US2872721A - Electron image multiplier apparatus - Google Patents

Electron image multiplier apparatus Download PDF

Info

Publication number
US2872721A
US2872721A US652295A US65229557A US2872721A US 2872721 A US2872721 A US 2872721A US 652295 A US652295 A US 652295A US 65229557 A US65229557 A US 65229557A US 2872721 A US2872721 A US 2872721A
Authority
US
United States
Prior art keywords
dynodes
dynode
cells
stack
tubes
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US652295A
Inventor
Mcgee James Dwyer
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from GB1111756A external-priority patent/GB813581A/en
Application filed by Individual filed Critical Individual
Application granted granted Critical
Publication of US2872721A publication Critical patent/US2872721A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J43/00Secondary-emission tubes; Electron-multiplier tubes
    • H01J43/04Electron multipliers
    • H01J43/06Electrode arrangements
    • H01J43/18Electrode arrangements using essentially more than one dynode
    • H01J43/22Dynodes consisting of electron-permeable material, e.g. foil, grid, tube, venetian blind
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J29/00Details of cathode-ray tubes or of electron-beam tubes of the types covered by group H01J31/00
    • H01J29/02Electrodes; Screens; Mounting, supporting, spacing or insulating thereof
    • H01J29/023Electrodes; Screens; Mounting, supporting, spacing or insulating thereof secondary-electron emitting electrode arrangements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J31/00Cathode ray tubes; Electron beam tubes
    • H01J31/08Cathode ray tubes; Electron beam tubes having a screen on or from which an image or pattern is formed, picked up, converted, or stored
    • H01J31/50Image-conversion or image-amplification tubes, i.e. having optical, X-ray, or analogous input, and optical output
    • H01J31/506Image-conversion or image-amplification tubes, i.e. having optical, X-ray, or analogous input, and optical output tubes using secondary emission effect
    • H01J31/507Image-conversion or image-amplification tubes, i.e. having optical, X-ray, or analogous input, and optical output tubes using secondary emission effect using a large number of channels, e.g. microchannel plates

