Claims
- 1. Apparatus for the collection and focusing of gas-phase ions or particles or droplets or combinations thereof, at or near atmospheric pressure, the apparatus comprising:a. a dispersive source of ions; b. a lens populated with a plurality of openings through which said ions pass unobstructed into a focusing region, said lens consisting of an insulating body of material, said insulating body having a topside and an underside, said insulating body has a layer of metal laminated on said topside and said underside that are contiguous with said insulating body, said metal laminate on said topside of said insulating body is adjacent to said ion source, said metal laminates being supplied with attracting electrostatic direct current potentials by connection to a voltage supply, and generating an electrostatic field between said source of ions and said metal laminates; c. a target surface, downstream of said lens for receiving said ions, said target surface held at a higher strength electrostatic direct current potential by connection to said voltage supply, and generating an electrostatic field between said metal laminates of said lens and said target surface, which has field lines that are concentrated on a relatively small cross-sectional area of said target surface; d. an funnel lens or electrode sandwiched between said lens and said target surface for focusing said ions exiting into said focusing region through said openings in said lens into a deep-well region interposed between said funnel lens and said target, said funnel lens held at an electrostatic direct current potential, whereby electrostatic field lines are focused through a central opening in said funnel electrode and towards a small cross-sectional area on said target surface, thereby focusing approximately all said ions onto said small cross-sectional area.
- 2. The apparatus in claim 1 wherein said openings in said lens are at least 0.1× in diameter as said central opening in said funnel electrode.
- 3. The apparatus as in claim 1 wherein said target surface for receiving said ions, has a target aperture or tube with said electrostatic field lines concentrated on a relatively small cross-sectional area of said target aperture or opening of said target tube.
- 4. The apparatus as in claim 3 wherein said target tube comprises a conductive end of a capillary tube.
- 5. The apparatus as in claim 3 further including an analytical apparatus in communication with said target aperture or tube, wherein said target aperture or tube is interposed between said funnel electrode and said analytical apparatus, said small cross-sectional area of ions being directed through said target aperture or said opening of said target tube into said analytical apparatus.
- 6. The apparatus as in claim 5 wherein said analytical apparatus comprises a mass spectrometer or an ion mobility spectrometer or a combination thereof.
- 7. The apparatus of claim 1 wherein said funnel electrode is held at the same electric potential as said metal laminate on said underside of said insulating body of said lens.
- 8. The apparatus as in claim 1 wherein said gas-phase ions are formed by means of atmospheric or near atmospheric ionization.
- 9. The apparatus as in claim 8 wherein said atmospheric or near atmospheric ionization source is comprised of an electrospray, atmospheric pressure chemical ionization, atmospheric laser desorption, photoionization, discharge ionization, inductively coupled plasma ionization source, or a combination thereof.
- 10. The apparatus of claim 8 wherein said atmospheric or near atmospheric ionization source is made up of a plurality of said atmospheric or near atmospheric ion sources operated simultaneously or sequentially.
- 11. The apparatus of claim 1, wherein said target surface, is made up of a plurality of target apertures or tubes aligned with a plurality of focal points, said multiple focal points resulting from mechanical variations of said funnel electrode's position, shape, or a combination thereof; ions or charged particles focused and concentrated at said focal points for collection or passed through openings in said target apertures or tubes for analysis.
- 12. The apparatus in claim 1 further including an ion source cylindrical wall or electrode surrounding the circumference of said lens; said cylindrical electrode held at an electrostatic potential the same or slightly above the potential on said metal laminate on topside of said insulating body adjacent to said source of ions, said cylindrical electrode functioning to shield said metal laminate on the topside of said lens from high electrostatic fields found in some needle containing atmospheric or near atmospheric ion source regions that suppress electrostatic field penetration from said metal laminate on the underside of said insulating body into said ion source regions.
- 13. The apparatus in claim 1 including a first gas supplied into said deep-well region between said target surface and said funnel lens, or into said focusing region between said funnel electrode and said lens whereby substantially all said gas flows into said focusing region and through said openings in said lens into said ion source region assisting the focusing of said ions into said openings in said lens, as said ions moved from said ion source region toward said lens.
