Claims
- 1. A method of separating ions in time, comprising the steps of:
separating a bulk of ions in time as a function of ion mobility; and separating in time as a function of ion mass at least a number of said ions separated in time as a function of ion mobility that define a first range of ion mobility.
- 2. The method of claim 1 further including the step of collecting ions defining said first range of ion mobility from said ions separated in time as a function of ion mobility;
and wherein the step of separating in time as a function of ion mass includes separating in time as a function of ion mass at least some of said ions resulting from said collecting step.
- 3. The method of claim 2 further including the following step prior to executing the step of separating in time as a function of ion mass:
repeating a number of times the steps of separating a bulk of ions in time as a function of ion mobility and collecting ions defining said first range of mobility.
- 4. The method of claim 1 further including the step of generating said bulk of ions prior to the step of separating a bulk of ions in time as a function of ion mobility.
- 5. The method of claim 4 further including the step of selectively filtering said bulk of ions according to ion mass prior to the step of separating a bulk of ions in time as a function of ion mobility to thereby provide ions having only desired mass-to-charge ratios.
- 6. The method of claim 5 further including the step of fragmenting at least some of said bulk of ions selectively filtered according to ion mass into daughter ions prior to the step of separating a bulk of ions in time as a function of ion mobility.
- 7. The method of claim 4 further including the step of fragmenting at least some of said bulk of ions into daughter ions prior to the step of separating a bulk of ions in time as a function of ion mobility.
- 8. The method of claim 7 further including the step of selectively filtering at least some of said daughter ions according to ion mass prior to the step of separating a bulk of ions in time as a function of ion mobility to thereby provide daughter ions having only desired mass-to-charge ratios.
- 9. The method of claim 1 further including the step of selectively filtering at least some of said ions separated in time as a function of ion mobility according to ion mass prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility to thereby provide ions having only desired mass-to-charge ratios.
- 10. The method of claim 9 further including the step of fragmenting at least some of said ions selectively filtered according to ion mass into daughter ions prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 11. The method of claim 1 further including the step of fragmenting at least some of said ions separated in time as a function of ion mobility into daughter ions prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 12. The method of claim 11 further including the step of selectively filtering at least some of said daughter ions according to ion mass prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility to thereby provide daughter ions having only desired mass-to-charge ratios.
- 13. The method of claim 4 further including the step of selectively filtering at least some of said ions separated in time as a function of ion mobility according to ion mass after the collecting step and prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility to thereby provide ions having only desired mass-to-charge ratios.
- 14. The method of claim 13 further including the step of fragmenting at least some of said ions selectively filtered according to ion mass into daughter ions prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 15. The method of claim 4 further including the step of fragmenting at least some of said ions separated in time as a function of ion mobility into daughter ions after the collecting step and prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 16. The method of claim 15 further including the step of selectively filtering at least some of said daughter ions according to ion mass prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility to thereby provide daughter ions having only desired mass-to-charge ratios.
- 17. The method of claim 4 wherein the step of generating said bulk of ions includes separating a number of ions in time as a function of a molecular characteristic other than ion mobility and ion mass.
- 18. The method of claim 4 wherein the step of generating said bulk of ions includes generating said bulk of ions via electrospray ionization.
- 19. The method of claim 4 wherein the step of generating said bulk of ions includes generating said bulk of ions via laser desorption.
- 20. The method of claim 4 wherein the step of generating said bulk of ions includes the steps of:
generating ions from a sample source; collecting at least some of said generated ions; repeating said generating and collecting steps a number of times to form said bulk of ions; and releasing said bulk of ions.
- 21. The method of claim 1 wherein the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility includes fragmenting said bulk of ions separated in time as a function of ion mobility into daughter ions.
- 22. The method of claim 1 further including the step of normalizing a charge state of at least some of said ions separated in time as a function of ion mobility prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 23. The method of claim 1 further including the step of separating according to mass at least some isotopes of said ions separated in time as a function of ion mobility prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 24. The method of claim 4 further including the step of normalizing a charge state of at least some of said ions separated in time as a function of ion mobility after the collecting step and prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 25. The method of claim 4 further including the step of separating according to mass at least some isotopes of said ions separated in time as a function of ion mobility after the collecting step and prior to the step of separating in time as a function of ion mass at least some of said bulk of ions separated in time as a function of ion mobility.