Definitions

  • each dynode comprising a set of inclined plates parallel to each other, transverse'to the path of electron flow and inclined so as to intercept all, or nearly all, electrons and another set of plates at right angles to the inclined plates and dividing the spaces between the inclined plates into cells and minimising lateral dispersion of the electrons.
  • Adjacent dynodes are set in reverse position to each other so that the inclined plates of one dynode are in side view at angles which are equal and opposite to the angles of the inclined plates of the other dynode, thereby forming a zig-zag path for the electrons through the pack of dynodes.
  • the dynodes may be mounted in a highly evacuated glass envelope having a flat window at one end on the inner surface of which is the photo-electric surface, while the dynodes are mounted in the envelope, means being provided between two ends for accelerating and focussing the electrons.
  • a large potential dilference will be provided between the photo-electric surface and the first dynode, and a further increase of potential on successive dynodes, and between the last dynode and a fiuorescent screen on which the final multiplied image is viewed.
  • FIG 1 shows an electron image multiplier apparatus made in accordance with the invention
  • Figures 2 to 5 show stages in the method of making dynodes
  • Figure 6 shows the front view of a dynode
  • the light rays forming the image to be multiplied are focussed on to the surface 11 from which photo-electrons are liberated which are in turn focussed by electro-magnetic means (not shown) to form an image on the first of a series of dynodes 13.
  • the dynodes are made by assembling a stack of nickel tubes 14 as shown in Figure 2.
  • the tubes 14 are about 0.002 to 0.003 inch wall thickness and rectangular crosssection, say at x 20! very precisely.
  • the dimension d for the individual tube may be 1 mm.
  • the dimension D for the stack may be 1 inch.
  • the tubes may be made A by forming cylindrical tubes to a rectangular cross-section cooling.
  • the stack is then removed from the jig 16 and, clamped on to the bed of a milling machine and sawn into slices with a Carborundum cutting wheel having a thickness of 0.01 to 0.02 inch.
  • the planes 22, 23 of cutting these slices in planes perpendicular to the surfaces of the narrow sides and at approximately 45 to.
  • the surfaces of the wide sides so that the cells formed by the tube sections are of approximately square crosssection.
  • the sides 22 of the tubes and stack are the same length as the sides 23 i. e. the cells made by the sectioned tubes are square and the slices are also square.
  • Each slice will form a dynode.
  • the assembly may be embedded solidly in say Perspex" (Registered Trademark) which fills the tubes and so prevents distortion while it is being sawn into slices; the Perspex being then dissolved out.
  • Perspex Registered Trademark
  • wire 27 e. g. copper wire of 0.001 inch diameter
  • the wire is wound in any suitable manner e. g. to form one strand across each cell in each direction. Alternatively if desired the wire may be arranged diagonally as shown in Figure 12.
  • the wire 27 may be passed across the mouth of a cell, through the cell and around the plate structure, across the mouth of the next cell, and so on, as shown in Figure 5.
  • the wire may be looped around the plates at their intersecting positions e. g. at every junction or at each second, third or fourth junction. It is not easy to attach a conventional metal mesh to such a structure in such a way that it cannot lift or buckle suificiently during processing to cause short-circuits between dynodes, but by the improved method above described the mesh can be tightly fixed so as not to lift from the dynode.
  • the dynode is then coated with wax except at positions where the wire crosses the edges of the cells.
  • the dynode is then subjected to a metal plating process so that the deposited metal plating fastens the wire to the edges of the cells.
  • the wire strands are then severed between the dynode and the plate 25.
  • the dynode now consists of a set of cells which as shown in Figures 6, 7 and 8 consist of a set of plates 28 parallel to each other and inclined to the general plane of the dynode and another set of plates 29 at right angles to the inclined plates and dividing the spaces between the inclined plates into cells.
  • dynodes may be made with 25 or more apertures per inch and hence for a 100 line picture (10 picture points) which represents very useful image definition, dynodes 4 x 4" would be required.
  • the construction of dynodes of large cross-section may become diflicult.
  • the dynodes may therefore be made in convenient cross-section, e. g. l" x 1", and then assembled to form larger areas such as 4" X 4", which would be formed from 16 sections each 1" x1".
  • the dynodes are now mounted with alternate dynodes reversed in position as compared with their original positions in the stack of tubes. That is to say in the original stackthe planes 31, 33 in Figure 9 were adjacent each other whereas after reversal the planes 31, 32 are adjacent each other so that the cells in these dynodes are at equal but opposite angles to the general planes of the dynodes so that zig-zag channels extend through a pack of dynodes.
  • the aforesaid insulating cement may be filled into some cells e. g. the four corner cells to hold the pack together.
  • the adjacent edges of the plates of adjacent dynodes e. g. edges 31, 32, Figure 9,, may be provided with a coating 34 ( Figure 10) of electrically insulating material.
  • the dynodes are then mounted in contact with each other, or in contact with a wire mesh between them. This arrangement ensures that secondary electrons originating in one cell of one dynode will pass into one cell only of the next dynode and not stray laterally into neighbouring cells. A clear image definition is accordingly maintained.
  • the insulating material may be provided on the edges on the side of the dynode from which secondary electrons emerge and may form a thin ridge.
  • the material may be an enamel such as can be made from a mikture of potassium silicate and lumina. powder. This may be made of the'consistency of thin cream and smeared on a flat surface of a fairly soft rubber pad. The surface of the rubber surface, which causes the liquid enamel mirrture to gravitate towards the metal edges. 7
  • the enamel may be slightly conductive to provide a gradual change in the electric field.
  • the dynodes may be arranged so that the cell edges of one dynode meet the corresponding edges of the cells in the adiacent dynode so that looking in the direction of the electron beam one cannot see through the pack, alternatively the adjacent inclined walls of the cells may be spaced sutficiently apart from each other as to leave small gaps through the pack of about 0.005 to 0.02 inch to receive feeler gauges 40 through say four sets of cells, as shown in Figure 11 which may be left until after the cement has set. In this way the feeler gauges may be used to achieve accurate alignment of all the dynodes in a stack. Alternatively the small gaps make it easy to align the dynodes by optical means.
  • a method of forming a dynode which comprises assembling rectangular section thin walled tubes into a stack, said tubes having two opposite sides of equal length and longer than the other sides which are also of equal length, cutting a slice from said stack in a direction parallel to the long sides and at such an angle to the short sides that the cross-section of the cells formed by the tube sections is approximately square.
  • a method of making a set of dynodes which comprises cutting slices from a stack to form a series of dynodes by the method claimed in claim 1, reversing alternate slices and mounting them in a stack to form zig-zag paths of square cross-section for the electrons,

