Claims
- 1. A multilayered micro-gas chromatograph device for analyzing an analyte gas, said analyte gas including a plurality of chemical components, said multilayered micro-gas chromatograph device comprising:
a substantially monolithic structure formed from a plurality of green-sheet layers sintered together, said green-sheet layers including particles selected from the group consisting of ceramic particles, glass particles, and glass-ceramic particles; said substantially monolithic structure having a micro-gas chromatograph column defined therein, said micro-gas chromatograph column having an inlet port for receiving said analyte gas and an outlet port for releasing said analyte gas; and a stationary phase for differentially adsorbing chemical components in said analyte gas, said stationary phase being disposed in a portion of said micro-gas chromatograph column.
- 2. The multilayered micro-gas chromatograph device of claim 1, wherein said micro-gas chromatograph column includes an exit channel connected to said outlet port, further comprising a detector for detecting said chemical components in said analyte gas, said detector being disposed in said exit channel.
- 3. The multilayered micro-gas chromatograph device of claim 2, wherein said detector is a thermal conductivity detector.
- 4. The multilayered micro-gas chromatograph device of claim 3, wherein said thermal conductivity detector includes a resistor disposed in said exit channel, said resistor being sintered to one of said green-sheet layers, said resistor being formed by depositing a first thick-film paste in a predetermined pattern onto a surface of said one of said green-sheet layers.
- 5. The multilayered micro-gas chromatograph device of claim 4, wherein said thermal conductivity detector includes an electrically conductive lead connected to said resistor, at least a portion of said electrically conductive lead being defined by a conductor-filled via sintered to said one of said green-sheet layers, said conductor-filled via being formed by filling a second thick-film paste into a via in said one of said green-sheet layers.
- 6. The multilayered micro-gas chromatograph device of claim 1, wherein said micro-gas chromatograph column includes a plurality of planar column sections, each one of said planar column sections being defined by a channel formed into one of said green-sheet layers.
- 7. The multilayered micro-gas chromatograph device of claim 6, further comprising at least one heater for raising the temperature of one of said planar column sections with respect to the other said planar column sections.
- 8. The multilayered micro-gas chromatograph device of claim 7, wherein at least a portion of said heater is defined by a conductive trace sintered to one of said green-sheet layers, said conductive trace being formed by depositing a thick-film paste in a predetermined pattern onto a surface of said one of said green-sheet layers.
- 9. The multilayered micro-gas chromatograph device of claim 1, wherein at least a portion of said micro-gas chromatograph column is filled with a porous plug, said stationary phase being disposed in the pores of said porous plug.
- 10. The multilayered micro-gas chromatograph device of claim 9, wherein said porous plug is formed by a thick-film paste sintered to said green-sheet layers.
- 11. The multilayered micro-gas chromatograph device of claim 10, wherein said thick-film paste contains particles selected from the group consisting of alumina particles and glass particles.
- 12. A micro-gas chromatography system comprising:
a supply of a carrier gas; a sample injection valve, connected to said supply, for injecting a sample gas into said carrier gas to provide an analyte gas; a micro-gas chromatograph column having an inlet port and an outlet port, said inlet port being connected to said sample injection valve to receive said analyte gas, said micro-gas chromatograph column separating said analyte gas into a plurality of chemical components, said micro-gas chromatograph column being defined in a substantially monolithic structure, said substantially monolithic structure being formed from a plurality of green-sheet layers sintered together, said green-sheet layers including particles selected from the group consisting of ceramic particles, glass particles, and glass-ceramic particles; and a detector connected to said outlet port of said micro-gas chromatograph column, said detector detecting said plurality of chemical components.
- 13. The micro-gas chromatography system of claim 12, wherein said detector is integrally formed in said substantially monolithic structure.
- 14. The micro-gas chromatography system of claim 12, further comprising a porous plug disposed in said micro-gas chromatograph column.
- 15. The micro-gas chromatography system of claim 14, wherein said porous plug is formed by a thick-film paste sintered to said green-sheet layers.
- 16. The micro-gas chromatography system of claim 15, wherein said thick-film paste contains particles selected from the group consisting of alumina particles and glass particles.
- 17. A method for making a multilayered micro-gas chromatograph device, said method comprising the steps of:
texturing a plurality of green-sheet layers in a predetermined pattern, said green-sheet layers including particles selected from the group consisting of ceramic particles, glass particles, and glass-ceramic particles, said predetermined pattern defining a micro-gas chromatograph column; applying a first thick-film paste to at least a portion of said predetermined pattern in said green-sheet layers; and sintering said green-sheet layers together at a predetermined temperature for a predetermined amount of time to form a substantially monolithic structure, said substantially monolithic structure having said micro-gas chromatograph column defined therein and a porous plug disposed in said micro-gas chromatograph column.
- 18. The method of claim 17, wherein said first thick film paste contains particles selected from the group consisting of alumina particles and glass particles.
- 19. The method of claim 17, further comprising the step of adding a stationary phase to said micro-gas chromatograph column so that at least a portion of said stationary phase is disposed in the pores of said porous plug.
- 20. The method of claim 17, wherein said micro-gas chromatograph column includes an exit channel, further comprising the step of applying a second thick-film paste to a surface of one of said green-sheet layers to define a resistor disposed in said exit channel.
- 21. The method of claim 17, wherein said micro-gas chromatograph column includes a plurality of planar column sections, each one of said planar column sections being defined by a channel formed into one of said green-sheet layers.
- 22. The method of claim 21, further comprising the step of applying a third thick-film paste to a surface of one of said green-sheet layers to define a heater, said heater being disposed for raising the temperature of one of said planar column sections with respect to the other planar column sections.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/337,086, filed on Jun. 21, 1999, which is a continuation-in-part of U.S. application Ser. No. 09/235,081, filed on Jan. 21, 1999, which, in turn, claims the benefit of U.S. Provisional Application No. 60/103,701, filed Oct. 9, 1998. The disclosure of U.S. application Ser. No. 09/337,086 is fully incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
|
60103701 |
Oct 1998 |
US |
Divisions (1)
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Number |
Date |
Country |
Parent |
09460283 |
Dec 1999 |
US |
Child |
10310378 |
Dec 2002 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09337086 |
Jun 1999 |
US |
Child |
09460283 |
Dec 1999 |
US |
Parent |
09235081 |
Jan 1999 |
US |
Child |
09337086 |
Jun 1999 |
US |