- 14. The apparatus in claim 1 further including a second gas supplied into said ion source region, whereby substantially all said gas flows into said ion source region through said lens, assisting the focusing of said ions as they exit said openings in said lens into said focusing region.
- 15. The apparatus in claim 1 further including a gas supplied between said metal laminates in said lens, whereby substantially all said gas flows through said openings in said metal laminates on topside and underside, assisting the focusing of said ions as they enter and exit said openings.
- 16. The apparatus in claim 1 further including a gas exhaust between said lens and said funnel electrode for evacuating gas, whereby at least some of said gas in said focusing region flows into said gas exhaust.
- 17. Apparatus for the collection and focusing of an aerosol of gas-phase charged particles or droplets from an atmospheric or near atmospheric pressure ion source, the apparatus comprising:a. a dispersive source of said charged particles or droplets; b. a laminated lens populated with a plurality of openings through which said aerosol of charged particles pass unobstructed into a focusing region, said lens having a topside and an underside, said lens consisting of a central electrode, said central electrode is laminated on both sides with alternating layers of insulating material and metal laminate, said insulating material is contiguous with said central electrode and said metal laminates, said metal laminate on the topside of said lens is downstream of said source, said central electrode and metal laminates supplied with attracting electric potentials, and generating an electric field between said atmospheric ionization source and said metal laminate on the top side of said lens; c. a target surface downstream of said lens for receiving said charged particles, said target surface being supplied with an ion-attracting and higher strength electrostatic potential, and generating an electrostatic field between said metal laminate on the underside of said lens and said target surface whereby electrostatic field lines are concentrated to a small cross-sectional area on said target surface; d. an funnel lens or electrode disposed between said metal laminate on underside of said lens and said target surface for focusing said charged particles in said focusing region into a deep-well region, said funnel lens being supplied with an electrostatic direct current potential, whereby approximately all said charged particles in said focusing region are focused into said deep-well region and onto said target surface; e. a first gas supplied into said deep-well region between said target surface and said funnel electrode, whereby substantially all said gas flows into said focusing region; f. a second gas supplied into said ion source region, whereby substantially all said gas flows into said ion source; g. a gas exhaust for evacuating said gases in said focusing region, whereby at least some of said gas flows into said gas exhaust.
- 18. The apparatus of claim 17 wherein said electric potential of said central electrode is a combination of radio frequency (RF) and direct current (DC) voltages.
- 19. The apparatus of claim 17 wherein said atmospheric or near atmospheric ionization source is comprised of an electrospray, atmospheric pressure chemical ionization, atmospheric laser desorption, photoionization, discharge ionization, or inductively coupled plasma ionization source.
- 20. The apparatus of claim 17 wherein said atmospheric or near atmospheric ionization source is made up of a plurality of sources.
- 21. The apparatus of claim 17 wherein said target surface is made up of a plurality of targets whereby position and time dependence of focal points of said small cross-sectional area are determined by variation in said inner field-shaping electrode's geometry, position, potential, or a combination thereof.
- 22. Method for the transfer of charged particles or ions or combination thereof from a highly dispersive area or ion source at or near atmospheric pressure and focusing approximately all said charged particles or ions into an inlet aperture for gas-phase ion analysis, the method comprising:a. providing electric urging to said charged particles or ions with electric fields provided by a laminated lens with alternating laminates of insulating and metal layers, populated with a plurality of openings contiguous with said laminates, metal laminates having ion drawing electric potentials, such that electrostatic field lines between said ion source and said metal laminates are concentrated into said openings; b. transmitting approximately all said charged particles or ions from said ion source through said openings into a focusing region with electric fields generated between said metal laminates, wherein said openings possess a low depth aspect ratio, a high openness aspect ratio, and a high electric potential ratios between the said metal laminates; c. providing electrostatic focusing to said charged particles or ions exiting said openings into said focusing region with a funnel lens or electrode focusing approximately all said ions in said focusing region into a deep-well region through a central opening in said funnel electrode, and directed towards said inlet aperture whereby approximately all said ions flow into a small cross-sectional area or focal point at the entrance of said inlet aperture.