Description

Feb. 10, 1959 J. D. McGEE ELECTRON IMAGE MULTIPLIER APPARATUS Filed April 11, 195'! 3 Sheets-Sheet 1 5 Sheets-Sheet 2 FIG.
Feb. 10, 1959 J. D. M GEE ELECTRON IMAGE MULTIPLIER APPARATUS Filed April 11, 1957 3 Sheets-Sheet 3 FIG. 7.
FIG. 8.
assembled so that when out into slices, the alternate slices can be reversed to form a set of dynodes and the square cells of one dynode will accurately match the square cells of adjacent dynodes.
United States Patent '1 2,872,72l, ELECTRON IMAGE MULTIPLIER APPARATUS 5 James Dwyer McGee, London, England Application April 11, 1957, Serial No. 652,295 Claims priority, application Great Britain April 12, 1956 7 Claims. ('Cl. 29-2514) This invention relates to electron image multiplier exp paratus and the object of the invention is to provide improvements in multiplier apparatus made in accordance with the principles described in the specification of British patent application No. 15,508 of 1953. In said apparatus light rays forming the image to be multiplied are focussed on to a transparent photo-electric surface from which they liberate photo-electrons which are in turn focussed to form an image on the first of a series of dynodes, i. e. electrodes from which secondary electrons are liberated in successively increasing numbers, each dynode comprising a set of inclined plates parallel to each other, transverse'to the path of electron flow and inclined so as to intercept all, or nearly all, electrons and another set of plates at right angles to the inclined plates and dividing the spaces between the inclined plates into cells and minimising lateral dispersion of the electrons.
Adjacent dynodes are set in reverse position to each other so that the inclined plates of one dynode are in side view at angles which are equal and opposite to the angles of the inclined plates of the other dynode, thereby forming a zig-zag path for the electrons through the pack of dynodes.
The dynodes may be mounted in a highly evacuated glass envelope having a flat window at one end on the inner surface of which is the photo-electric surface, while the dynodes are mounted in the envelope, means being provided between two ends for accelerating and focussing the electrons. A large potential dilference will be provided between the photo-electric surface and the first dynode, and a further increase of potential on successive dynodes, and between the last dynode and a fiuorescent screen on which the final multiplied image is viewed.
According to the present invention a dynode is made The tubes will be accurately pre-formed and accurately The above and other features of the invention will now be described by way of example with reference to the accompanying diagrammatic drawings wherein:
Figure 1 shows an electron image multiplier apparatus made in accordance with the invention;
Figures 2 to 5 show stages in the method of making dynodes;
Figure 6 shows the front view of a dynode;
electric surface or cathode 11 at one end and a screen 12 at the other end. The light rays forming the image to be multiplied are focussed on to the surface 11 from which photo-electrons are liberated which are in turn focussed by electro-magnetic means (not shown) to form an image on the first of a series of dynodes 13.
The dynodes are made by assembling a stack of nickel tubes 14 as shown in Figure 2. The tubes 14 are about 0.002 to 0.003 inch wall thickness and rectangular crosssection, say at x 20! very precisely. The dimension d for the individual tube may be 1 mm. and the dimension D for the stack may be 1 inch. The tubes may be made A by forming cylindrical tubes to a rectangular cross-section cooling. The stack is then removed from the jig 16 and, clamped on to the bed of a milling machine and sawn into slices with a Carborundum cutting wheel having a thickness of 0.01 to 0.02 inch. The planes 22, 23 of cutting these slices in planes perpendicular to the surfaces of the narrow sides and at approximately 45 to. the surfaces of the wide sides so that the cells formed by the tube sections are of approximately square crosssection. Thus the sides 22 of the tubes and stack are the same length as the sides 23 i. e. the cells made by the sectioned tubes are square and the slices are also square. Each slice will form a dynode. If desired the assembly may be embedded solidly in say Perspex" (Registered Trademark) which fills the tubes and so prevents distortion while it is being sawn into slices; the Perspex being then dissolved out.
Each slice is clamped to a plate 25 (Figure 4) notched,
at its edges to receive wire 27 (e. g. copper wire of 0.001 inch diameter) which is to form a screen between each pair of adjacent dynodes. The wire is wound in any suitable manner e. g. to form one strand across each cell in each direction. Alternatively if desired the wire may be arranged diagonally as shown in Figure 12.
If desired the wire 27 may be passed across the mouth of a cell, through the cell and around the plate structure, across the mouth of the next cell, and so on, as shown in Figure 5. The wire may be looped around the plates at their intersecting positions e. g. at every junction or at each second, third or fourth junction. It is not easy to attach a conventional metal mesh to such a structure in such a way that it cannot lift or buckle suificiently during processing to cause short-circuits between dynodes, but by the improved method above described the mesh can be tightly fixed so as not to lift from the dynode.
The dynode is then coated with wax except at positions where the wire crosses the edges of the cells. The dynode is then subjected to a metal plating process so that the deposited metal plating fastens the wire to the edges of the cells. The wire strands are then severed between the dynode and the plate 25.
