Claims
- 1. Method for solid-phase microextraction and analysis of substances in a carrier fluid, said method comprising:
(a) charging a receptacle containing a coated magnetic stirring element with said carrier fluid, (b) stirring the carrier fluid for a sufficient time to cause said coated magnetic stirring element to sorb said substances from said carrier fluid, (c) performing solid-phase microextraction on said coated magnetic stirring element to desorb said substances therefrom, (d) transporting said desorbed substances to analyzing means by a carrier gas, and (e) analyzing said substances.
- 2. Method according to claim 1, further comprising subjecting said coated magnetic stirring element to ultrasound.
- 3. Method according to claim 1, wherein said coated magnetic stirring element has a coating selected from the group consisting of glass and plastic.
- 4. Method according to claim 1, wherein said coated magnetic stirring element has a coating selected from the group consisting of polyethylene glycol, silicone, polyimide, octadecyltrichlorosilane, polymethylvinylchlorosilane, liquid-crystal poly-acrylates, grafted self-organized monomolecular layers and inorganic coating materials.
- 5. Method according to claim 1, further comprising removing said magnetic stirring element from said receptacle through a septum enclosing said receptacle, by means of an automatic discharging device, to a desorption tube.
- 6. Method according to claim 1, wherein said coated magnetic stirring element is a stirring ball.
- 7. Method according to claim 1, wherein said coated magnetic stirring element is a stirring rod.
- 8. Method according to claim 7, wherein said coated magnetic stirring element is a sheathed section of wire.
- 9. Method according to claim 1, wherein said solid-phase microextraction is performed thermally.
- 10. Method according to claim 9, wherein said solid-phase microextraction is performed dynamically.
- 11. Method according to claim 9, wherein said solid-phase microextraction is performed statically.
- 12. Method according to claim 1, wherein said solid-phase microextraction is performed using an organic liquid with a high level of interaction with said substances to be examined, and wherein (d) comprises transporting said desorbed substances by way of a syringe to a feeding device through which a carrier-gas stream flows.
- 13. Method according to claim 1, wherein (e) comprises analyzing said substances by gas chromatography.
- 14. Method for solid-phase microextraction and analysis of substances in a carrier fluid, comprising the steps of:
(a) charging a receptacle containing an ultrasound stirrer with said carrier fluid and a coated collector element into the receptacle, (b) subjecting said receptacle and its contents to ultrasound for a sufficient period of time to cause said substances to move intimately relative to said coated collector element, (c) performing solid-phase microextraction on said coated collector element to desorb said substances therefrom, (d) transporting said desorbed substances to analyzing means by a carrier gas, and (e) analyzing said substances.
- 15. Method according to claim 14, wherein said coated collector element has a coating selected from the group consisting of glass and plastic.
- 16. Method according to claim 14, wherein said coated collector element has a coating selected from the group consisting of polyethylene glycol, silicone, polyimide, octadecyltrichlorosilane, polymethylvinylchlorosilane, liquid-crystal poly-acrylates, grafted self-organized monomolecular layers and inorganic coating materials.
- 17. Method according to claim 14, wherein said receptacle is closed by a septum, said method further comprising withdrawing, by means of an automatic discharging device, said coated collector element from said receptacle through said septum, and placing said withdrawn coated collector element in a desorption tube.
- 18. Method according to claim 14, wherein said coated collector element element is a stirring ball.
- 19. Method according to claim 14, wherein said coated collector element is a stirring rod.
- 20. Method according to claim 19, wherein said coated collector element is a sheathed section of wire.
- 21. Method according to claim 14, wherein said solid-phase microextraction is performed thermally.
- 22. Method according to claim 21, wherein said solid-phase microextraction is performed dynamically.
- 23. Method according to claim 21, wherein said solid-phase microextraction is performed statically.
- 24. Method according to claim 14, wherein said solid-phase microextraction is performed using an organic liquid with a high level of interaction with regard to the substances to be examined, and wherein (d) comprises transporting said desorbed substances by way of a syringe to a feeding device through which a carrier-gas stream flows.
- 25. Method according to claim 14, wherein (e) comprises analyzing said substances by gas chromatography.
- 26. Collector for the solid-phase microextraction and analysis of substances to be examined, comprising:
a carrier made from magnetic material, which is suitable as a stirring element for a magnetic stirrer, and a coating selected from the group consisting of a sorbent, an adsorbent and a combined sorbent and adsorbent.
- 27. Collector according to claim 26, adapted to be insertable in a thermal desorption apparatus of a gas chromatograph.
