IP Library Granted Patent US 11,024,497
Granted Patent B2
US 11,024,497 · App. 16/808,353 · Granted Jun 1, 2021

Chemically modified ion mobility separation apparatus and method

Inventors: Ching Wu (Boxborough, MA); Mark A. Osgood (Wilton, NH)
Assignee: Excellims Corp.
H01J49/061C07B63/00G01N27/622H01J49/0027
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Quick Facts
Patent No.
US 11,024,497
App. No.
16/808,353
Granted
Jun 1, 2021
Kind
B2
Abstract

An ion mobility spectrometry apparatus and method used to separate ions and select some of the ions using an AC gate; the selected ions are further separated along a drift axis of a drift tube, where the AC gate is controlled using a series of AC voltages and/or frequencies to select different ions for the drift tube.

Claims (36)

1. An ion mobility analyzer apparatus comprising:

a. A first ion gate that is located between an ionization source and a first drift region of a drift tube, and pulses a group of ions into the first drift region where the group of ions are separated along a drift axis of the first drift region;

b. A second ion gate that is an AC ion gate located between the first drift region of the drift tube and a second drift region of the drift tube, and pulses a group of ions into the second drift region where the group of ions are separated along a drift axis of the second drift region; wherein

i. the AC ion gate comprises at least one pair of adjacent grid elements that can be set at the same or different potentials; and

ii. at least one AC power supply applies at least one AC voltage to the grid elements to pass a pulse of selected ions into the spectrometer;

wherein the pulse of selected ions is generated by applying a first frequency and a first amplitude of the AC voltage to at least one of the grid elements for a period time and subsequently applying a second frequency and/or a second amplitude of the AC voltage to at least one of the grid elements; and

c. At least one drift gas in the drift tube.

2. The apparatus of claim 1 , wherein at least one power supply applies at least one AC voltage to at least one grid element of the AC ion gate.

3. The apparatus of claim 2 , wherein the at least one power supply alters the AC waveform, frequency and/or amplitude of the AC voltage.

4. The apparatus of claim 1 , wherein the first ion gate is a first AC ion gate, wherein

a. the AC ion gate comprises at least one pair of adjacent grid elements that can be set at the same or different potentials; and

b. at least one AC power supply applies at least one AC voltage to the grid elements to pass a pulse of selected ions into the spectrometer; wherein the pulse of selected ions is generated by applying a first frequency and a first amplitude of the AC voltage to at least one of the grid elements for a period time and subsequently applying a second frequency and/or a second amplitude of the AC voltage to at least one of the grid elements.

5. The apparatus of claim 4 , wherein a first power supply supplies a first AC voltage to the first AC ion gate, and the same power supply or a different power supply supplies a second AC voltage to the second AC ion gate, wherein the first AC voltage has an AC waveform, frequency, and/or amplitude that is different from that supplied to the second AC ion gate.

6. The apparatus of claim 1 , wherein the drift tube has gas ports that direct the drift gas flow in uni-, counter-, or cross-flow direction.

7. An ion mobility analyzer method comprising:

a. Pulsing a group of ions into a first drift region of the drift tube using a first ion gate;

b. Separating the group of ions along a drift axis of the first drift region;

c. Pulsing at least one group of ions into a second drift region of the drift tube through a second ion gate that is an AC ion gate; wherein a pulse of selected ions is generated by applying a first frequency and a first amplitude of an AC voltage to at least one of the grid elements for a period time and subsequently applying a second frequency and/or a second amplitude of the AC voltage to at least one of the grid elements;

d. Separating the at least one group of ions along a drift axis of the second drift region; and

e. Providing at least one drift gas in the drift tube.

8. The method of claim 7 , wherein at least one power supply applies at least one AC voltage to at least one grid element of the AC ion gate.

9. The method of claim 8 , wherein controlling the power supply by altering the AC waveform, frequency and/or amplitude.

10. The method of claim 7 , wherein operating the first ion gate as an AC ion gate by generating a pulse of selected ions by applying a first frequency and a first amplitude of an AC voltage to at least one of the grid elements for a period time and subsequently applying a second frequency and/or a second amplitude of the AC voltage to at least one of the grid elements.

11. The method of claim 7 , wherein operating the ion gates to block or allow through a group or multiple groups of ions at the first AC ion gate, and to block or allow through a different group or multiple groups of ions at the second AC ion gate by controlling a first power supply to supply a first AC voltage with a first AC waveform, frequency and amplitude to the first AC ion gate and controlling the first power supply or a second power supply to supply an AC voltage with a different AC waveform, frequency and/or amplitude to the second AC ion gate.

12. The method of claim 11 , wherein changing the output of the power supply to alter the AC waveform, frequency and/or amplitude supplied to the second AC ion gate to a different waveform, frequency and/or amplitude when targeted ions arrive at the second AC ion gate.

13. The method of claim 12 , wherein allowing ions to pass through the second AC ion gate when targeted ions arrive at the second AC ion gate.

14. The method of claim 7 , wherein directing the drift gas in uni-, counter, or cross-flow direction.

15. An ion mobility analyzer method comprising:

a. Pulsing a group of ions into a first drift region of the drift tube using a first ion gate;

b. Separating the group of ions along a drift axis of the first drift region;

c. Selectively passing at least one group of ions into a second drift region of the drift tube through a second ion gate that is an AC ion gate by applying a series of AC voltages in a certain sequence during ion mobility measurement;

d. Separating the group of ions along a drift axis of the second drift region; and

e. Providing at least one drift gas in the drift tube.

16. The method of claim 15 , wherein selectively passing at least one group of ions into the second drift region by controlling a power supply to apply at least one AC voltage to the second AC ion gate at a given timing.

17. The method of claim 15 , wherein operating the first ion gate as an AC ion gate by generating a pulse of selected ions by applying a first frequency and a first amplitude of an AC voltage to at least one of the grid elements for a period time and subsequently applying a second frequency and/or a second amplitude of the AC voltage to at least one of the grid elements.

18. The method of claim 15 , wherein operating the ion gates to block or allow through a group or multiple groups of ions at the first AC ion gate, and to block or allow through a different group or multiple groups of ions at the second AC ion gate by controlling a first power supply to supply a first AC voltage with a first AC waveform, frequency and amplitude to the first AC ion gate and controlling the first power supply or a second power supply to supply an AC voltage with a different AC waveform, frequency and/or amplitude to the second AC ion gate.

Continuity (22)
Continuation 16396715 · Apr 28, 2019
Continuation 15665421 · Jul 31, 2017
Continuation In Part 14992053 · Jan 11, 2016
Continuation In Part 14537863 · Nov 10, 2014
Continuation 14214558 · Mar 14, 2014
Continuation 13475993 · May 20, 2012
Continuation In Part 13360758 · Jan 29, 2012
Continuation In Part 13360760 · Jan 29, 2012
Continuation In Part 12763092 · Apr 19, 2010
Continuation In Part 12695111 · Jan 27, 2010
Continuation In Part 12577062 · Oct 9, 2009
Division 12471101 · May 22, 2009
Continuation In Part 11776392 · Jul 11, 2007
Continuation 11618430 · Dec 29, 2006
Provisional Application 61801722 · Mar 15, 2013
Provisional Application 61784324 · Mar 14, 2013
Provisional Application 61488438 · May 20, 2011
Provisional Application 61104319 · Oct 10, 2008
Provisional Application 60891532 · Feb 26, 2007
Provisional Application 60807031 · Jul 11, 2006
Provisional Application 60766226 · Jan 2, 2006
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