Claims
- 1. A ceramic-based fluid sensor for sensing the change in concentration of a species in a fluid in contact therewith comprising:
(a) a ceramic-bearing body, said ceramic-bearing body being fabricated from a shaped, metal-bearing precursor, said ceramic-bearing body comprising at least one ceramic phase having an open pore structure; and (b) at least two electrodes in electrical contact with said ceramic-bearing body; whereby said ceramic-bearing body is capable of undergoing a change in electrical behavior in response to said change in concentration of a species in said fluid.
- 2. A ceramic-based fluid sensor according to claim 1 additionally comprising a fluid conduit in communication with said ceramic-bearing body, whereby said change in concentration of said fluid passing through said fluid conduit changes said electrical behavior of said ceramic-bearing body.
- 3. A ceramic-based fluid sensor according to claim 2 wherein said shape of said sensor is adapted to fit within the space of said fluid conduit.
- 4. A ceramic-based fluid sensor according to claim 1 wherein said ceramic-bearing body comprises a shaped, oxidized metallic foil.
- 5. A ceramic-based fluid sensor according to claim 1 wherein said ceramic-bearing body contains a dopant element.
- 6. A ceramic-based fluid sensor according to claim 1 wherein said at least two electrodes are comprised of gold paste.
- 7. A ceramic-based fluid sensor according to claim 1 wherein metal-bearing precursor comprises an element selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, cerium, molybdenum, manganese, ruthenium, tin, thorium, uranium and tungsten or any combination thereof.
- 8. A fluid sensing device for sensing the change in concentration of a species in a fluid in contact therewith comprising:
(a) a shaped, oxidized metallic foil, said oxidized metallic foil comprising at least one ceramic phase having an open pore structure, said oxidized metallic foil containing a dopant element; (b) at least two electrodes in electrical contact with said oxidized metallic foil; and (c) a fluid conduit in communication with said oxidized metallic foil; whereby said oxidized metallic foil is capable of undergoing a change in electrical behavior in response to said change in concentration of a species in said fluid passing through said fluid conduit.
- 9. A fluid sensing device according to claim 8 wherein metallic foil comprises an element selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, cerium, molybdenum, manganese, ruthenium, tin, thorium, uranium and tungsten or any combination thereof.
- 10. A titanium-oxide based fluid sensor for sensing the change in concentration of carbon monoxide in a fluid in contact therewith comprising:
(a) a doped titanium-oxide foil, said doped titanium-oxide foil being fabricated from a shaped, copper-doped titanium-bearing precursor, said doped titanium-oxide foil comprising at least one ceramic phase having an open pore structure; and (b) at least two electrodes in electrical contact with said doped titanium-oxide foil; whereby said doped titanium-oxide foil is capable of undergoing a change in resistivity in response to said change in concentration of carbon monoxide in said fluid.
- 11. A titanium-oxide based fluid sensor according to claim 10 additionally comprising a fluid conduit in communication with said titanium-oxide based fluid sensor, whereby said change in concentration of carbon monoxide in said fluid passing through said fluid conduit affects said change in resistivity of said doped titanium-oxide foil.
- 12. A titanium-oxide based fluid sensor according to claim 10 wherein said shape of said sensor is adapted to fit within the space of said fluid conduit.
- 13. A titanium-oxide based fluid sensor according to claim 10 wherein said at least two electrodes are comprised of gold paste.
- 14. A fluid sensing device for sensing the change in concentration of carbon monoxide in a fluid in contact therewith comprising:
(a) a shaped, titanium-oxide foil, said titanium-oxide foil comprising at least one ceramic phase having an open pore structure, said titanium-oxide foil containing a copper dopant; (b) at least two electrodes in electrical contact with said titanium-oxide foil; and (c) a fluid conduit in communication with said titanium-oxide foil; whereby said titanium-oxide foil is capable of undergoing a change in resistivity in response to said change in concentration of carbon monoxide in said fluid passing through said fluid conduit.
- 15. A fluid sensing device according to claim 14 wherein metal-bearing precursor comprises an element selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, cerium, molybdenum, manganese, ruthenium, tin, thorium, uranium and tungsten or any combination thereof.
