Claims
- 1. Apparatus for the collection, focusing, and directing of gas-phase ions or charged particles from a higher pressure region into a lower pressure region, the apparatus comprising:
a. a source of ions in said higher pressure region; b. a laminated interface populated with a plurality of openings forming an barrier between said higher and lower pressure regions through which said ions pass unobstructed, said interface comprising a flat body of insulating material having a layer of metal laminated on both sides, topside and underside, of said body that is contiguous with said body, said metal laminate on the topside of said interface is adjacent to said ion source, said laminates being supplied with individual attracting electric potentials by connection to a voltage supply generating an electrostatic field between said source of ions in said higher pressure region and said interface; c. a destination in said lower pressure region having a lower electric potential than said interface, said destination is adjacent to said metal laminate on the underside of said lens, for receiving said ions.
- 2. The apparatus of claim 1 wherein said body of said interface is composed of electrically insulating material, such as but not limited to glass or ceramic.
- 3. The apparatus of claim 1 wherein said higher pressure region is at or near atmospheric pressure.
- 4. The apparatus of claim 3 wherein said ion source region at or near atmospheric pressure is comprised of an electrospray, atmospheric pressure chemical ionization, atmospheric laser desorption-ionization, photoionization, discharge ionization, inductively coupled plasma ionization sources, or a combination thereof.
- 5. The apparatus of claim 1 wherein said higher pressure region is at pressures greater than atmospheric pressure.
- 6. The apparatus of claim 1 wherein said lower pressure region is greater than 1 torr.
- 7. The apparatus of claim 1 wherein said source of ions in said higher pressure region is comprised of an incident beam of ions from an array of capillaries, an ion optics assembly, a high-transmission perforated surface, optical lens with electromechanical translational stages, RF multi-pole or multi-plate assemblies, or combinations thereof.
- 8. The apparatus of claim 1 wherein said destination in said lower pressure region is comprised of an array of capillaries, an ion optics assembly, RF multi-pole or multi-plate assemblies, tesselated ion detector, a mass analyzer, or combinations thereof.
- 9. The apparatus of claim 1 wherein said laminated interface is populated with openings having a prescribed pattern.
- 10. Apparatus for the collection, focusing, and directing of gas-phase ions or charged particles at or near atmospheric pressure into a low pressure region, the apparatus comprising:
a. a dispersive source of said gas-phase ions; b. a laminated interface populated with a plurality of openings having a prescribed pattern through which said ions pass unobstructed, said interface comprising a flat body of insulating material having a layer of metal laminated on the topside and underside of said flat body that is contiguous with said body, said metal laminate on said topside of said interface is adjacent to said ion source, said laminates being supplied with individual attracting electric potentials by connection to a voltage supply, and generating an electrostatic field between said source of ions and said interface; c. a destination region adjacent to said metal laminate on said underside of said interface having a lower electric potential than said interface; said destination region held at a pressure lower than atmospheric pressure.
- 11. The apparatus of claim 10 wherein said prescribed pattern of said individual openings are axial symmetric with a corresponding individual detecting components of an array or tessellated detector or corresponding individual openings in an array of openings or capillaries in said destination region, whereby electric field lines between said interface and said detector or array of openings or capillaries cause ions exiting individual openings of said interface to impact on said corresponding individual detecting components or flow into said corresponding individual openings of said array of openings or capillaries.
- 12. The apparatus of claim 10 wherein said lower pressure region is greater than 1 torr.
- 13. The apparatus of claim 10 wherein said ion source region at or near atmospheric pressure is comprised of an electrospray, atmospheric pressure chemical ionization, atmospheric laser desorption-ionization, photoionization, discharge ionization, inductively coupled plasma ionization sources, a high-transmission perforated surface, optical lens with electromechanical translational stages, or a combination thereof.