The solder melts and runs down between the tubes which are thus soldered together on The dynode now consists of a set of cells which as shown in Figures 6, 7 and 8 consist of a set of plates 28 parallel to each other and inclined to the general plane of the dynode and another set of plates 29 at right angles to the inclined plates and dividing the spaces between the inclined plates into cells. With this technique such dynodes may be made with 25 or more apertures per inch and hence for a 100 line picture (10 picture points) which represents very useful image definition, dynodes 4 x 4" would be required. The construction of dynodes of large cross-section may become diflicult. The dynodes may therefore be made in convenient cross-section, e. g. l" x 1", and then assembled to form larger areas such as 4" X 4", which would be formed from 16 sections each 1" x1".
The dynodes are now mounted with alternate dynodes reversed in position as compared with their original positions in the stack of tubes. That is to say in the original stackthe planes 31, 33 in Figure 9 were adjacent each other whereas after reversal the planes 31, 32 are adjacent each other so that the cells in these dynodes are at equal but opposite angles to the general planes of the dynodes so that zig-zag channels extend through a pack of dynodes. The aforesaid insulating cement may be filled into some cells e. g. the four corner cells to hold the pack together.
If desired the adjacent edges of the plates of adjacent dynodes e. g. edges 31, 32, Figure 9,, may be provided with a coating 34 (Figure 10) of electrically insulating material. The dynodes are then mounted in contact with each other, or in contact with a wire mesh between them. This arrangement ensures that secondary electrons originating in one cell of one dynode will pass into one cell only of the next dynode and not stray laterally into neighbouring cells. A clear image definition is accordingly maintained. The insulating material may be provided on the edges on the side of the dynode from which secondary electrons emerge and may form a thin ridge. The material may be an enamel such as can be made from a mikture of potassium silicate and lumina. powder. This may be made of the'consistency of thin cream and smeared on a flat surface of a fairly soft rubber pad. The surface of the rubber surface, which causes the liquid enamel mirrture to gravitate towards the metal edges. 7
On removing the dynode vertically from the rubber pad it will take away a narrow rim of cement along each edge which on drying and baking becomes a hard insul'ating enamel. It now becomes practicable to place each dynode directly on its neighbour, align the respective apertures accurately and then cement it solidly in place by means of the enamel. The rim of insulating enamel or cement will preserve insulation between dynodes while at the same time the walls of; successive dynode apertures are substantially in contact.
The enamel may be slightly conductive to provide a gradual change in the electric field. The dynodes may be arranged so that the cell edges of one dynode meet the corresponding edges of the cells in the adiacent dynode so that looking in the direction of the electron beam one cannot see through the pack, alternatively the adjacent inclined walls of the cells may be spaced sutficiently apart from each other as to leave small gaps through the pack of about 0.005 to 0.02 inch to receive feeler gauges 40 through say four sets of cells, as shown in Figure 11 which may be left until after the cement has set. In this way the feeler gauges may be used to achieve accurate alignment of all the dynodes in a stack. Alternatively the small gaps make it easy to align the dynodes by optical means.
I claim:
1. A method of forming a dynode which comprises assembling rectangular section thin walled tubes into a stack, said tubes having two opposite sides of equal length and longer than the other sides which are also of equal length, cutting a slice from said stack in a direction parallel to the long sides and at such an angle to the short sides that the cross-section of the cells formed by the tube sections is approximately square.
2. A method as claimed in claim 1, wherein the stack is secured in a jig, the open ends of the tubes at one end are plugged, solder is placed on that end of the stack with that end upwards, the stack is heated to cause the solder to flow down between the tubes, and the stack is then removed from the jig and cut into slices.
3. A method of making a set of dynodes which comprises cutting slices from a stack to form a series of dynodes by the method claimed in claim 1, reversing alternate slices and mounting them in a stack to form zig-zag paths of square cross-section for the electrons,
4. A method as claimed in claim 3, wherein the opposed edges of adjacent slices in the set are coated with electrically insulating material and a wire screen is provided between them, the coated edges being in contact with the screen.
5. A method as claimed in claim 4, wherein the screen is provided by a wire that is passed across the mouth of each cell and through some of the cells.
6. A method as claimed in claim 4, wherein the wire screen is attached to the cells by metal plating.
7. A method as claimed in claim 1 wherein a stack of dynodes is assembled into a rigid structure by filling a series of corresponding cells with a cement which sets to form an electrically insulating solid; material.
References Cited in the file of this patent UNITEDv STATES PATENTS 2,619,438 Varian et a1 Nov. 25, 1952.,
ara;
US652295A 1956-04-12 1957-04-11 Electron image multiplier apparatus Expired - Lifetime US2872721A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB1111756A GB813581A (en) 1956-04-12 Improvements in or relating to electron image multiplier apparatus

