET method based on the total dry weight of said particles.
- 10. The adsorbent of claim 1 wherein said core forms at least about 50 wt. % of said particles based on the combined dry basis weight of said core and said oxide coating.
- 11. The adsorbent of claim 10 wherein said core forms at least about 60 wt. % of said particles based on the combined dry basis weight of said core and said oxide coating.
- 12. The adsorbent of claim 1 wherein said core comprises one or more crystals having a crystal size of about 100 nm or less.
- 13. The adsorbent of claim 12 wherein said crystal(s) have an average crystal size of about 60 nm or less.
- 14. The adsorbent of claim 1 wherein said adsorbent particles have an average particle size of about 1-15 μm.
- 15. The adsorbent of claim 14 wherein said adsorbent particles have an average particle size of about 3-10 μm.
- 16. The adsorbent of claim 1 wherein said core is a superparamagnetic material at room temperature.
- 17. The adsorbent of claim 8 wherein said particles contain at least about 0.2 ml/g porosity in pores having a diameter of 60 nm or greater as measured by nitrogen BET method.
- 18. The adsorbent of claim 16 wherein said superparamagnetic material has a remanent magnetism level of about 10 emu/g or less.
- 19. The adsorbent of claim 1 wherein said core(s) consists essentially of a material having a Curie Temperature of about −50° C. to 100° C.
- 20. A method of making adsorbent particles wherein said particles comprise (a) one or more cores consisting essentially of a transition metal-containing component selected from the group consisting of superparamagnetic materials, low Curie Temperature materials and mixtures thereof, and (b) a siliceous oxide coating on the surface of said core(s), said method comprising:
(i) forming an aqueous slurry of said cores, (ii) adding a siliceous oxide precursor to said slurry, (iii) adding an aqueous acid solution to said slurry whereby the pH of said slurry is reduced to about 6-9, and (iv) recovering said adsorbent particles from said slurry resulting from step (iii).
- 21. The method of claim 20 wherein said slurry is aged for at least about 15 minutes between steps (iii) and (iv).
- 22. The method of claim 20 wherein step (i) comprises precipitating said cores in an aqueous medium.
- 23. The method of claim 22 wherein steps (ii) and (iii) are conducted at a temperature of about 60 - 95° C.
- 24. The method of claim 20 further comprising:
(v) washing said recovered particles with water, and (vi) further washing said recovered particles with a dilute ammonium chloride solution.
- 23. The method of claim 20 wherein said siliceous oxide source comprises an aqueous solution of alkali metal silicate.
- 24. The method of claim 20 wherein said acid comprises a mineral acid.
- 25. The method of claim 20 wherein said cores consist essentially of magnetite.
- 26. The method of claim 20 wherein steps (ii) and (iii) are conducted simultaneously.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] Reference is made to concurrently filed U.S. patent application Ser. No. ______, entitled “Methods of Isolating Biological Target Materials Using Silica Magnetic Particles”, the disclosure of which is incorporated herein by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
08786600 |
Jan 1997 |
US |
Child |
09756149 |
Jan 2001 |
US |