- 14. Apparatus for the collection, focusing, and directing of gas-phase ions or ionic particles from a higher pressure region into a lower pressure region, the apparatus comprising:
a. a source of ions in said higher pressure region; b. a laminated interface populated with a plurality of openings having a prescribed pattern forming an interface between said higher and lower pressure regions through which said ions pass unobstructed into said lower pressure region, said interface comprising a central electrode having alternating layers of insulating and metal laminates on the topside and underside of said central electrode with said insulating laminate contiguous with said central electrode and said metal laminates, said metal laminate on said topside of said interface is downstream of said source of ions, said central electrode and metal laminates supplied with individual attracting electric potentials by connection to a voltage supply, and generating an electric field between said source of ions in said higher pressure region and said interface; c. a destination in a lower pressure region having a lower electric potential than said interface, said destination is adjacent to said metal laminate on the underside of said interface, for receiving said ions.
- 15. The apparatus of claim 14 wherein said central electrode is comprised of individual components which are individually addressable, whereby the electric potential of said individual components may be varied to control the flow of ions through the openings into said lower pressure region.
- 16. The apparatus of claim 14 wherein said source of ions in said higher pressure region is comprised of an incident beam of ions from an array of capillaries, an ion optics assembly, a high-transmission perforated surface, optical lens with electro-mechanical translational stages, RF multi-pole or multi-plate assemblies, or combinations thereof.
- 17. The apparatus of claim 14 wherein said higher pressure region is at or near atmospheric pressure.
- 18. The apparatus of claim 17 wherein said ion source region at or near atmospheric pressure is comprised of an electrospray, atmospheric pressure chemical ionization, atmospheric laser desorption-ionization, photoionization, discharge ionization, inductively coupled plasma ionization sources, or a combination thereof.
- 19. The apparatus of claim 14 wherein said destination in said lower pressure region is comprised of an array of capillaries, an ion optics assembly, RF multi-pole or multi-plate assemblies, tesselated ion detector, a mass analyzer, or combinations thereof.
- 20. Method for the transfer of charged particles or ions or combination thereof from an ion source at or near atmospheric pressure and focusing approximately all said charged particles or ions into a lower pressure region, the method comprising:
a. providing electric urging to said ions from said ion source with electric fields provided by a laminated interface of the type comprising alternating layers of insulating and metal laminates having metal laminates on topside and underside of said interface, said interface populated with openings having a prescribed pattern that are contiguous with said laminates, said metal laminates having ion drawing electric potentials such that electric field lines between said ion source and said laminated interface are concentrated into said openings; b. providing electric urging from said lower pressure region and viscous flow to said ions as they exit said openings such that both electric field and viscous or stream flow lines are directed into lower pressure region; whereby approximately all said ions are transferred from said ion source at or near atmospheric pressure into said lower pressure region through said openings for ion detection, ion mobility or mass spectral analysis, or combination thereof.
- 21. The method of claim 20 wherein providing the transfer of said ions at or near atmospheric pressure into lower pressure region, said laminated interface is comprised of an insulating base, said insulating base is sandwiched between and is contiguous with said metal laminates on topside and underside of said interface, said metal laminate on said topside is downstream of said ions source at or near atmospheric pressure, while said metal laminate on said underside is upstream or contiguous with lower pressure region, whereby approximately all said ions are transferred or not transferred through said openings into lower pressure region by adjusting electrostatic urging, direct current (DC), of said central metal laminate.
- 22. The method of claim 20 wherein providing the transfer of said ions at or near atmospheric pressure into lower pressure region, said laminated interface is comprised of a central metal layer or laminate having a topside and underside, said central metal laminate has a layer of insulating material laminated on said topside and underside of said central metal laminate that are contiguous with said central metal laminate, in addition said insulating laminates are contiguous with said metal laminates on topside and underside of said interface, whereby a substantial fraction of said ions are transferred or not through said openings into lower pressure region by adjusting said electric urging, direct current (DC), varying current (RF), or a combination thereof, of said central metal laminate.
