Claims
- 1. An electrode comprising a composite of a refractory metal and a refractory emitter oxide selected from the group consisting of
- (a) single layer composites of a refractory metal and a substantial amount of a refractory emitter oxide containing a sintering activator or mixture thereof with a sintering aid compound; and
- (b) multiple layered composites comprising at least two layers of mixtures of refractory metal and refractory emitter oxide or mixtures of said oxides, at least one of said layers comprising the multiple layer composite having a different volume of emitter oxide or mixtures of emitter oxides when compared to at least one other layer comprising the multiple layer composite, at least one of the layers containing a sintering activator or mixture thereof with a sintering aid,
- said composites having been subjected to sintering at an elevated temperature effective to form a composite electrode having a density of at least about 85%, said elevated temperature being selected from the range of (i) a temperature at least above the temperature at which sintering of the refractory metal with activator is initiated and said composite density of at least about 85% is achieved and (ii) a temperature below the temperature at which (x) sintering of the refractory metal without activator is initiated and (y) the emitter oxide and/or activator undergo substantial degradation.
- 2. An electrode as claimed in claim 1 wherein said composite is a single layer composite of a refractory metal and a refractory emitter oxide containing a sintering activator sintered at a temperature within the range of about 1100.degree. C. to about 1400.degree. C.
- 3. An electrode as claimed in claim 2 wherein said refractory metal is tungsten.
- 4. An electrode as claimed in claim 3 wherein said refractory emitter oxide is selected from the group of barium titanate, barium zirconate, barium strontium zirconate, barium tantalate, and mixtures thereof.
- 5. An electrode as claimed in claim 2 wherein said activator is a Group VIIIa transition metal.
- 6. An electrode as claimed in claim 5 wherein said activator is Ni, and said composite also contains a sintering aid for the oxide.
- 7. An electrode as claimed in claim 5 wherein said sintering is effected at a temperature of about 1300.degree. C.
- 8. An electrode as claimed in claim 1 wherein said composite is a multiple layered composite comprising at least two layers of mixtures of refractory metals and refractory emitter oxides in which at least one of the layers has a different volume of emitter oxide or mixture of emitter oxides than the volume of emitter oxides or mixture of emitter oxides contained in at least one other layer of the composite electrode.
- 9. An electrode as claimed in claim 8 wherein said refractory metal is tungsten.
- 10. An electrode as claimed in claim 9 wherein said emitter oxide is Barium titanate.
- 11. An electrode as claimed in claim 9 wherein said emitter is barium zirconate.
- 12. An electrode as claimed in claim 9 wherein said emitter oxide is barium strontium zirconate.
- 13. An electrode as claimed in claim 9 wherein said emitter oxide is barium tantalate.
- 14. An electrode as claimed in claim 9 wherein said emitter oxide is barium yttriate.
- 15. An electrode as claimed in claim 8 wherein said composite is a multiple layered composite containing an activator sintered at a temperature within the range of about 1100.degree. C. to about 1400.degree. C.
- 16. An electrode as claimed in claim 15 wherein said refractory metal is tungsten.
- 17. An electrode as claimed in claim 16 wherein said activator is a Group VIIIa transition metal.
- 18. An electrode as claimed in claim 17 wherein said activator is Ni, and said composite also contains a sintering aid for the oxide.
- 19. An electrode as claimed in claim 18 wherein the composite also contains a Group Ia alkali metal oxide.
- 20. An electrode which comprises a multiple layer composite selected from the group consisting of:
- (1) a. Top layer: 75 vol. % Ba.sub.0.5 Sr.sub.0.5 ZrO.sub.3 +25 vol. % W+3 mol % Li.sub.2 O of the amount of Ba.sub.0.5 Sr.sub.0.5 ZrO.sub.3 ;
- b. Bottom layer: 40 vol. % Ba.sub.0.5 Sr.sub.0.5 ZrO.sub.3 +60 vol. % W+3 mol % Li.sub.2 O of the amount of the Ba.sub.0.5 Sr.sub.0.5 ZrO.sub.3 +0.2 wt. % Ni based on the amount of W; and
- (2) a. Top layer: 50 vol. % BaTiO.sub.3 +30 vol. % Ba.sub.2 TiO.sub.4 +20 vol. % W+0.2 wt. % Ni based on the amount of the W+3 mol % TiO.sub.2 based on the amount of BaTiO.sub.3
- b. Bottom layer: 30 vol. % BaTiO.sub.3 +10 vol. % Ba.sub.2 TiO.sub.4 +60 vol. % W+0.2 wt. % Ni based on the amount of tungsten +3 mol % TiO.sub.2 based on the amount of BaTiO.sub.3.
- 21. An electrode as claimed in claim 20 in which said composite has been sintered at a temperature of about 1300.degree. C.
- 22. An electrode which comprises a multiple layer composite which comprises a layer of W+40 vol. % BaZrO.sub.3, a layer of W+75 vol. % BaZrO.sub.3, and a layer of W+40 vol. % BaZrO.sub.3,
- said composite having been subjected to sintering at an elevated temperature effective to form a composite electrode having a density of at least about 85%, said elevated temperature being selected from the range of (i) a temperature at least above the temperature at which sintering of the refractory metal with activator is initiated and said composite density of at least about 85% is achieved and (ii) a temperature below the temperature at which (x) sintering of the refractory metal without activator is initiated and (y) the emitter oxide and/or activator undergo substantial degradation.
- 23. An electrode which comprises a multiple layer composite which comprises five layers comprising a layer of W+40 vol. % BaZrO.sub.3, a layer of W+62 vol. % BaZrO.sub.3, a layer of W+75 vol. % BaZrO.sub.3, a layer of W+62 vol. % BaZrO.sub.3, and a layer of W+40 vol. % BaZrO.sub.3,
- said composite having been subjected to sintering at an elevated temperature effective to form a composite electrode having a density of at least about 85%, said elevated temperature being selected from the range of (i) a temperature at least above the temperature at which sintering of the refractory metal with activator is initiated and said composite density of at least about 85% is achieved and (ii) a temperature below the temperature at which (x) sintering of the refractory metal without activator is initiated and (y) the emitter oxide and/or activator undergo substantial degradation.
- 24. An electrode which comprises a multiple layer composite which comprises a layer of W+40 vol. % BaZrO.sub.3, a layer of W+75 vol. % BaZrO.sub.3, and a layer of W+40 vol. % BaZrO.sub.3.
- 25. An electrode which comprises a multiple layer composite which comprises five layers comprising a layer of W+40 vol. % BaZrO.sub.3, a layer of W+62 vol. % BaZrO.sub.3, a layer of W+75 vol. % BaZrO.sub.3, a layer of W+62 vol. % BaZrO.sub.3, and a layer of W+40 vol. % BaZrO.sub.3.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present application is related to the following applications, Ser. No. 08/611,311, filed Mar. 5, 1996, now which is continuation of Ser. No. 08/363,183, abandoned, "Refractory Oxides As Electrodes For HID Lamps" of Hui-Meng Chow and Vivek Mehrotra; Ser. No. 08/363,182, filed Dec. 23, 1994, now pending, "New Emission Materials For Discharge Lamps and Method For Manufacturing Electrode Structures With Such Materials" of Vivek Mehrotra, Hemant S. Betrabet, David R. Woodward, Thomas O. Leyh, and Susan McGee; and Ser. No. 08/363,177, filed Dec. 23, 1994, now pending, "An Electrode Structure For Discharge Lamp, Welding Apparatus For Use In Making An Electrode Structure and Method of Welding" of Thomas McGee and Vivek Mehrotra, all of which have been filed concurrently herewith.
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