IP Library Granted Patent US 6,914,241
Granted Patent B2
US 6,914,241 · App. 10/868,934 · Granted Jul 5, 2005

Mass spectrometer

Assignee: Micromass UK Limited
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Quick Facts
Patent No.
US 6,914,241
App. No.
10/868,934
Granted
Jul 5, 2005
Kind
B2
Abstract

A mass spectrometer comprising an ion mobility separator for separating ions according to their ion mobility is disclosed. The ion mobility separator comprises a plurality of electrodes and one or more transient DC voltages or one or more transient DC voltage waveforms are progressively applied to the electrodes so that ions having a certain ion mobility are separated from other ions having different ion mobilities.

Claims (14)

1. An ion mobility separator wherein ions separate within said ion mobility separator according to their ion mobility and assume different essentially static or equilibrium axial positions along the length of said ion mobility separator.

2. An ion mobility separator as claimed in claim 1 , wherein said ion mobility separator comprises a plurality of electrodes and wherein one or more transient DC voltages or one or more transient DC voltage waveforms are progressively applied to said electrodes so as to urge at least some ions in a first direction and wherein a DC voltage gradient acts to urge at least some ions in a second direction, said second direction being opposed to said first direction.

3. An ion mobility separator as claimed in claim 2 , wherein the peak amplitude of said one or more transient DC voltages or said one or more transient DC voltage waveforms remains substantially constant or reduces along the length of the ion mobility separator.

4. An ion mobility separator as claimed in claim 2 , wherein said DC voltage gradient progressively increases along the length of the ion mobility separator.

5. An ion mobility separator as claimed in claim 1 , wherein once ions have assumed essentially static or equilibrium axial positions along the length of said ion mobility separator at least some of said ions are then arranged to be moved towards an exit of said ion mobility separator.

6. An ion mobility separator as claimed in claim 5 , wherein at least some of said ions are arranged to be moved towards an exit of said ion mobility separator by: (i) reducing or increasing an axial DC voltage gradient; (ii) reducing or increasing the peak amplitude of said one or more transient DC voltages or said one or more transient DC voltage waveforms; (iii) reducing or increasing the velocity of said one or more transient DC voltages or said one or more transient DC voltage waveforms; or (iv) reducing or increasing the pressure within said ion mobility separator.

7. A mass spectrometer comprising an ion mobility separator as claimed in claim 1 .

8. A method of ion mobility separation comprising causing ions to separate within an ion mobility separator and assume different essentially static or equilibrium axial positions along the length of the ion mobility separator.

9. A method of ion mobility separation as claimed in claim 8 , wherein said ion mobility separator comprises a plurality of electrodes and wherein one or more transient DC voltages or one or more transient DC voltage waveforms are progressively applied to said electrodes so as to urge at least some ions in a first direction and wherein a DC voltage gradient acts to urge at least some ions in a second direction, said second direction being opposed to said first direction.

10. A method of ion mobility separation as claimed in claim 9 , wherein the peak amplitude of said one or more transient DC voltages or said one or more transient DC voltage waveforms remains substantially constant or reduces along the length of the ion mobility separator.

11. A method of ion mobility separation as claimed in claim 9 , wherein said DC voltage gradient progressively increases along the length of the ion mobility separator.

12. A method of ion mobility separation as claimed in claim 8 , wherein once ions have assumed essentially static or equilibrium axial positions along the length of said ion mobility separator at least some of said ions are then arranged to be moved towards an exit of said ion mobility separator.

13. A method of ion mobility separation as claimed in claim 12 , wherein at least some of said ions are arranged to be moved towards an exit of said ion mobility separator by: (i) reducing or increasing an axial DC voltage gradient; (ii) reducing or increasing the peak amplitude of said one or more transient DC voltages or said one or more transient DC voltage waveforms; (iii) reducing or increasing the velocity of said one or more transient DC voltages or said one or more transient DC voltage waveforms; or (iv) reducing or increasing the pressure within said ion mobility separator.

14. A method of mass spectrometry comprising the method of ion mobility separation as claimed in claim 8 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2005
From: BATEMAN, ROBERT HAROLD
To: MICROMASS UK LIMITED
Reel/Frame 016419/0241 →
Priority Claims (3)
GB 0214898 · Jun 27, 2002 · national
GB 0303055 · Feb 11, 2003 · national
GB 0308419 · Apr 11, 2003 · national
Continuity (3)
Continuation 1060382400 · Jun 26, 2003
Provisional Application 6042213400 · Oct 30, 2002
Related Publication 20040227071A1 · Nov 18, 2004