Claims
- 1. In an ion cyclotron resonance mass spectrometer analyzer cell in which ions are formed from a sample during an ionizing period the improvement comprising:
- magnetic means for producing a constant, substantially homogeneous magnetic field in said cell;
- a first set of electrodes for producing a quadrupolar electrostatic field in said cell which prevents the escape of ions from said cell in the direction parallel to the magnetic field;
- a second set of electrodes for producing an electrostatic field to prevent the drift of ions out of the ends of the analyzer cell in a direction perpendicular to the magnetic field;
- irradiation means for irradiating said cell with an alternating electric field to excite and accelerate ions of selected mass-to-charge ratios; and
- sensing means for detecting ions which have been selectively accelerated by the alternating electric field.
- 2. The spectrometer according to claim 1 wherein said electrodes comprise:
- upper, lower, side and end electrodes; and
- said upper, lower and side electrodes are in the form of a rectangular hyperbola.
- 3. The spectrometer according to claim 2 wherein said sensing means includes collecting electrodes comprised of said upper and lower electrodes electrically connected internally.
- 4. The spectrometer according to claim 3 wherein said sensing means includes an electrometer.
- 5. The spectrometer according to claim 2 wherein said irradiating means comprises a plurality of wires adjacent to said upper, lower and side electrodes.
- 6. The spectrometer according to claim 5 wherein said wires comprise:
- four wires placed in the asymptotic region of the hyperbolic electrodes.
- 7. A low pressure chemical ionization method of analyzing a sample in a trapped ion analyzer cell by mass spectrometry comprising:
- introducing a reagent gas to the cell at a predetermined pressure in the range of high to ultra-high vacuum;
- introducing a sample gas to the cell;
- ionizing molecules of the reagent gas to form reagent ions;
- trapping said reagent ions inside said trapped ion analyzer cell by subjecting them to a homogeneous magnetic field and a quadrapolar electrostatic field;
- chemically reacting the trapped reagent ions with neutral sample molecules to form sample ions;
- trapping said sample ions inside said trapped ion analyzer cell by subjecting them to the magnetic field and quadrapolar electrostatic field;
- detecting trapped ions, whereby the presence and abundance of a predetermined ion species may be measured.
- 8. The method according to claim 7 wherein the step of forming reagent ions includes applying a predetermined ionization potential whereby negatively charged reagent ions are formed.
- 9. The method according to claim 7 including:
- chemically reacting molecules of the reagent gas and reagent ions previously formed from molecules of the reagent gas to form positively charged and/or negatively charged reagent ions with the pressure of the reagent gas being in the range of high to ultra-high vacuum.
- 10. The method according to claim 7 including:
- chemically reacting reagent ions and molecules of the sample gas to form negatively charged sample ions with the partial pressure of the sample gas being in the region of high vacuum.
- 11. The method according to claim 7 wherein the step of trapping both reagent ions and sample ions comprises:
- producing a nearly uniform magnetostatic field to cause each ion to move orbitally at a frequency related to the charge to mass ratio;
- producing a quadrupolar electrostatic field to prevent the escape of ions from the analyzer cell in the direction parallel to the magnetic field;
- producing an electrostatic field to prevent the drift of ions out of the ends of the analyzer cell in a direction perpendicular to the magnetic field.
- 12. The method according to claim 11 wherein the strengh of said magnetostatic field is maintained constant throughout the analysis.
- 13. The method according to claim 7 wherein said detecting step includes:
- accelerating ions of predetermined mass to charge ratios by exciting their orbital motions in a nearly uniform magnetic field.
- 14. The method according to claim 13 wherein said accelerating step comprises:
- irradiating the interior of the analyzer cell with an alternating radio frequency electric field separate from the electrostatic and magnetostatic fields used to trap ions.
- 15. A frequency sweep mass scanning method according to claim 14 wherein said irradiation step includes:
- sweeping the frequency of alternating radio frequency electric field to sequentially excite the orbital motions of trapped ions.
- 16. The method according to claim 15 wherein the RF irradiation step comprises:
- switching the frequency so as to excite several separate and predetermined regions of the frequency spectrum in steps whereby the presence and abundance of particular multiple ions may be measured.
- 17. The method according to claim 9 wherein said detecting step includes collecting accelerated ions onto one or more electrodes.
- 18. The method according to claim 9 wherein said detecting of ions includes the sensing of accelerated ions with an electrometer.
- 19. The method according to claim 7 wherein the predetermined pressure of the reagent gas is on the order of 10.sup.-6 Torr.
- 20. The method according to claim 19 wherein the predetermined pressure of the sample gas is on the order of 10.sup.-8 Torr.
- 21. The method according to claim 7 wherein the step of producing an electrostatic field comprises:
- producing a homogeneous quadrupolar electrostatic field.
Government Interests
The government has rights in this invention pursuant to grant No. GP-381710X awarded by the National Science Foundation.
US Referenced Citations (4)