Claims
- 1. A method for manufacturing a gating grid for a charged particle stream, the gating grid comprising a first and second set of electrically isolated, equally spaced wires that lie in the same plane, the respective sets of wires to be applied to alternate potentials, the method comprising the steps of:
selecting an insulating substrate material to serve as a frame for a gating grid; patterning a set of conductive portions on opposing sides of a hole formed in the substrate; aligning a section of wire from a conductive portion on one side of the hole, across the hole to a conductive portion on a second side of the hole; tensioning the wire section thus stretched from one side of the hole to the other side; and bonding first one side of the wire to the conductive portion on one side of the hole and then next bonding the wire to the second conductive portion on the other side of the hole.
- 2. A method as in claim 1 wherein the conductive portions are formed as a bus bar and isolating pads respectively.
- 3. A method as in claim 2 wherein along each side of the frame, a bus bar is formed outboard of a series of isolating pads, with the isolating pads formed on the inboard portion of the substrate closest to the hole.
- 4. A method as in claim 2 wherein the isolating pads are spaced at a distance which is twice the desired spacing of the grid wires.
- 5. A method according to claim 1 wherein the wires are attached to the conductive portions using a parallel gap welder.
- 6. A method as in claim 1 wherein the substrate is formed from alumina.
- 7. A method as in claim 1 wherein the conductive portions are defined on the substrate by the steps of:
depositing a metal; and defining a pattern by a process selected from a group consisting of a chemical etch process, a lift-off process, and a physical mask during the metal deposition step.
- 8. A method as in claim 7 wherein the step of depositing a metal film is carried out through application of an adhesion layer followed by deposition of the metal.
- 9. A method of fabricating a gating grid for use in a particle beam measurement device, the gating grid having a first and second set of parallel spaced wires for providing an electric potential to the grid, the method comprising the steps of:
providing an insulating substrate having a hole cut in the center portion thereof; patterning a conductive layer on the top portion of the substrate, the conductive layer providing on each side of the hole a first series of conductive pads spaced at twice the distance of the resulting desired grid wire spacing, the conductive pads located on the inboard side of the frame closest to the hole and also defining a bus bar running in parallel with the conductive pads positioned outboard of the conductive pads; providing a wire portion with controlled tension for:
aligning a wire across the substrate from one side of the hole to the other side; bonding the wire to a center of a respective one of the pads at one side of the hole; bonding the wire to a bus bar on the opposite side of the frame; breaking the end of the wire; stretching the wire from a pad on the second side of the frame across the hole to the bus bar on the first side of the frame; and bonding the wire to each of the respective pad and bus bar.
- 10. A method as in claim 9 wherein the width of the bus bar is formed such that it matches a desired characteristic impedance of circuitry used to drive voltages to the grid.
- 11. A gating grid comprising:
an insulating substrate that serves as a frame for the sets of wires, the insulating substrate having an opening formed in an interior portion thereof; patterning a set of conductive portions on opposing sides of the hole formed in the substrate, the conductive portions comprising
at least two conductive terminating pads formed on each side of the frame; at least two bus bars, one bus bar located on each side of the opening adjacent the terminating pads; and the wires connected to the terminating pads and the bus bars in a predetermined pattern to provide two separate sets of spaced apart wires of different potential.
- 12. A gating grid as in claim 11 wherein the pads formed on each side of the opening serve as contact points for one end of a wire.
- 13. A gating grid as in claim 12 wherein the pads serve as electrically open termination points for the ends of the grid wires that are not connected to the bus bars.
- 14. A gating grid as in claim 11 wherein the pads are alternately and evenly spaced along each side of the opening.
- 15. A grid as in claim 11 wherein the pads are located closest to the opening, inboard of the bus bars.
- 16. A grid as in claim 11 wherein the bus bars serve as interconnect wires that belong to a given wire set.
- 17. A grid as in claim 11 wherein the substrate is formed of a ceramic.
- 18. A grid as in claim 11 wherein the opening is rectangular.
- 19. A grid as in claim 11 wherein the impedance of the bus bars matches that of a driving electronic component.
- 20. A grid as in claim 11 wherein the bus bars are arranged for termination by a terminating resistor.
- 21. A grid as in claim 11 wherein the bus bars are designed to prevent the reflection of pulses propagating across the grid structure.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of a prior U.S. Provisional Patent Application Serial No. 60/296,850 filed Jun. 8, 2001 entitled “Method For Enhancement Of Electron Spectrometer Operation Using Maximum Likelihood Spectral Estimation Techniques,” the entire teachings of which are hereby incorporated by reference.
Continuations (1)
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Number |
Date |
Country |
Parent |
60296850 |
Jun 2001 |
US |
Child |
10165851 |
Jun 2002 |
US |