Publications (1)

Publication Number Publication Date
US2872721A true US2872721A (en) 1959-02-10

Family

ID=9980350

Family Applications (1)

Application Number Title Priority Date Filing Date
US652295A Expired - Lifetime US2872721A (en) 1956-04-12 1957-04-11 Electron image multiplier apparatus

Country Status (1)

Country Link
US (1) US2872721A (en)

Cited By (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2999300A (en) * 1958-02-03 1961-09-12 Sylvania Electric Prod Apparatus and method for producing cathode ray tubes
US3062962A (en) * 1956-11-30 1962-11-06 Nat Res Dev Photo-electron image multiplier
US3182221A (en) * 1963-07-22 1965-05-04 Jr Edmund W Poor Secondary emission multiplier structure
US3374380A (en) * 1965-11-10 1968-03-19 Bendix Corp Apparatus for suppression of ion feedback in electron multipliers
DE1281055B (en) * 1963-05-01 1968-10-24 Philips Nv Electron-optical image converter with a secondary electron multiplier arranged between the photocathode and the fluorescent screen
US3461332A (en) * 1965-11-26 1969-08-12 Edward E Sheldon Vacuum tubes with a curved electron image intensifying device
US3564323A (en) * 1967-11-14 1971-02-16 Matsushita Electric Ind Co Ltd Secondary-electron multiplier having tilted elliptical pipes the ends of which are obliquely cut
US3610993A (en) * 1969-12-31 1971-10-05 Westinghouse Electric Corp Electronic image device with mesh electrode for reducing moire patterns
US3612946A (en) * 1967-08-01 1971-10-12 Murata Manufacturing Co Electron multiplier device using semiconductor ceramic
US3914634A (en) * 1971-12-23 1975-10-21 Philips Corp Channel plate acting as discrete secondary-emissive dynodes
US4021216A (en) * 1975-10-24 1977-05-03 International Telephone And Telegraph Corporation Method for making strip microchannel electron multiplier array
US4143291A (en) * 1976-04-22 1979-03-06 S.R.C. Laboratories, Inc. Dynode for a photomultiplier tube
US4184098A (en) * 1976-04-22 1980-01-15 S.R.C. Laboratories, Inc. Cone type dynode for photomultiplier tube
US4649314A (en) * 1983-07-11 1987-03-10 U.S. Philips Corporation Electron multiplier element, electron multiplier device comprising said multiplying element, and the application to a photomultiplier tube
US4806827A (en) * 1985-12-31 1989-02-21 U.S. Philips Corporation Multiplier element of the aperture plate type, and method of manufacture
US5374864A (en) * 1989-08-14 1994-12-20 Detector Technology, Inc. Electron multiplier with increased-area channel

