Claims
- 1. A retarding field spectrometer in combination with a modulatable and deflectable electron beam generator which generator has a pole piece with an orifice from which said beam emanates, said spectrometer comprising in combination an array of three electron transmissable electrodes joined for mounting in the path of said beam between said pole piece and a target holder, means for individually energizing each of said electrodes with a discrete biasing voltage, means for applying a reference potential to a target in said target holder, and at least one continuous dynode electron multiplier detector of secondary electron emission comprising a cathode entryway positioned between those two of said electrodes that are situated nearest to said pole piece.
- 2. A retarding field spectrometer according to claim 1, wherein said continuous dynode electron multiplier comprises a channeltron having a horn cathode at its entryway which horn is positioned between said two electrodes with the mouth of said horn directed toward an at-rest axis of said beam.
- 3. A retarding field spectrometer according to claim 1, wherein said continuous dynode electron multiplier comprises a plurality of channeltrons each having a horn cathode at its entryway which horns are arrayed around a circle lying in a plane between and parallel to said two electrodes with the mouths of said horns directed toward the center of said circle with said center coinciding with an at-rest axis of said beam.
- 4. A retarding field spectrometer according to claim 3, wherein said channeltrons are three in number.
- 5. A retarding field spectrometer according to claim 1, wherein energizing means are coupled to said electrodes and said cathode of said continuous dynode for applying energizing electrical potential thereto, said energizing means being constructed to maintain the potential of said cathode at substantially the potential of that one of said two electrodes that is furthest from said pole piece.
- 6. A retarding field spectrometer according to claim 5, wherein a relative potential of a target that is mounted in said target holder is to be ascertained relative to a predetermined threshold potential, and wherein the mean potential at the surface of said target facing said pole piece is represented by V.sub.m, said energizing means being constructed to maintain the potentials of said electrodes such that of said three electrodes, the electrode nearest said target is at V.sub.m plus about 660 volts, the intermediate electrode is at V.sub.m minus about 3 to 4 volts, and the electrode nearest said pole piece is at V.sub.m minus about 20 volts.
- 7. A retarding field spectrometer according to claim 5, wherein the surface potential, V.sub.T, at the surface of said target facing said pole piece is to be ascertained, said energizing means being constructed to maintain the potentials of said electrodes such that of said three electrodes, the electrode nearest said target is at V.sub.m plus about 660 volts where V.sub.m is the mean potential at said surface of said target, the intermediate electrode is at a potential adjustable to V.sub.T plus a predeterminable known offset voltage, and the electrode nearest said pole piece is at V.sub.m minus about 25 volts.
- 8. A retarding field spectrometer according to claim 5, wherein said continuous dynode electron multiplier has an anode, and anode energizing means are coupled to said anode for applying energizing electrical potential thereto, said anode energizing means being constructed to maintain the potential of said anode, when energized, at a sufficient voltage positive relative to its cathode to produce a detectable signal in response to a single electron entering said entryway.
- 9. A retarding field spectrometer according to claim 1, wherein the one of said electrodes that is mounted for location nearest said pole piece comprises a fine mesh of electrically conductive material defining an array of small apertures with a central aperture larger in area than any of said small apertures, said central aperture being slightly larger in area than an area at the plane of said mesh that is traversed by said electron beam when the latter is deflected, and mounting means for said mesh for supporting said mesh with the plane of said mesh substantially normal to a beam at-rest axis and with said mesh position-adjustable in said plane in a manner to enable centering said central aperture about said beam at-rest axis.
- 10. A retarding field spectrometer according to claim 9, wherein said mounting means for said mesh comprises a mechanism for translating said mesh in a pseudo-orthogonal manner.
- 11. A retarding field spectrometer according to claim 10, wherein said mesh is stretched across an aperture in a mounting plate, said mounting plate has two additional apertures therethrough located, each at a distance from said central aperture, approximately 90.degree. apart about said central aperture, one of said two additional apertures being circular while the other is in the form of a slot, and comprising two gear driven eccentrics engaged, respectively, in said two additional apertures such that rotation of the eccentric engaging said circular aperture moves said mesh along an axis paralleling said slotted aperture while rotation of the other eccentric moves said mesh in an arc centered about said circular aperture, thereby approximating orthogonal movement.
