Claims
- 1. A conduit for transporting ions from an ionization chamber containing gas at relatively high pressure to a mass analyzer chamber containing gas at a relatively low pressure, comprising:(a) a tube of dielectric material, having an upstream end adjacent said ionization chamber and a downstream end adjacent said mass analyzer chamber, an upstream opening at said upstream end, a downstream opening at said downstream end and a bore extending from said upstream opening to said downstream opening, said bore enabling a gas flow assisted movement of ions to pass from said ionization chamber to said mass analyzer chamber; (b) a first electrode at said upstream end; (c) a second electrode at said downstream end; (d) a third electrode located between said upstream end and said downstream end; and (e) a source of electric potential connected to each of said first, second and third electrodes for creating an electric field having a first portion between said first electrode and said second electrode and a second portion between said second electrode and said third electrode, said first portion having a voltage gradient that is steeper than that of said second portion, whereby said electric field is capable of opposing said gas flow assisted movement of ions within said bore and the steeper voltage gradient along said first portion is capable of retarding downstream movement of ions having drift velocities below a selected lower limit through and out from said bore.
- 2. The conduit as recited in claim 1, further comprising a fourth electrode between said third electrode and said second electrode, said fourth electrode being connected to said source of electrical potential for dividing said electric field into a third portion which is located between said first portion and said second portion and which has a voltage gradient that is steeper than the voltage gradient of said second portion.
- 3. The conduit as recited in claim 1, further comprising thermal means for changing the temperature of the ions in said conduit.
- 4. The conduit as recited in claim 3, wherein said thermal means is a heater operatively connected to said tube.
- 5. The conduit as recited in claim 3, wherein said thermal means is a cooler operatively connected to said tube.
- 6. The conduit as recited in claim 1, wherein said source of electric potential includes means for varying the electrical potential of at least one of said electrodes during operation of said conduit.
- 7. The conduit as recited in claim 1, wherein source of electric potential includes means for varying the electrical potential of each of said electrodes during operation of said conduit.
- 8. A mass spectrometer comprising:(a) an ionization chamber containing gas at relatively high pressure; (b) a mass analyzer chamber containing gas at a relatively low pressure; (c) a tube of dielectric material extending from said ionization chamber to said mass analyzer chamber, said tube having an upstream end adjacent said ionization chamber, a downstream end adjacent said mass analyzer chamber, an upstream opening at said upstream end, a downstream opening at said downstream end and a bore extending from said upstream opening to said downstream opening, said bore enabling a gas flow assisted movement of ions to pass from said ionization chamber to said mass analyzer chamber; (d) a first electrode at said upstream end; (e) a second electrode at said downstream end; (f) a third electrode between said upstream and downstream ends; and (g) a source of electric potential connected to each of said first, second and third electrodes for creating an electric field having a first portion between said first electrode and said second electrode and a second portion between said second electrode and said third electrode, said first portion having a voltage gradient that is steeper than that of said second portion, whereby said electric field is capable of opposing said gas flow assisted movement of ions within said bore and the steeper voltage gradient along said first portion is capable of retarding downstream movement of ions having drift velocities below a selected lower limit through and out from said bore.
- 9. The mass spectrometer as recited in claim 8, further comprising a fourth electrode between said third electrode and said second electrode, said fourth electrode being connected to said source of electric potential for dividing said electric field into a third portion which is located between said first portion and said second portion and which has a voltage gradient that is steeper than the voltage gradient of said second portion.
- 10. The mass spectrometer as recited in claim 8, further comprising thermal means for changing the temperature of the ions in said tube.
- 11. The mass spectrometer as recited in claims 10, wherein said thermal means is a heater operatively connected to said tube.
- 12. The mass spectrometer as recited in claim 10, wherein said thermal means is a cooler operatively connected to said tube.
- 13. The mass spectrometer as recited in claim 8, wherein said source of electric potential includes means for varying the electrical potential of at least one of said electrodes during operation of said mass spectrometer.
