Claims
- 1. A field emission display comprising:
- an emitter panel including a plurality of emitters and an extraction grid, the emitter panel emitting electrons in response to an electric field between the emitters and the extraction grid;
- an anode positioned opposite the emitter panel;
- a cathodoluminescent layer coating a surface of the anode facing the emitter panel; and
- a microchannel plate including a plurality of passageways therethrough, the electron multiplier being positioned between the emitter panel and the anode so that electrons emitted by the emitter panel pass through the passageways as they travel to the anode, the microchannel plate outputting electrons in response to the electrons received from the emitter panel so that electrons pass through the cathodoluminescent layer at a rate that is greater than the rate that electrons are emitted from the emitter panel wherein each of the passageways is aligned to a plurality of the emitters.
- 2. The field emission display of claim 1 wherein the anode is coupled to a first voltage, the grid is coupled to a second voltage below the first voltage and the emitters are selectively couplable to a third voltage below the second voltage.
- 3. The field emission display of claim 2 wherein the passageways include inner walls coated with a conductive layer, the conductive layer being connected to a plate voltage between the anode voltage and the grid voltage.
- 4. The field emission display of claim 1 wherein the planar plate includes a plurality of spaced apart conductive layers in a stacked configuration, each conductive layer being electrically isolated from the other conductive layers.
- 5. The field emission display of claim 4 wherein a first of the conductive layers is connected to a first plate voltage between the anode voltage and the grid voltage.
- 6. The field emission display of claim 5 wherein a second of the conductive layers is positioned intermediate the first conductive layer and the anode, the second conductive layer being connected to a second plate voltage between the anode voltage and the first plate voltage.
- 7. The field emission display of claim 6 wherein a third of the conductive layers is positioned intermediate the second conductive layer and the anode, the third conductive layer being connected to a third plate voltage between the anode voltage and the second plate voltage.
- 8. A field emission display comprising:
- a display screen having an anode and a cathodoluminescent layer;
- an emitter panel spaced apart from the display screen to define a gap therebetween, the emitter panel including an array of emitting sections oriented to emit electrons toward the display screen each emitting section including a plurality of emitters; and
- a microchannel plate positioned in the gap and oriented to intercept the electrons emitted toward the anode the microchannel plate including a dielectric plate having a first surface facing the anode, a second surface facing the emitter panel, and a plurality of passageways extending from the first surface to the second surface, wherein each of the passageways encircles a plurality of the emitters.
- 9. The field emission display of claim 8 wherein the microchannel plate includes
- a conductive layer covering inner walls of the passageways.
- 10. The field emission display of claim 9 wherein each of the passageways defines a guide for collimating emitted electrons.
- 11. The field emission display of claim 8 wherein the emitter panel includes:
- a substrate supporting the emitters; and
- a conductive grid above the substrate, the grid including a plurality of apertures, wherein the grid is oriented such that the emitters project into the apertures.
- 12. The field emission display of claim 11 wherein the emitters are couplable to a reference voltage, the conductive grid is biased at a first voltage, above the reference voltage, the conductive layer is biased at a second voltage above the first voltage and the anode is biased at a third voltage above the second voltage.
- 13. A method of producing a viewable image in a field emission display having an emitter panel and a display screen positioned above the emitter panel, the emitter panel including emitters on a substrate and a grid, comprising the steps of:
- biasing the grid at a grid voltage;
- selectively coupling a plurality of the emitters to a reference voltage below the grid voltage to cause the plurality of emitters to emit electrons;
- biasing the anode at an anode voltage higher than the grid voltage to cause the emitted electrons to travel toward the anode;
- positioning a microchannel plate having a plurality of passageways therethrough between the emitters and the anode;
- aligning the microchannel plate to the emitter panel with one of the passageways aligned to a selected plurality of the emitters;
- biasing a microchannel plate at a plate voltage;
- intercepting the emitted electrons traveling toward the anode with the microchannel plate to cause the microchannel plate to produce a multiplied set of electrons; and
- intercepting the electrons in the multiplied set of electrons with the cathodoluminescent layer to cause the cathodoluminescent layer to emit light, the emitted light producing the viewable image.
Government Interests
This invention was made with government support under Contract No. DABT-63-93-C-0025 by Advanced Research Projects Agency (ARPA). The government has certain rights to this invention.
US Referenced Citations (8)