Claims
- 1. A method of using a quadrupole ion trap mass spectrometer, comprising the steps of:
- establishing a trapping field within the ion trap such that ions in a first continuous mass range are trapped within the ion trap, each said trapped ion having a secular frequency associated therewith,
- eliminating ions in a second continuous mass range from the ion trap by creating a first supplemental dipole field within the ion trap while modulating the trapping field, said second continuous mass range being a subset of the first continuous mass range, wherein the first supplemental dipole field comprises a plurality of frequency components for exciting ions at their respective secular frequencies, the frequency components in said first supplemental dipole field spanning a first frequency range, wherein the spacing of said frequency components varies over said first frequency range.
- 2. The method of claim 1 wherein the first frequency range is divided into a plurality of contiguous frequency subranges, and wherein the spacing of the frequency components within each subrange is substantially constant.
- 3. The method of claim 1 further comprising the step of eliminating ions from the ion trap in a third continuous mass range, said third continuous mass range being a subset of said first continuous mass range and being distinct from said second continuous mass range such that there is a discontinuity between said second and third mass ranges, by creating a second supplemental dipole field within the ion trap while modulating the trapping field, wherein the second supplemental dipole field comprises a plurality of frequency components for exciting ions in said third continuous mass range at their respective secular frequencies.
- 4. The method of claim 3 wherein said discontinuity between said second and third continuous mass ranges is of the order of a single mass unit.
- 5. The method of claim 3 wherein the spacing of said frequency components varies over said second frequency range.
- 6. The method of claim 1 wherein substantially all the frequency components are at least 1500 Hz apart.
- 7. The method of claim 3 wherein the step of eliminating comprise determining the frequency component at a boundary of the first frequency range further comprising the steps of:
- (a) selecting the value for the mass m.sub.1 of the ion to be retained in the ion trap said mass m.sub.1 being the first mass beyond the end of the second mass range,
- (b) determining the secular frequency f.sub.1 corresponding to m.sub.1 in the unmodulated trapping field, and
- (c) adjusting the value of f.sub.1 to compensate for the modulation of the trapping field.
- 8. The method of claim 7 wherein the step of adjusting the value of f.sub.1 comprises the step of calculating a preliminary edge frequency f.sub.PE1 by offsetting f.sub.1 by a predetermined edge scaling frequency f.sub.E.
- 9. The method of claim 8 wherein the step of adjusting the value of f.sub.1 further comprises the step of calculating the change in f.sub.1 associated with modulation of the trapping field .DELTA.f.sub.1 and calculating the final edge frequency f.sub.E1 by offsetting f.sub.PE1 by .DELTA.f.sub.1.
- 10. The method of claim 9 wherein all of the frequency components in said first frequency range have a common factor which is an integer.
- 11. The method of claim 10 further comprising the step of rounding the final edge frequency to a frequency which is an integer multiple of said common factor.
- 12. A method of creating a supplemental voltage waveform for use in conjunction with modulation of a nominal trapping field applied to a quadrupole ion trap mass spectrometer to resonantly eliminate unwanted masses from the ion trap, such that ions in a mass range comprising one or more masses are selectively stored in the ion trap, comprising the steps of:
- (a) determining the masses at the high and low ends of the range of masses that are held in the ion trap by the nominal trapping field,
- (b) determining the secular frequencies of the highest and lowest masses, thereby defining a frequency range spanning said secular frequencies,
- (c) dividing said frequency range into a plurality of subranges,
- (d) establishing a set of frequency components for each subrange, each frequency component within a subrange being spaced apart from adjacent frequency components by substantially the same amount,
- (e) determining a continuous range of masses m.sub.1 -m.sub.2 that are to be selectively stored in the ion trap, said range comprising at least one mass value,
- (f) determining the secular frequencies f.sub.1 and f.sub.2 of m.sub.1 and m.sub.2 in the unmodulated trapping field,
- (g) calculating a set of edge frequencies by adjusting the values of f.sub.1 and f.sub.2 to compensate for the effects of modulating the trapping field,
- (h) repeating steps (e)-(g) for each additional range of masses that are also to be selectively stored in the ion trap,
- (i) generating a voltage waveform incorporating each of the edge frequencies and each of the frequency components in each set of frequency components other than those which lie between respective sets of edge frequencies.
