IP Library Granted Patent US 10,068,752
Granted Patent B2
US 10,068,752 · App. 15/026,235 · Granted Sep 4, 2018

Multiplexed precursor isolation for mass spectrometry

Inventor: Takashi Baba (Richmond Hill, CA)
Assignee: DH Technologies Development Pte. Ltd.
H01J49/0036H01J49/004H01J49/0031H01J49/04H01J49/067H01J49/4285
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Quick Facts
Patent No.
US 10,068,752
App. No.
15/026,235
Granted
Sep 4, 2018
Kind
B2
Abstract

Systems and methods for multiplexed precursor ion selection are provided. A mass isolator includes a selection region of rods, a transmission region of rods, and a barrier electrode lens separating the selection and transmission regions. Two or more different precursor ions are selected by applying two or more different AC voltage frequencies to rods of a selection region in order to resonate the two or more different precursor ions from a continuous beam of ions. The two or more different precursor ions are transmitted by applying a DC voltage to the barrier electrode lens, creating an electric field potential barrier over which only the resonating ions are transmitted. Precursor ions of product ions from combined product ion spectra produced by multiplexed precursor ion selection are identified by grouping the target precursor ions.

Claims (32)

1. A system for multiplexed precursor ion selection and transmission using an electrical field potential barrier, comprising:

an ion source that provides a continuous beam of ions;

a mass isolator that includes a selection region of rods, a transmission region of rods, a barrier electrode lens separating the selection region and the transmission region, and an exit electrode lens separating the transmission region and a fragmentation device

and that receives the continuous ion beam from the ion source; and

a processor in communication with the ion source and the mass isolator that

selects two or more different precursor ions by applying two or more different alternating current (AC) voltage frequencies only to rods in the selection region in order to resonate the two or more different precursor ions from the beam of ions in the selection region,

transmits the resonating two or more different precursor ions from the selection region to the transmission region at the same time by applying a direct current (DC) voltage to the barrier electrode lens, which is positioned between the selection region and the transmission region, relative to the rods in the selection region and rods in the transmission region in order to create an electric field potential barrier over which only the resonating two or more different precursor ions are transmitted, and

transmits the two or more different precursor ions from the transmission region to the fragmentation device at the same time by applying a DC voltage to the exit electrode lens that is lower than the DC voltage applied to the barrier electrode lens.

2. The system of claim 1 , wherein the barrier electrode lens comprises a mesh electrode or lens.

3. The system of claim 1 , wherein the transmission region is shorter in length than the selection region.

4. The system of claim 1 , wherein the mass isolator further includes a double sided ion beam electrode lens and an ion beam transmission region of rods positioned before the selection region.

5. The system of claim 4 , wherein the processor applies a DC voltage to a side of the double sided ion beam electrode lens relative to the rods of the ion beam transmission region and the rods of the selection region so that precursor ions from the beam of ions that are not resonated in the selection region are transmitted back to the side of the doubled sided ion beam electrode lens and removed from the beam of ions.

6. The system of claim 1 , wherein the processor focuses the two or more different precursor ions in the transmission region by applying a DC bias voltage to the rods of the transmission region relative to the barrier electrode lens and the exit electrode lens so that translation travel time of the two or more different precursor ions is a multiple of half of the harmonic oscillation period of the radial motion of the two or more different precursor ions due to the AC voltage applied to the rods of the transmission region.

7. A method for multiplexed precursor ion selection and transmission using an electrical field potential barrier, comprising:

selecting two or more different precursor ions by applying two or more different alternating current (AC) voltage frequencies only to rods in a selection region of a mass isolator in order to resonate the two or more different precursor ions from a continuous beam of ions in the selection region using a processor, wherein the mass isolator includes the selection region of rods, a transmission region of rods, a barrier electrode lens separating the selection region and the transmission region, and an exit electrode lens separating the transmission region and a fragmentation device and receives the continuous ion beam from an ion source,

transmitting the resonating two or more different precursor ions from the selection region to the transmission region at the same time by applying a direct current (DC) voltage to the barrier electrode lens, which is positioned between the selection region and the transmission region, relative to the rods in the selection region and rods in the transmission region in order to create an electric field potential barrier over which only the resonating two or more different precursor ions are transmitted using the processor, and

transmitting the two or more different precursor ions from the transmission region to the fragmentation device at the same time by applying a DC voltage to the exit electrode lens that is lower than the DC voltage applied to the barrier electrode lens using the processor.