- 28. Collector according to claim 26, in which said coating is a member selected from the group consisting of polyethylene glycol, silicone, polyimide, octadecyltrichlorosilane, polymethylvinylchlorosilane, liquid-crystal polyacrylates, grafted self-organized monomolecular layers and inorganic coating materials.
- 29. Collector according to claim 26, in which said carrier is rod-shaped.
- 30. Collector according to claim 29, in which said carrier is a section of wire.
- 31. Method for the solid-phase microextraction and analysis of substances in an environment, comprising the steps of:
(a) exposing to said environment a collector element comprising a carrier made from magnetic material and which is suitable as a stirring element for a magnetic stirrer, said carrier coated with a member selected from the group consisting of a sorbent, an adsorbent and a combined sorbent and adsorbent, for a sufficient period of time for said collector element to sorb said substances from said environment, (b) performing solid-phase microextraction on said collector element to desorb said substances therefrom, (c) transporting said desorbed substances to analyzing means by a carrier gas, and (d) analyzing said substances.
- 32. Method for solid-phase microextraction and analysis of substances which are to be investigated in a gas phase above a carrier liquid, which contains the substances to be investigated, said method comprising contacting said gas phase with a collector for sufficient time to cause said substances to adhere to said collector from said gas phase, then subjecting said collector to solid-phase microextraction with respect to at least one substance adhering to said collector, and transporting substances thus desorbed for analysis by means of a carrier gas, wherein said collector is a hydrophobic hose having sorptive activity supported on an inert support, said hydrophobic hose having a wall thickness of 0.2 to 1.5 mm.
- 33. Method according to claim 32 in which the wall thickness of said hydrophobic hose is from 0.5 to 1 mm.
- 34. Method according to claim 31, wherein the steps of sorption, of transport, of solid-phase microextraction and of analysis are carried out automatically.
- 35. Method according to claim 31, wherein said collector is removably attached to a holder.
- 36. Method according to claim 31, wherein said carrier liquid is heated and is additionally stirred.
- 37. Method according to claim 31, wherein said carrier liquid is arranged in a headspace vessel.
- 38. Method according to claim 32, wherein said inert support is a glass support or a magnetic rod-like support with a minimum internal diameter of 0.8 mm.
- 39. Method according to claim 32, wherein said inert support is a glass support or a magnetic rod-like support with an internal diameter of from 1.0 mm to 1.3 mm.
- 40. Method according to claim 32, wherein said hose is from 5 to 60 mm in length.
- 41. Method according to claim 32, wherein said collector used is formed integrally with a headspace vessel cap.
- 42. Method according to claim 32, wherein said hose is formed of a member selected from the group consisting of polydimethylsiloxane, polyethylene glycol, silicone, polyimide, octadecyltrichlorosilane, polymethylvinylchlorosilane, liquid-crystal polyacrylates, grafted self-organized monomolecular layers and inorganic coating materials.
- 43. Collector for the solid-phase microextraction and analysis of substances which are in a gas phase, to be fitted into a solid-phase extraction apparatus, said collector comprising an inert, rod-like support with a hydrophobic hose which has a sorptive action on substances, has been pushed on and has a wall thickness of from 0.2 to 1.5 mm.
- 44. Collector according to claim 43, wherein said wall thickness is in the range of 0.5 to 1 mm.
- 45. Collector according to claim 43, wherein said support has an internal diameter of at least 0.8 mm.
- 46. Collector according to claim 43, wherein said support has an internal diameter of 1.0 to 1.3 mm.
- 47. Collector according to claim 43, wherein said is from 5 to 60 mm in length.
- 48. Collector according to claim 43, wherein said inert support is a glass support or a magnetic support.
- 49. Collector according to claim 43, wherein said collector is formed integrally with a headspace vessel cap.
- 50. Collector according to claim 43, further comprising a holder for detachably holding the collector.
- 51. Collector according to claim 43, wherein said is formed of a member selected from the group consisting of polydimethylsiloxane, polyethylene glycol, silicone, polyimide, octadecyltrichlorosilane, polymethylvinylchlorosilane, liquid-crystal polyacrylates, grafted self-organized monomolecular layers and inorganic coating materials.
Priority Claims (2)
Number |
Date |
Country |
Kind |
19913809.5 |
Mar 1999 |
DE |
|
19933017.4 |
Jul 1999 |
DE |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of co-pending application No. 09/524,682, filed Mar. 14, 2000, the contents of which are incorporated herein in their entirety.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09524682 |
Mar 2000 |
US |
Child |
09967333 |
Sep 2001 |
US |