- 26. Apparatus for separating ions in time, comprising:
means for generating a bulk of ions; an ion mobility spectrometer (IMS) having an ion inlet coupled to said means for generating a bulk of ions and an ion outlet, said IMS operable to separate ions in time as a function of ion mobility; a mass spectrometer (MS) having an ion inlet coupled to said ion outlet of said IMS, said MS operable to separate ions in time as a function of ion mass; and means for passing to said ion inlet of said MS only ions having a preselected ion mobility range.
- 27. The apparatus of claim 26 wherein said means for passing to said ion inlet of said MS only ions having a preselected ion mobility range includes:
a first ion gate disposed adjacent to said ion outlet of said IMS, said first ion gate actuatable between a closed position inhibiting ion passage therethrough and an open position permitting ion passage therethrough; and a control circuit controlling actuation of said first ion gate between said open and closed position thereof as a function of ion drift time to thereby allow passage through said first ion gate only ions having said preselected ion mobility range.
- 28. The apparatus of claim 27 wherein said means for passing to said ion inlet of said MS only ions having a preselected ion mobility range includes a second ion gate disposed adjacent to said ion inlet of said IMS, said second ion gate actuatable between a closed position inhibiting ion passage therethrough and an open position permitting ion passage therethrough;
and wherein said control circuit is operable to control actuation of said second ion gate between said open and closed position thereof as a function of ion drift time to thereby allow passage through said first ion gate only ions having said preselected ion mobility range.
- 29. The apparatus of claim 27 wherein said means for generating a bulk of ions includes means responsive to an ion generation signal for providing said bulk of ions to said ion inlet of said IMS;
and wherein said control circuit is operable to produce said ion generation signal, said control circuit controlling timing of actuation of said first ion gate relative to production of said ion generation signal as a function of ion drift time to thereby allow passage through said first ion gate only ions having said preselected ion mobility range.
- 30. The apparatus of claim 26 wherein said means for passing to said ion inlet of said MS only ions having a preselected ion mobility range includes:
an ion trap having an ion inlet coupled to said ion outlet of said IMS and an ion outlet coupled to said ion inlet of said MS, said ion trap operable to collect a number of ions therein; and a control circuit controlling said-ion inlet of said ion trap gate as a function of ion drift time to thereby allow passage through said ion inlet of said ion trap only ions having said preselected ion mobility range.
- 31. The apparatus of claim 30 wherein said means for generating a bulk of ions includes means responsive to an ion generation signal for providing said bulk of ions to said ion inlet of said IMS;
and wherein said control circuit is operable to produce said ion generation signal, said control circuit controlling timing control of said ion inlet of said ion trap relative to production of said ion generation signal as a function of ion drift time to thereby allow passage into said ion trap only ions having said preselected ion mobility range.
- 32. The apparatus of claim 26 wherein said means for passing to said ion inlet of said MS only ions having a preselected ion mobility range includes an ion gate disposed adjacent to said ion outlet of said IMS, said ion gate actuatable between a closed position inhibiting ion passage therethrough and an open position permitting ion passage therethrough;
an ion trap having an ion inlet coupled to said ion outlet of said IMS and an ion outlet coupled to said ion inlet of said MS; said ion trap operable to collect a number of ions therein; and a control circuit operable to control actuation of said ion gate between said open and closed position thereof as a function of ion drift time to thereby allow passage through said ion inlet of said ion trap only ions having said preselected ion mobility range.
- 33. The apparatus of claim 26 wherein said MS is a Fourier Transform Ion Cyclotron Resonance (FTICR) mass spectrometer.
- 34. The apparatus of claim 33 wherein said FTICR mass spectrometer includes an ion cyclotron resonance cell in fluid communication with a source of buffer gas, said ion cyclotron resonance cell providing for an ion fragmentation environment in the presence of said buffer gas.
- 35. The apparatus of claim 26 further including an ion mass filter disposed between said means for generating a bulk of ions and said ion inlet of said IMS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge ratio.
- 36. The apparatus of claim 35 further including a collision cell disposed between said ion mass filter and said ion inlet of said IMS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 37. The apparatus of claim 26 further including a collision cell disposed between said means for generating a bulk of ions and said ion inlet of said IMS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 38. The apparatus of claim 37 further including an ion mass filter disposed between said collision cell and said ion inlet of said IMS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge ratio.
- 39. The apparatus of claim 26 wherein said means for generating a bulk of ions includes means for separating ions in time as a function of a molecular characteristic other than ion mobility and other than ion mass-to-charge ratio.
