Claims
- 1. A mass spectrometer comprising:(a) a source of charged particles; (b) a linear dispersion magnetic separator for producing a linear dispersion of charged particles by energy-mass-to-charge ratio, wherein the linear dispersion is achieved by an inhomogeneous magnetic field in one plane and a homogeneous magnetic field in another plane; and (c) a charged particle collector.
- 2. The mass spectrometer of claim 1 wherein the source of charged particles is a glow discharge ion source.
- 3. The mass spectrometer of claim 1 wherein the source of charged particles is a Penning ionization source.
- 4. The mass spectrometer of claim 1 wherein the source of charged particles is a rare earth-coated filament source.
- 5. The mass spectrometer of claim 1 wherein the source of charged particles is a yttrium-coated iridium filament source.
- 6. The mass spectrometer of claim 1 wherein the charged particle collector comprises a position sensitive detector.
- 7. The mass spectrometer of claim 1 wherein the inhomogeneous magnetic field varies according to the function B(x)=Box−¾, where Bo is a magnetic field constant chosen to match a nominal magnetic field and x is a distance measured along the separator's centerline axis.
- 8. The mass spectrometer of claim 1 wherein the separator comprises a magnet having two poles separated by a gap through which pass charged particle beams.
- 9. The mass spectrometer of claim 8 wherein the gap varies according to the function g(x)=tan (x−¼), where x is a distance measured along the pole surface.
- 10. The mass spectrometer of claim 1 wherein the linear dispersion of the charged particles proportional to their mass-energy-to-charge ratio is along a plane.
- 11. The mass spectrometer of claim 1 further comprising a transverse gradient magnetic field for focusing uncollimated charged particle beams.
- 12. The mass spectrometer of claim 1 wherein the separator comprises a single magnet.
- 13. The mass spectrometer of claim 8 wherein the gap separating the poles increases at a rate along the path of the charged particle beams such that the inhomogeneous magnetic field decreases as a function of the distance from the entrance of the magnet.
- 14. The mass spectrometer of claim 8 wherein the poles receive magnetic induction by an electric field.
- 15. The mass spectrometer of claim 8 wherein the poles receive magnetic induction by permanent polarized hard magnetic material.
- 16. The mass spectrometer of claim 15 wherein the magnetic material is selected from the group consisting of ferrite and rare earth permanent magnetic materials.
- 17. The mass spectrometer of claim 8 wherein the poles comprise a highly permeable soft magnetic material.
- 18. The mass spectrometer of claim 17 wherein the soft magnetic material comprises an iron-cobalt alloy.
- 19. The mass spectrometer of claim 18 wherein the iron-cobalt alloy comprises vanadium permendur.
- 20. The mass spectrometer of claim 16 wherein the rare earth permanent magnetic materials are selected from the group consisting of neodymium-iron-boron and samarium-cobalt materials.
- 21. The mass spectrometer of claim 8 further comprising a flux return yoke.
- 22. The mass spectrometer of claim 21 wherein the yoke comprises a highly permeable soft magnetic material.
- 23. The mass spectrometer of claim 21 wherein the yoke comprises vanadium permendur.
- 24. The mass spectrometer of claim 1 wherein the separator comprises a pair of inhomogeneous magnets each having a pole surface, wherein the pole surfaces are separated by a gap through which pass charged particle beams.
- 25. The mass spectrometer of claim 24 wherein the inhomogeneous magnetic field decreases as a function of the distance from the entrance of the magnet.
- 26. The mass spectrometer of claim 1 wherein the separator comprises a plurality of magnets dispersed in two parallel arrays separated by a gap through which pass charged particle beams.
- 27. The mass spectrometer of claim 26 wherein the inhomogeneous magnetic field decreases as a function of the distance from the entrance of the magnet.
- 28. The mass spectrometer of claim 26 wherein the gap separating the magnetic arrays increases at a rate along the path of the charged particle beams such that the inhomogeneous magnetic field decreases as a function of the distance from the entrance of the magnet.
- 29. The mass spectrometer of claim 1 wherein the inhomogeneous magnetic field is produced from an electric coil.
- 30. The mass spectrometer of claim 29 wherein the inhomogeneous magnetic field decreases as a function of the distance from the entrance of the magnet.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation of copending international application Serial No. PCT/US98/21000, filed Oct. 6, 1998, which is a continuation-in-part of U.S. provisional patent application Serial No. 60/061,394, filed Oct. 7, 1997, priority of the filing dates of which is hereby claimed under 35 U.S.C. §§ 120 and 119, respectively. Each of these applications is incorporated herein by reference.
US Referenced Citations (9)
Provisional Applications (1)
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Number |
Date |
Country |
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60/061394 |
Oct 1997 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
PCT/US98/21000 |
Oct 1998 |
US |
Child |
09/325936 |
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US |