Claims
- 1. A method of providing for a range of sorbent masses within a solid phase extraction device comprising:
providing an solid phase extraction device comprising a reservoir with an opening for receiving fluids; a well comprising an internally tapered wall, the well having a wider interior diameter at a first end closest to the reservoir than at a second end close to an exit spout, the well for conducting an extraction; an exit spout at the second end of the well for discharging fluids; a first filter press sealed between the internally tapered walls of the well for retaining insoluble components of the fluids; a second filter having a smaller diameter than the first filter press-sealed between the internally tapered walls of the well spaced apart and toward the exit spout from the first filter; a quantity of sorbent particles partial filing the volume in the well between the first and second filters; and a void volume between the quantity of sorbent particles and the first filter for separating the quantity of sorbent particles from the first filter; and adjusting the filter diameters whereby the filters settle in different positions within the tapered well.
- 2. The method of providing for a range of sorbent masses within a solid phase extraction device as in claim 1 further comprising:
the reservoir and well in a multi-well array.
- 3. A method of separating a target substance from interfering components in a sample medium comprising:
providing an solid phase extraction device (SPE) comprising a reservoir with an opening for receiving fluids; a well comprising an internally tapered wall, the well having a wider interior diameter at a first end closest to the reservoir than at a second end close to an exit spout, the well for conducting an extraction; an exit spout at the second end of the well for discharging fluids; a first filter press sealed between the internally tapered walls of the well for retaining insoluble components of the fluids; a second filter having a smaller diameter than the first filter press-sealed between the internally tapered walls of the well spaced apart and toward the exit spout from the first filter; a quantity of sorbent particles partial filing the volume in the well between the first and second filters; and a void volume between the quantity of sorbent particles and the first filter for separating the quantity of sorbent particles from the first filter; and substantially isolating a target substance using the solid phase extraction device.
- 4. The method according to claim 3 wherein:
the mass of sorbent particles is less than 5 milligrams.
- 5. The method according to claim 3 wherein the isolating step comprises the steps of:
conditioning the SPE device with an organic solvent; equilibrating the SPE device with an aqueous solution; adding a prepared sample containing the target substances and interfering components to the SPE device; washing the SPE device with an aqueous-organic solution to remove interfering components; and eluting the adsorbed target substances.
- 6. The method according to claim 5 wherein:
the target substance is substantially eluted in less than 50 μL volume.
- 7. The method according to claim 5 further comprising:
diluting the eluted target substances by passing a diluent through the solid phase extraction device.
- 8. The method according to claim 3 where the sample medium is blood plasma, urine or serum.
- 9. The method according to of claim 3 where the target substance comprises at least one polar compound, non-polar compound, acidic compound, neutral compound, biopolymer, basic compounds, and mixtures thereof.
- 10. The method of claim 3 where greater than 80% of each absorbed target substances is isolated in at most 50 μL volume.
- 11. The method according to claim 3 wherein the sorbent particles comprise an ion exchange sorbent; a reversed phase sorbent; or a normal phase sorbent.
- 12. A method of separating a target substance from interfering components in a sample medium as in claim 3 further comprising:
the reservoir and well in a multi-well array.
- 13. A method of making an extraction device comprising:
providing a housing having a reservoir with an opening for receiving fluids and a well having a wall that tapers at an included angle of between 1 and 30° with an exit spout at a narrow end of the well and an opening at a wide end of the well, the well including a lower diameter of an inverted conical frustum that provides a specified aspect ratio when a selected volume of sorbent particles are placed in the well at that lower diameter; placing a smaller spherical filter with a diameter equal to the lower diameter in the well; placing the selected volume of sorbent particles in the well; and placing a larger spherical filter, with a diameter sufficiently large to position it above a void volume above the volume of sorbent particles, in the well.
- 14. The method of claim 13 wherein after the smaller spherical filter is placed in the well, it is pressed in place.
- 15. The method of claim 13 wherein after the larger spherical filter is placed in the well, it is pressed in place.
- 16. The method of claim 13 wherein the volume of sorbent particles is placed in the well by pouring a slurry containing the volume of sorbent particles into the well and allowing the liquid to exit through the exit spout.
- 17. The method of claim 13 wherein the filters are placed in the well by dropping them into the well and allowing them to find a seating point.
- 18. A method of making an extraction device comprising:
providing a housing having a reservoir with an opening for receiving fluids and a well having a wall that tapers at an included angle of between 1 and 30° with an exit spout at a narrow end of the well and an opening at a wide end of the well, the well including the lower diameter of an inverted conical frustum that provides a specified aspect ratio when a selected volume of sorbent particles are placed in the well at that lower diameter; press sealing a spherical filter with a diameter equal to the lower diameter in the well; placing the volume of sorbent particles in the well; and press sealing a second spherical filter, with a diameter sufficiently large to position it above a void volume above the volume of sorbent particles, in the well.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of application Ser. No. 10/100,762 filed Mar. 19, 2002, now pending. The contents of the aforementioned application are hereby expressly incorporated herein by reference in their entirety.
Divisions (1)
|
Number |
Date |
Country |
Parent |
10100762 |
Mar 2002 |
US |
Child |
10785754 |
Feb 2004 |
US |