8. The method of claim 7 , wherein the barrier electrode lens comprises a mesh electrode or lens.

9. The method of claim 7 , wherein the transmission region is shorter in length than the selection region.

10. The method of claim 7 , wherein the mass isolator further includes a double sided ion beam electrode lens and an ion beam transmission region of rods positioned before the selection region.

11. The method of claim 10 , further comprising applying a DC voltage to a side of the double sided ion beam electrode lens relative to the rods of the ion beam transmission region and the rods of the selection region so that precursor ions from the beam of ions that are not resonated in the selection region are transmitted back to the side of the doubled sided ion beam electrode lens and removed from the beam of ions using the processor.

12. The method of claim 7 , further comprising focusing the two or more different precursor ions in the transmission region by applying a DC bias voltage to the rods of the transmission region relative to the barrier electrode lens and the exit electrode lens so that translation travel time of the two or more different precursor ions is a multiple of half of the harmonic oscillation period of the radial motion of the two or more different precursor ions due to the AC voltage applied to the rods of the transmission region using the processor.

13. A computer program product, comprising a non-transitory and tangible computer-readable storage medium whose contents include a program with instructions being executed on a processor so as to perform a method for multiplexed precursor ion selection and transmission using an electrical field potential barrier, comprising:

providing a system, wherein the system comprises one or more distinct software modules, and wherein the distinct software modules comprise a control module;

selecting two or more different precursor ions by applying two or more different alternating current (AC) voltage frequencies only to rods in a selection region of a mass isolator in order to resonate the two or more different precursor ions from a continuous beam of ions in the selection region using the control module, wherein the mass isolator includes the selection region of rods, a transmission region of rods, a barrier electrode lens separating the selection region, and an exit electrode lens separating the transmission region and a fragmentation device and the transmission region and receives the continuous ion beam from an ion source,

transmitting the resonating two or more different precursor ions from the selection region to the transmission region at the same time by applying a direct current (DC) voltage to the barrier electrode lens, which is positioned between the selection region and the transmission region, relative to the rods in the selection region and rods in the transmission region in order to create an electric field potential barrier over which only the resonating two or more different precursor ions are transmitted using the control module, and

transmitting the two or more different precursor ions from the transmission region to the fragmentation device at the same time by applying a DC voltage to the exit electrode lens that is lower than the DC voltage applied to the barrier electrode lens using the control module.

14. The computer program product of claim 13 , wherein the barrier electrode lens comprises a mesh electrode or lens.

15. The computer program product of claim 13 , wherein the transmission region is shorter in length than the selection region.

16. The computer program product of claim 13 , wherein the mass isolator further includes a double sided ion beam electrode lens and an ion beam transmission region of rods positioned before the selection region.

17. The computer program product of claim 16 , further comprising applying a DC voltage to a side of the double sided ion beam electrode lens relative to the rods of the ion beam transmission region and the rods of the selection region so that precursor ions from the beam of ions that are not resonated in the selection region are transmitted back to the side of the doubled sided ion beam electrode lens and removed from the beam of ions using the processor.

18. The computer program product of claim 13 , further comprising focusing the two or more different precursor ions in the transmission region by applying a DC bias voltage to the rods of the transmission region relative to the barrier electrode lens and the exit electrode lens so that translation travel time of the two or more different precursor ions is a multiple of half of the harmonic oscillation period of the radial motion of the two or more different precursor ions due to the AC voltage applied to the rods of the transmission region using the processor.

Assignments (2)
CHANGE OF ADDRESS Recorded May 6, 2016
From: DH TECHNOLOGIES DEVELOPMENT PTE. LTD.
To: DH TECHNOLOGIES DEVELOPMENT PTE. LTD.
Reel/Frame 038631/0857 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 2, 2016
From: BABA, TAKASHI
To: DH TECHNOLOGIES DEVELOPMENT PTE. LTD.
Reel/Frame 038178/0380 →
Continuity (2)
Provisional Application 61891579 · Oct 16, 2013
Related Publication 20160217991A1 · Jul 28, 2016