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2619438A (en) * 1945-04-16 1952-11-25 Sperry Corp Method of making a grid structure

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2619438A (en) * 1945-04-16 1952-11-25 Sperry Corp Method of making a grid structure

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3062962A (en) * 1956-11-30 1962-11-06 Nat Res Dev Photo-electron image multiplier
US2999300A (en) * 1958-02-03 1961-09-12 Sylvania Electric Prod Apparatus and method for producing cathode ray tubes
DE1281055B (en) * 1963-05-01 1968-10-24 Philips Nv Electron-optical image converter with a secondary electron multiplier arranged between the photocathode and the fluorescent screen
US3182221A (en) * 1963-07-22 1965-05-04 Jr Edmund W Poor Secondary emission multiplier structure
US3374380A (en) * 1965-11-10 1968-03-19 Bendix Corp Apparatus for suppression of ion feedback in electron multipliers
US3461332A (en) * 1965-11-26 1969-08-12 Edward E Sheldon Vacuum tubes with a curved electron image intensifying device
US3612946A (en) * 1967-08-01 1971-10-12 Murata Manufacturing Co Electron multiplier device using semiconductor ceramic
US3564323A (en) * 1967-11-14 1971-02-16 Matsushita Electric Ind Co Ltd Secondary-electron multiplier having tilted elliptical pipes the ends of which are obliquely cut
US3610993A (en) * 1969-12-31 1971-10-05 Westinghouse Electric Corp Electronic image device with mesh electrode for reducing moire patterns
US3914634A (en) * 1971-12-23 1975-10-21 Philips Corp Channel plate acting as discrete secondary-emissive dynodes
US4021216A (en) * 1975-10-24 1977-05-03 International Telephone And Telegraph Corporation Method for making strip microchannel electron multiplier array
US4126804A (en) * 1975-10-24 1978-11-21 International Telephone And Telegraph Corporation Strip microchannel electron multiplier array support structure
US4143291A (en) * 1976-04-22 1979-03-06 S.R.C. Laboratories, Inc. Dynode for a photomultiplier tube
US4184098A (en) * 1976-04-22 1980-01-15 S.R.C. Laboratories, Inc. Cone type dynode for photomultiplier tube
US4649314A (en) * 1983-07-11 1987-03-10 U.S. Philips Corporation Electron multiplier element, electron multiplier device comprising said multiplying element, and the application to a photomultiplier tube
US4806827A (en) * 1985-12-31 1989-02-21 U.S. Philips Corporation Multiplier element of the aperture plate type, and method of manufacture
US5374864A (en) * 1989-08-14 1994-12-20 Detector Technology, Inc. Electron multiplier with increased-area channel

Similar Documents

Publication Publication Date Title
US2872721A (en) Electron image multiplier apparatus
US2236041A (en) Electron discharge device
US4482836A (en) Electron multipliers
US4160311A (en) Method of manufacturing a cathode ray tube for displaying colored pictures
US3914634A (en) Channel plate acting as discrete secondary-emissive dynodes
US3062962A (en) Photo-electron image multiplier
EP0006267B1 (en) Method of manufacturing a channel plate structure
US4112563A (en) Color display tube and method of manufacturing same
JPS62160652A (en) Multiplying device with high collecting efficiency, multiplier with the multiplying device, optomultiplying tubeusing the multiplying device and manufacture of multiplying device
US3387137A (en) Multi-passage electron multiplier with potential differences between passageways
US3849692A (en) Surface conductive tilted channel plate electron multiplier
US1935649A (en) Television
US4270823A (en) Method of forming conductors in slots in a plate
US4031423A (en) Channel structure for multi-channel electron multipliers and method of making same
US3735184A (en) Continuous dynode channel type secondary electron multiplier
GB1588084A (en) Fiat display device with beam guide
US2463635A (en) Electron discharge device and method of making the same
US2701847A (en) Color television tube structure
US4345156A (en) Ionization chamber type X-ray detector
US3684910A (en) Electron multiplier having dynode modules
US3182221A (en) Secondary emission multiplier structure
US3634720A (en) Gaseous display panel having two arrays of gas cells
NL7904653A (en) COLOR IMAGE TUBE.
US2149455A (en) Television transmitting apparatus
US2821652A (en) Multihelix traveling wave tubes