- 40. The apparatus of claim 26 further including an ion mass filter disposed between said ion outlet of said IMS and said ion inlet of said MS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge ratio.
- 41. The apparatus of claim 40 further including a collision cell disposed between said ion mass filter and said ion inlet of said MS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 42. The apparatus of claim 26 further including a collision cell disposed between said ion outlet of said IMS and said ion inlet of said MS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 43. The apparatus of claim 42 further including an ion mass filter disposed between said collision cell and said ion inlet of said MS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge ratio.
- 44. The apparatus of claim 26 further including an ion trap disposed between said ion outlet of said IMS and said ion inlet of said MS, said ion trap operable to collect therein a number of ions having said preselected ion mobility range.
- 45. The apparatus of claim 44 further including an ion-mass filter disposed between said ion trap and said ion-inlet of said MS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge ratio.
- 46. The apparatus of claim 45 further including a collision cell disposed between said ion mass filter and said ion inlet of said MS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 47. The apparatus of claim 40 further including a collision cell disposed between said ion trap and said ion inlet of said MS, said collision cell in fluid communications with a buffer gas to thereby provide an ion fragmentation environment in the presence of said buffer gas.
- 48. The apparatus of claim 47 further including an ion mass filter disposed between said collision cell and said ion inlet of said MS, said ion mass filter allowing passage therethrough only ions having a desired mass-to-charge.
- 49. The apparatus of claim 26 further including a charge neutralization instrument disposed between said ion outlet of said IMS and said ion inlet of said MS, said charge neutralization instrument operable to normalize charge states of ions provided by said IMS to a desired charge state.
- 50. The apparatus of claim 26 further including a reaction unit in fluid communication with a source of reagent gas and disposed between said ion outlet of said IMS and said ion inlet of said MS, said reaction unit providing an environment for separation of isotopes of ions provided by said IMS according to ion mass.
- 51. The apparatus of claim 44 further including a charge neutralization instrument disposed between said ion trap and said ion inlet of said MS, said charge neutralization instrument operable to normalize charge states of ions collected within said ion trap to a desired charge state.
- 52. The apparatus of claim 44 further including a reaction unit in fluid communication with a source of reagent gas and disposed between said ion trap and said ion inlet of said MS, said reaction unit providing an environment for separation of isotopes of ions collected within said ion trap according to ion mass.
- 53. A method of separating ions in time, comprising the steps of:
separating a bulk of ions in time according to a first ion mobility function; separating in time according to a second ion mobility function at least some of said ions separated in time according to said first ion mobility function that define a first preselected ion mobility range; and separating in time as a function of ion mass at least some of said ions separated in time according to said second ion mobility function that define a second preslected ion mobility range.
- 54. The method of claim 53 wherein said first ion mobility function is the same as said second ion mobility function.
- 55. The method of claim 54 wherein said first preselected ion mobility range is equal to said second preselected ion mobility range.
- 56. The method of claim 54 wherein said second preselected ion mobility range is a subset of said first preselected ion mobility range.
- 57. The method of claim 53 wherein said first ion mobility function is different than said second ion mobility function.
- 58. The method of claim 57 wherein said first ion mobility function corresponds to first length of ion drift and said second mobility function corresponds to a second length of ion drift different from said first length of ion drift.
- 59. The method of claim 57 wherein said first ion mobility function corresponds to separating said bulk of ions at a first temperature;
and wherein said second ion mobility function corresponds to separating at least some of said ions separated in time according to said first ion mobility function that define a first preselected ion mobility range at a second temperature different from said first temperature.
- 60. The method of claim 59 wherein at least one of said first and second temperatures comprises a temperature gradient along an axis parallel with ion drift.
- 61. The method of claim 57 wherein said first ion mobility function corresponds to separating said bulk of ions under the influence of a first electric field;
and wherein said second ion mobility function corresponds to separating at least some of said ions separated in time according to said first ion mobility function that define a first preselected ion mobility range under the influence of a second electric field different from said first electric field.
- 62. The method of claim 61 wherein one of said first and second electric fields is a non-zero electric field and the other of said first and second electric fields is a zero electric field.
- 63. The method of claim 61 wherein said first and second electric fields are both non-zero electric fields.
- 64. The method of claim 61 wherein at least one of said first and second electric fields is an electric field gradient along an axis parallel with ion drift.
- 65. The method of claim 57 wherein said first ion mobility function corresponds to separating said bulk of ions in the presence of a first gas;
and wherein said second ion mobility function corresponds to separating at least some of said ions separated in time according to said first ion mobility function that define a first preselected ion mobility range in the presence of a second gas different from said first gas.