- 14. The mass spectrometer as recited in claim 8, wherein said source of electric potential includes means for varying the electrical potential of each of said electrodes during operation of said mass spectrometer.
- 15. The mass spectrometer as recited in claim 8, wherein the gas in said ionization chamber is substantially at atmospheric pressure and the gas in said mass analyzer chamber is below atmospheric pressure.
- 16. The mass spectrometer as recited in claim 8, further comprising apparatus for directing a heated gas into said ionization chamber for raising the temperature of the ions in said ionization chamber.
- 17. A method for selecting a flow of ions through a conduit from an ionization chamber to a mass analyzer chamber, said conduit comprising a tube of dielectric material having an upstream end adjacent said ionization chamber and a downstream end adjacent said mass analyzer chamber, said method comprising the steps of:(a) maintaining a gas pressure in said mass analyzer chamber at subatmospheric pressure; (b) maintaining a gas pressure in said ionization chamber that is greater than the gas pressure in said mass analyzer chamber for creating a flow of gas through said conduit to assist the flow of ions through the conduit from said ionization chamber to said mass analyzer chamber; and (c) creating an electric field in said conduit for opposing said flow of ions and retarding downstream movement of specific ions having drift velocities below a selected lower limit to prevent said specific ions from moving through the conduit into the mass analyzer chamber.
- 18. The method as recited in claim 17, wherein said electric field has a first portion adjacent said upstream end and a second portion adjacent said downstream end, said first portion having a voltage gradient that is steeper than that of said second portion for retarding downstream movement of said specific ions.
- 19. The method as recited in claim 18, wherein said lower limit is a first lower limit and, wherein said electric field has a third portion between said first portion and said second portion, said third portion having a voltage gradient that is steeper than the voltage gradient of said second portion and for retarding downstream movement through said conduit of ions having drift velocities below a selected lower limit.
- 20. The method as recited in claim 17, further comprising the step of changing the temperature of the gas flowing through said conduit.
- 21. The method as recited in claim 20, wherein the step of changing the temperature of the gas flowing through said conduit comprises raising the temperature of the gas in said ionization chamber.
- 22. The method as recited inc claim 20, wherein the step of changing the temperature of the gas flowing through said conduit comprises directing a flow of a drying gas into said ionization chamber.
- 23. The method as recited in claim 20, wherein the step of changing the temperature of the gas flowing through said conduit comprises heating said tube.
- 24. The method as recited in claim 20, wherein the step of changing the temperature of the gas flowing through said conduit comprises cooling said tube.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation of application Ser. No. 09,429,063, filed Oct. 29, 1999, now U.S. Pat. No. 6,486,469.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
This invention has been created without the sponsorship or funding of any federally sponsored research or development program.
US Referenced Citations (15)
Number |
Name |
Date |
Kind |
4542293 |
Fenn et al. |
Sep 1985 |
A |
5412208 |
Covey et al. |
May 1995 |
A |
5432343 |
Gulcicek et al. |
Jul 1995 |
A |
5652427 |
Whitehouse et al. |
Jul 1997 |
A |
5726447 |
Aisawa et al. |
Mar 1998 |
A |
5736741 |
Bertsch et al. |
Apr 1998 |
A |
5750988 |
Apffel et al. |
May 1998 |
A |
5753910 |
Gourley et al. |
May 1998 |
A |
5838003 |
Bertsch et al. |
Nov 1998 |
A |
5844237 |
Whitehouse et al. |
Dec 1998 |
A |
5869831 |
De La Mora et al. |
Feb 1999 |
A |
5936242 |
De La Mora et al. |
Aug 1999 |
A |
5962851 |
Whitehouse et al. |
Oct 1999 |
A |
6060705 |
Whitehouse et al. |
May 2000 |
A |
6486469 |
Fischer et al. |
Nov 2002 |
B1 |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09/429063 |
Oct 1999 |
US |
Child |
10/224637 |
|
US |