- 12. A retarding field spectrometer according to claim 11, wherein each of said gear driven eccentrics has operatively coupled thereto a shaft driven worm drive, and means for enabling said worm drives to be selectively engaged for actuation by a driving element engageable selectively with one or the other of said worm drives.
- 13. A retarding field spectrometer according to claim 1, wherein the one of said electrodes that is mounted for location nearest said target holder comprises a fine mesh of electrically conductive material defining an array of small apertures for operation as a collector grid, said collector grid being mounted on a first support member mounted for supporting said collector grid with its plane substantially normal to a beam at-rest axis and with said collector grid is position-adjustable in its said plane in a manner to enable centering one of its apertures about said beam at-rest axis.
- 14. A retarding field spectrometer according to claim 13, wherein the one of said electrodes that is mounted intermediate the other two electrodes comprises a fine mesh of electrically conductive material defining an array of small apertures for operation as a discriminator grid, said discriminator grid having a central aperture larger in area than any of the small apertures thereof and being mounted on a second support member for said discriminator grid with its plane substantially normal to a beam at-rest axis; said second support member being united with said first support member mounting the latter for selectable movement relative to the former.
- 15. A retarding field spectrometer according to claim 14, wherein said first support member is mounted on said second support member by means providing selectable orthogonal movement of said first support member relative to said second support member.
- 16. A retarding field spectrometer according to claim 14, wherein said discriminator grid is adjustably rotatable in its own plane relative to said second support member.
- 17. A retarding field spectrometer according to claim 1, wherein said three electrodes consist, respectively, of a first, second and third screen of latticed configuration of electrically conductive material, said first screen being mounted for location nearest said pole piece and having a central aperture larger in area than any of the individual meshes of said first screen, said central aperture being slightly larger in area than the area at the plane of said first screen that is traversed by said electron beam when the latter is deflected, mounting means for said first screen for supporting said first screen with the plane of said first screen substantially normal to the beam at-rest axis and with said first screen position-adjustable in said plane in a manner to enable centering said central aperture about said beam at-rest axis; said second screen being mounted for location nearest said target holder for operation as a collector grid, said collector grid being mounted on a first support member mounted for supporting said collector grid with its plane substantially normal to the beam at-rest axis and with said collector grid position-adjustable in its said plane in a manner to enable centering one of its meshes about said beam at-rest axis; and said third screen being mounted intermediate said other two screens for operation as a discriminator grid, said discriminator grid having a central aperture larger in area than any of its individual meshes and being mounted on a second support member for supporting said discriminator grid with its plane substantially normal to the beam at-rest axis, said second support member being united with said first support member mounting the latter for selectable movement relative to the former.
- 18. A retarding field spectrometer according to claim 17, wherein said first support member is mounted on said second support member by means providing selectable orthogonal movement of said first support member relative to said second support member.
- 19. A retarding field spectrometer according to claim 18, wherein said discriminator grid is adjustably rotatable in its own plane relative to said second support member.
- 20. A retarding field spectrometer according to claim 19, wherein said first screen is stretched across an aperture in a mounting plate, said mounting plate being provided with means for securing said mounting plate adjacent said pole piece with said first screen oriented in line with said pole piece orifice, said mounting plate securing means including means for adjustably translating said mounting plate in a pseudo-orthogonal manner for said centering of said first screen central aperture, and means joining said second support member in spaced parallel relationship to said mounting plate whereby all three screen electrodes are translated simultaneously with translation of said mounting plate.
- 21. A retarding field spectrometer according to claim 17, wherein said first and second support members are disposed facing each other between said collector and discriminator grids, said support members defining respective apertures in registration with the respective grid that is supported thereby, said apertures being bounded by walls in said support members which walls are configured to establish a substantially uniform field throughout the space between said collector and discriminator grids.
- 22. A retarding field spectrometer according to claim 21, wherein said aperture boundary walls are of conical configuration diverging radially in the axial direction toward the opposite support member.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. F 33615-81-C-1567 awarded by the Department of the Air Force.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0058587 |
May 1972 |
JPX |