- 66. The method of claim 65 wherein one of said first and second gases is a buffer gas and the other of said first and second gases is ambient air.
- 67. The method of claim 65 wherein said first gas is a first buffer gas and said second gas is a second buffer gas.
- 68. Apparatus for separating ions in time, comprising:
a first ion mobility spectrometer (IMS1) having an ion inlet and an ion outlet, said IMS1 operable to separate ions in time according to a first ion mobility function and provide only ions defining a first ion mobility range; a second ion mobility spectrometer (IMS2) having an ion inlet coupled to said ion outlet of said IMS1 and an ion outlet, said IMS2 operable to separate ions in time according to a second function of ion mobility and provide only ions defining a second ion mobility range; and a mass spectrometer having an ion inlet coupled to said ion outlet of said IMS2, said mass spectrometer operable to separate ions in time as a function of ion mass.
- 69. The apparatus of claim 68 wherein said IMS1 includes a first ion drift tube defining a first length;
and wherein said IMS2 includes a second ion drift tube defining a second length different from said first length; and wherein said first ion mobility function corresponds to said first length of said first ion drift tube and said second ion mobility function corresponds to said second length of said second ion drift tube.
- 70. The apparatus of claim 69 wherein said IMS1 includes a first temperature source operable to force an ion drift path of said IMS1 to a first temperature;
and wherein said IMS2 includes a second temperature source operable to force an ion drift path of said IMS2 to a second temperature different from said first temperature; and wherein said first ion mobility function corresponds to said first temperature and said second ion mobility function corresponds to said second temperature.
- 71. The apparatus of claim 70 wherein at least one of said first and second temperature sources is operable to define a temperature gradient along a corresponding one of said ion drift paths.
- 72. The apparatus of claim 68 wherein said IMS1 includes means for establishing a first electric field within an ion drift path of said IMS1;
and wherein said IMS2 includes means for establishing a second electric field within an ion drift path of said IMS2, said first electric field different from said second electric field; and wherein said first ion mobility function corresponds to said first electric field and said second ion mobility function corresponds to said second electric field.
- 73. The apparatus of claim 72 wherein one of said first and second electric fields is a zero electric field and the other one of said first and second electric fields is a non-zero electric field.
- 74. The apparatus of claim 72 wherein said first and second electric fields are both non-zero electric fields.
- 75. The apparatus of claim 72 wherein at least one of said first and second electric fields defines an electric field gradient along a corresponding one of said ion drift paths.
- 76. The apparatus of claim 68 wherein said IMS1 includes means for establishing a first gas within an ion drift path of said IMS1;
and wherein said IMS2 includes means for establishing a second gas within an ion drift path of said IMS2, said first gas different from said second gas; and wherein said first ion mobility function corresponds to said first gas and said second ion mobility function corresponds to said second gas.
- 77. The apparatus of claim 76 wherein one of said first and second gases is a buffer gas and the other of said first and second gases is ambient air.
- 78. The apparatus of claim 76 wherein said first and second gases are both buffer gases.
- 79. The apparatus of claim 68 further including means coupled to said ion inlet of said IMS1 for generating said bulk of ions.
- 80. The apparatus of claim 79 wherein said means for generating a bulk of ions includes means for separating ions in time as a function of a first molecular characteristic different than ion mobility and different than ion mass-to-charge ratio.
- 81. The apparatus of claim 68 wherein said MS is a Fourier Transform Ion Cyclotron Resonance (FTICR) mass spectrometer.
- 82. The apparatus of claim 81 wherein said FTICR mass spectrometer includes an ion cyclotron resonance cell in fluid communication with a source of buffer gas, said ion cyclotron resonance cell providing for an ion fragmentation environment in the presence of said buffer gas.
CROSS-REFERENCE TO RELATED U.S.APPLICATION
[0001] This is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/615,102, filed Jul. 13, 2000 and entitled ION SEPARATION INSTRUMENT, which is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/313,492, filed May 17, 1999 and entitled ION MOBLITY AND MASS SPECTROMETER, which is a continuation-in-part of U.S. Pat. No. 5,905,258 entitled HYBRID ION MOBILITY AND MASS SPECTROMETER.
Continuations (1)
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Parent |
09842383 |
Apr 2001 |
US |
Child |
10704742 |
Nov 2003 |
US |
Continuation in Parts (1)
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08867245 |
Jun 1997 |
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09842383 |
Apr 2001 |
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