- 16. A method of sensing a change in concentration of a species in a fluid, said method comprising the steps of:
(a) obtaining an shaped ceramic-bearing body comprising at least one ceramic phase having an open pore structure; (b) bringing said shaped ceramic-bearing body into contact with said fluid, said fluid capable of altering the electrical behavior of said shaped ceramic-bearing body; and (c) measuring the resultant change in the electrical behavior of said shaped ceramic-bearing body.
- 17. A ceramic-based catalysis device for catalyzing a reaction of a species in a fluid in contact therewith comprising:
(a) a ceramic-bearing body, said ceramic-bearing body being fabricated from a shaped, metal-bearing precursor, said ceramic-bearing body comprising at least one ceramic phase having an open pore structure; whereby said ceramic-bearing body is capable of catalyzing a reaction in said fluid.
- 18. A ceramic-based catalysis device according to claim 17 additionally comprising a fluid conduit in communication with said ceramic-bearing body, whereby said fluid passing through said fluid conduit undergoes a reaction catalyzed by said ceramic-bearing body.
- 19. A ceramic-based catalysis device according to claim 17 wherein said ceramic-bearing body comprises an oxidized metallic foil.
- 20. A ceramic-based catalysis device according to claim 17 wherein said ceramic-bearing body contains a dopant element.
- 21. A ceramic-based catalysis device according to claim 17 wherein metal-bearing precursor comprises an element selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, cerium, molybdenum, manganese, ruthenium, tin, thorium, uranium and tungsten or any combination thereof.
- 22. A method of fluid catalysis, said method comprising the steps of:
(a) obtaining a shaped ceramic-bearing body comprising at least one ceramic phase having an open pore structure; and (b) bringing said shaped ceramic-bearing body into contact with a fluid, said fluid comprising at least one species capable of undergoing a reaction catalyzed by said ceramic-bearing body.
- 23. A ceramic-based fluid filter for removing at least one species of a fluid in contact therewith comprising:
(a) a ceramic-bearing body, said ceramic-bearing body being fabricated from a shaped, metal-bearing precursor, said ceramic-bearing body comprising at least one ceramic phase having an open pore structure; whereby said ceramic-bearing body is capable of entraining said at least one species of said fluid.
- 24. A ceramic-based fluid filter according to claim 23 additionally comprising a fluid conduit in communication with said ceramic-bearing body, whereby said at least one species becomes entrained in said ceramic-bearing body.
- 25. A ceramic-based fluid filter according to claim 23 wherein said ceramic-bearing body comprises an oxidized metallic foil.
- 26. A ceramic-based fluid filter according to claim 23 wherein said ceramic-bearing body contains a dopant element.
- 27. A ceramic-based fluid filter for removing at least one type of particulate from a fluid in contact therewith comprising:
(b) a ceramic-bearing body, said ceramic-bearing body being fabricated from a shaped, metal-bearing precursor, said ceramic-bearing body comprising at least one ceramic phase having an open pore structure; whereby said ceramic-bearing body is capable of entraining or attaching to said at least one type of particulate contained in said fluid.
- 28. A ceramic-based fluid filter according to claim 23 additionally comprising a fluid conduit in communication with said ceramic-bearing body, whereby said at least one type of particulate becomes entrained in or attached to said ceramic-bearing body.
- 29. A ceramic-based fluid filter according to claim 23 wherein said ceramic-bearing body comprises an oxidized metallic foil.
- 30. A ceramic-based fluid filter according to claim 23 wherein said ceramic-bearing body contains a dopant element.
- 31. A ceramic-based fluid filter according to claim 23 wherein metal-bearing precursor comprises an element selected from the group consisting of titanium, zirconium, hafnium, vanadium, niobium, tantalum, cerium, molybdenum, manganese, ruthenium, tin, thorium, uranium and tungsten or any combination thereof.
- 32. A method of filtering a fluid containing multiple species, or at least one type of particulate, said method comprising the steps of:
(a) obtaining a shaped ceramic-bearing body, said shaped ceramic-bearing body being fabricated from a shaped, metal-bearing precursor, said shaped ceramic-bearing body comprising at least one ceramic phase having an open pore structure; and (b) bringing said shaped ceramic-bearing body into contact with said fluid, at least one of said multiple species or said at least one type of particulate capable of becoming entrained in or attached to said shaped ceramic-bearing body.
Parent Case Info
[0001] The present application claims the priority of Provisional Application Ser. No. 60/165,285 filed Nov. 12, 1999, incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60165285 |
Nov 1999 |
US |