- 23. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive ion source for gas-phase ion analysis, said laminated lens is comprised of a central insulating laminate, said central insulating laminate having a topside and underside, said central insulating laminate has a layer of metal laminated on said topside and underside that are contiguous with said central insulating laminate whereby a substantial fraction of said charged particle or ions or combination thereof are transmitted through said openings into said focusing region.
- 24. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive source for gas-phase ion analysis, said laminated lens is comprised of a central metal layer or laminate, said central metal laminate having a topside and underside, said central metal laminate has a layer of insulating material laminated on said topside and underside that are contiguous with said central metal laminate, in addition a set of metal laminates are laminated on said insulating laminates forming alternating layers of metal and insulating laminates on said central metal layer whereby a substantial fraction of said charged particle or ions or combination thereof are transmitted or not through said openings in said laminated lens into said focusing region by adjusting the electric potential, direct current (DC), varying current (RF), or a combination thereof, of said central metal laminate.
- 25. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive source for gas-phase ion analysis, comprises said inlet aperture at said focal point so that a substantial fraction of ions or particles at said focal point are transmitted through said inlet aperture to an analytical system such as a mass spectrometer or ion mobility spectrometer or a combination thereof.
- 26. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive sources for gas-phase ion analysis, said inlet aperture comprises a capillary inlet of an atmospheric pressure interface so that a substantial fraction of said ions or particles at said focal point are transmitted to a mass spectrometer or ion mobility spectrometer or a combination thereof.
- 27. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive sources for gas-phase ion analysis, comprises a plurality of said inlet apertures so that a substantial fraction of said ions at said focal points are transmitted to more than one gas-phase ion analyzer.
- 28. The method of claim 22, wherein providing the transfer of said charged particles or ions from said dispersive sources for gas-phase ion analysis, comprises a plurality of dispersive sources of said ions so that more than one said ion source may be sampled and a substantial fraction of said ions transmitted to said gas-phase ion analyzer.
- 29. The method of claim 22 further comprising feeding a gas between said inlet aperture and said funnel electrode into said deep-well region, whereby approximately all said gas passes into said focusing region and through said plurality of holes in said laminated lens into said ion source region, preventing a substantial fraction of larger particles or droplets, charged or uncharged or a combination thereof, from said ion source region from impacting on said laminated lens and possibly passing through said laminated lens in said focusing region.
- 30. Method for the transfer and focusing of charged particles or ions or combination thereof from a highly dispersive area or ion source at or near atmospheric pressure through a laminated lens, focusing approximately all said charged particles or ions into an inlet aperture for gas-phase ion analysis, the method comprising:a. providing electric and viscous focusing to said charged particles or ions by said laminated lens with alternating laminates of insulating and metal layers, said laminated lens populated with a plurality of openings or conduits contiguous with said laminates, said electric focusing provided by metal laminates, while said viscous focusing provided by a flow of gas flowing through said openings into said ion source, such that approximately all said charged particles or ions are focused into said openings; b. transmitting approximately all said charged particle or ions through said openings into a focusing region downstream of said lens by means of electric and viscous focusing, said electric focusing provided by electric fields generated between said metal laminates and said inlet aperture, while said viscous focusing provided by gas flowing through said openings into said focusing region; c. focusing approximately all said charged particle and ions in said focusing region into a small cross-sectional area or focal point at the entrance of said inlet aperture.
CROSS-REFERENCE TO RELATED APPLICATION
This application claims the benefit of Provisional Patent Application Ser. No. 60/384,869, filed 2002, Jun. 1st. This application is related to Provisional Patent Application Ser. No. 60/210,877, filed Jun. 9th, 2000 now application Ser. No. 09/877,167, Filed Jun. 8th, 2001.
GOVERNMENT SUPPORT
The invention described herein was made in the course of work under a grant from the Department of Health and Human Services, Grant Number: 1 R43 RR143396-1.
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Provisional Applications (1)
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Number |
Date |
Country |
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60/384869 |
Jun 2002 |
US |