- 23. Method for increasing the conductance of charged particles or ions or combination thereof from a high pressure ion source through a series of parallel openings into a lower pressure region, the method comprising:
a. providing a electric urging to said ions from said ion source with electric fields provided by a laminated interface of the type comprising alternating layers of insulating and metal laminates having metal laminates on topside and underside of said interface, said interface populated with a prescribed pattern of said parallel openings contiguous with said laminates, said metal laminates having ion drawing electric potentials such that electric field lines between said ion source and said laminated interface are concentrated into said openings; b. providing electric urging from said lower pressure region and concurrent viscous flow to said ions as they exit said openings into lower pressure region such that both electric field and viscous or stream flow lines are directed into said lower pressure region; c. maintaining said lower pressure region at or near atmospheric pressure but not less than 1 torr; whereby approximately all said ions are transferred from said high pressure ion source into said lower pressure region while limiting the conductance of gas from said high pressure source through said openings into lower pressure region.
- 24. The method of claim 23 wherein said lower pressure region is comprised of ion optic assemblies, RF multi-pole or multi-plate assemblies, an ion mobility or mass spectrometer, or combination thereof.
- 25. Method for accepting the trajectories of ions and charged particles or combination, the method comprising:
a. providing a high pressure ion source of the type comprising an array of openings or capillaries; b. providing a electric urging to said ions from said ion source with electric fields provided by a laminated interface of the type comprising alternating layers of insulating and metal laminates having metal laminates on topside and underside of said interface, said interface populated with a prescribed pattern of openings contiguous with said laminates, said prescribed pattern matching the pattern of said array of said ion source, such that electric field lines between said individual openings in said array in said ion source and said laminated lens are concentrated into individual openings in said interface in a prescribed pattern; c. providing electric urging from said lower pressure region and concurrent viscous flow to said ions as they exit said openings such that both electric filed and viscous or stream flow lines are directed into said lower pressure region; whereby approximately all said ions in a prescribed pattern are transferred from said high pressure ion source, through said pattern openings in said interface and into said lower pressure region in a prescribed pattern.
- 26. The method of claim 25 wherein said lower pressure region is comprised of an array of capillaries, an ion optics assembly, RF multi-pole or multi-plate assemblies, tessellated ion detector, an ion mobility or mass analyzer, or combinations thereof.
- 27. Method for projecting the trajectories of ions and charged particles or combination onto an inlet array of openings or capillaries, the method comprising:
a. providing a high pressure ion source; b. providing a electric urging to said ions from said ion source with electric fields provided by a laminated interface of the type comprising alternating layers of insulating and metal laminates having metal laminates on topside and underside of said interface, said interface populated with a prescribed pattern of openings contiguous with said laminates, such that electric field lines between said ion source and said laminated interface are concentrated into said prescribed openings in said interface; c. providing electric urging from said lower pressure region and concurrent viscous flow to said ions as they exit said openings such that both electric field and viscous or stream flow lines are directed into said lower pressure region as a prescribed pattern; whereby approximately all said ions flow in a prescribed pattern at the individual openings in an inlet array of openings or capillaries.
- 28. The method of claim 27 wherein said inlet array of openings or capillaries is the inlet to an ion mobility spectrometer, vacuum system of a mass spectrometer, or combination thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is entitled to the benefit of Provisional Patent Application Ser. No. 60/476,582, filed 2003, June 7. This application is related to Provisional Patent Application Ser. No. 60/210,677, filed 2000, June 9 and patent application Ser. No. 09/877,167, filed 2001, June 8, now U.S. Pat. No. 6,744,041, issued 2004, June 1; Provisional Patent Application Ser. No. 60/293,648, filed 2001, May 26, now patent application Ser. No. 10/155,151, filed 2002, May 25; Provisional Patent Application Ser. No. 60/384,869, filed 2002, June 1, now patent application Ser. No. 10/499,147, filed 2003, May 31; Provisional Patent Application Ser. No. 60/410,653, filed 2002, September 13, now patent application Ser. No. 10/661,842, filed 2003, September 12; Provisional Patent Application Ser. No. 60/419,699, filed 2002, October 18, now patent application Ser. No. 10/688,021, filed 2003, October 17; and Provisional Patent Application Ser. No. 60/476,576, filed 2003, June 7. Each of the above identified related applications are incorporated herein by reference.
FEDERALLY FUNDED RESEARCH
[0002] The invention described herein was made with the United States Government support under Grant Number: 1 R43 RR143396-1 from the Department of Health and Human Services. The U.S. Government may have certain rights to this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60476582 |
Jun 2003 |
US |