Claims
- 1. Method to generate an optical radiation comprising a generation of electrons and subsequent excitation of radiation from a gas wherein said generation of electrons is provided due to emission of the electrons from a cathode surface and excitation of radiation is provided via acceleration of electrons in gas gap by a voltage applied between the cathode and anode up to the energy higher than energy of emitting states of the gas, but lower than breakdown voltage of a self-sustained discharge, wherein said generation of electrons and subsequent acceleration of the electrons in the gas gap are provided by a voltage whose magnitude is less than I/e, where I is ionization potential of atoms or molecules of gas, e—is an electron charge.
- 2. Device to generate an optical radiation comprising a chamber filled with a light emitting gas and at least two electrodes, cathode and anode, placed in front of each other, and at least one of the electrode surfaces where the electrodes are placed, including the surface of said electrodes, is transparent for radiation, further comprising that the light emitting gas pressure is determined by a condition to select the gap between the electrodes to be about the electron energy relaxation length.
- 3. Device set forth in claim 2 wherein the cathode is made as a photocathode.
- 4. Device set forth in claim 2 wherein the cathode is made as a thermocathode.
- 5. Device set forth in claim 2, wherein the cathode is made as an automission cathode.
- 6. Device set forth in claim 5 wherein the autoemission cathode is made in a form of a cold emission film cathode comprising a substrate coated with a diamond-carbon or carbon film emitter of electrons.
- 7. Device set forth in claim 6, wherein said cathode is made in a form of parallel conductive strips whose width d is determined from a condition Ed=U where E is a strength of electrical field near the cathode strips surface which is sufficient to enable the autoemission, and spacing between the strips equals or exceeds the width of interelectrode gap L determined from a condition of its equality to electron energy relaxation length that is selected by varying the gas pressure and voltage applied to the electrodes U which shall be lower than I/e where I is ionization potential of atoms or molecules of gas, e is an electron charge.
- 8. Device set forth in claim 2 wherein at least said electrode surface which is transparent for radiation of gas and whereon the electrodes are placed, including the surface of said electrodes is coated at its external side with a layer of phosphor, or said electrode surface which is transparent for visible radiation of phospor and whereon the electrodes are placed, including, for example, the surface of said electrodes, is coated at its internal side with a layer of phosphor.
- 9. device set forth in claim 8, wherein the phosphor is deposited in a form of RGB triads covering every separate point.
- 10. Device set forth in claim 2, further comprising at least one additional grid electrode between the cathode and anode.
Priority Claims (2)
Number |
Date |
Country |
Kind |
98110774 |
Jun 1998 |
RU |
|
98110628 |
May 1999 |
RU |
|
CROSS REFERENCE TO RELATED APPLICATIONS
Applicants claim priority under 35 U.S.C. §119 of Russian Application Nos. 98110774 and 98110628, filed Jun. 5, 1998 and May 28, 1999, respectively. Applicants also claim priority under 35 U.S.C. §120 of PCT/RU99/00189, filed Jun. 4, 1999. The international application under PCT article 21(2) was not published in English.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/RU99/00189 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO99/65060 |
12/16/1999 |
WO |
A |
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
Country |
50774 |
Mar 1937 |
RU |
Non-Patent Literature Citations (4)
Entry |
Parol, N.V. et al., Znakosinteziryjuschie indikatory i ikh primenenie. Moscow, Radio i svyaz, pp. 9-13. (To follow). |
Rokhlin, G.N., Discharge Light Sources, Energoatomizdat, 1991, p.392. (Enclosed). |
Dobretsov, L.N. et al., Emittion electronics, Moscow, Nauka, 1966, p. 245 (Enclosed). |
Display, ed. by J. Pankov, Moscow, Mir, 1982, pp. 123-126. (enclosed). |