- 13. The method of claim 12 wherein the trapping field has an AC component and wherein modulation of the trapping field comprises modulating the voltage of the AC component of the trapping field.
- 14. The method of claim 13 wherein a modulation waveform is applied to effect modulation of the AC trapping voltage.
- 15. The method of claim 14 wherein the modulation waveform is a sawtooth wave, and wherein the slope of the increasing portion of the waveform is different than the slope of the decreasing portion of the waveform.
- 16. The method of claim 14 wherein the peak amplitude of the waveform above the nominal trapping voltage is different than the peak amplitude of the waveform below the nominal trapping voltage.
- 17. A method of constructing a supplemental dipole voltage waveform from a master set of frequency components for use in conjunction with a modulated trapping field in an ion trap to eliminate any selected range of ions in the mass range held by the trap under nominal trapping conditions, comprising the steps of:
- determining the mass range that is effectively held in the ion trap under the nominal trapping conditions,
- determining the secular frequencies of the end points of the mass range to define a frequency range,
- dividing said frequency range into a plurality of contiguous subranges,
- for each frequency subrange, generating a plurality of evenly space apart voltage frequency components spanning the subrange and combining said frequency components into the master set of frequency components, wherein the spacing of the frequency components is different in the different subranges, whereby said supplemental
- voltage waveform is realized.
- 18. The method of claim 17 wherein the spacing between frequency components is at least 1500 Hz in each of the subranges.
- 19. The method of claim 17 wherein there are at least four subranges.
- 20. The method of claim 19 wherein the frequency spacing in at least one of said subranges is at least 4500 Hz.
- 21. A method of obtaining a waveform having edge frequencies for defining a gap in the set of frequency components included in a supplemental voltage waveform used to selectively retain a range of masses in an ion trap in combination with a trapping voltage that is modulated about a nominal value, comprising the steps of:
- determining the respective secular frequencies of the mass values at the extremes of the mass range to be selectively retained in the ion trap,
- adjusting the secular frequencies by a scaling factor to define preliminary edge frequencies,
- adjusting the value of preliminary edge frequencies to compensate for modulation of the trapping field to define edge frequencies,
- rounding the values of adjusted preliminary edge frequencies to frequencies exhibiting a selected common factor, and
- generating said supplemental waveform from said frequency components of said set comprising frequency components other than frequency components having values between said adjusted secular frequencies.
- 22. The method of claim 21 wherein the frequency components in said supplemental waveform are all integer multiples of a common factor and further comprising the step of rounding the edge frequencies to the nearest integer multiple of said common factor.
- 23. A method of using a quadrupole ion trap mass spectrometer, comprising the steps of:
- establishing a trapping field within the ion trap such that ions in a first continuous mass range are trapped within the ion trap, each said trapped ion having a secular frequency associated therewith,
- eliminating ions in a second continuous mass range from the ion trap by creating a first supplemental dipole field within the ion trap while modulating the trapping field, said second continuous mass range being a subset of the first continuous mass range, wherein the first supplemental dipole field comprises a plurality of frequency components for exciting ions at their respective secular frequencies, the frequency components in said first supplemental dipole field spanning a first frequency range, wherein the respective amplitudes of said frequency components vary over said first frequency range.
- 24. The method of claim 23 wherein the first frequency range is divided into a plurality of contiguous frequency subranges, and wherein the voltage of the frequency components within each subrange is substantially constant.
RELATED APPLICATION
This case is a continuation-in-part of the commonly assigned U.S. patent application Ser. No. 08/179,844, filed Jan. 11, 1994, now U.S. Pat. No. 5,457,315 the disclosure of which is incorporated by reference, which was a continuation-in-part of U.S. Ser. No. 07/890,996 filed May 29, 1992, now U.S. Pat. No. 5,302,826.
US Referenced Citations (6)
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
179844 |
Jan 1994 |
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Parent |
890996 |
May 1992 |
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