Claims
- 1. A multilayered microfluidic DNA amplification 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 fluid passageway defined therein, said fluid passageway including an inlet port for receiving fluid and a DNA amplification chamber for amplifying DNA in said fluid; and said substantially monolithic structure having defined therein a means for heating said DNA amplification chamber and a means for cooling said DNA amplification chamber.
- 2. The multilayered microfluidic DNA amplification device of claim 1, wherein said means for heating includes a heater surrounding said DNA amplification chamber.
- 3. The multilayered microfluidic DNA amplification device of claim 2, wherein said heater is defined by an electrically conductive pathway, said electrically conductive pathway including a thick-film portion formed by sintering a thick-film paste to at least one of said green-sheet layers.
- 4. The multilayered microfluidic DNA amplification device of claim 3, wherein said thick-film portion includes a conductive trace sintered to one of said green-sheet layers, said conductive trace being formed by depositing said thick-film paste in a predetermined pattern onto a surface of said one of said green-sheet layers.
- 5. The multilayered microfluidic DNA amplification device of claim 3, wherein said thick-film portion includes a conductor-filled via sintered to said one of said green-sheet layers, said conductor-filled via being formed by filling said thick-film paste into a via in said one of said green-sheet layers.
- 6. The multilayered microfluidic DNA amplification device of claim 1, wherein said means for cooling includes a thermoelectric element.
- 7. The multilayered microfluidic DNA amplification device of claim 6, wherein said thermoelectric element includes a thermoelectric via sintered to one of said green-sheet layers, said thermoelectric via being formed by filling a via in said one of said green-sheet layers with a thick-film paste containing a thermoelectric material.
- 8. The multilayered microfluidic DNA amplification device of claim 1, wherein said fluid passageway includes a cell lysis chamber.
- 9. The multilayered microfluidic DNA amplification device of claim 8, further comprising first and second electrodes disposed on opposing surfaces of said cell lysis chamber.
- 10. The multilayered microfluidic DNA amplification device of claim 9, wherein said first and second electrodes are defined by first and second traces of conductive material sintered to first and second green-sheet layers.
- 11. The multilayered microfluidic DNA amplification device of claim 1, wherein
said fluid passageway includes a DNA separation chamber.
- 12. The multilayered microfluidic DNA amplification device of claim 11, wherein said substantially monolithic structure has an electromagnet defined therein for directing a magnetic field into said DNA separation chamber.
- 13. The multilayered microfluidic DNA amplification device of claim 12, wherein said electromagnet includes a coil defined by an electrically conductive pathway, said electrically conductive pathway including a thick-film portion formed by sintering a thick-film paste to at least one of said green-sheet layers.
- 14. The multilayered microfluidic DNA amplification device of claim 13, wherein said thick-film portion includes a conductive trace sintered to one of said green-sheet layers, said conductive trace being formed by depositing said thick-film paste in a predetermined pattern onto a surface of said one of said green-sheet layers.
- 15. The multilayered microfluidic DNA amplification device of claim 13, wherein said thick-film portion includes a conductor-filled via sintered to one of said green-sheet layers, said conductor-filled via being formed by filling said thick-film paste into a via in one of said green-sheet layers.
- 16. The multilayered microfluidic DNA amplification device of claim 12, wherein said electromagnet includes a core composed of a material having a high magnetic permeability.
- 17. The multilayered microfluidic DNA amplification device of claim 16, wherein said core includes a thick-film portion sintered to one of said green-sheet layers, said thick-film portion being formed by filling a via in said one of green-sheet layers with a thick-film paste containing a high magnetic permeability material.
- 18. The multilayered microfluidic DNA amplification device of claim 1, further comprising a temperature sensor for measuring the temperature of said DNA amplification chamber.
- 19. The multilayered microfluidic DNA amplification device of claim 18, wherein said temperature sensor comprises a material having a resistance substantially dependent on temperature, said material being sintered to one of said green-sheet layers.
- 20. The multilayered microfluidic DNA amplification device of claim 1, wherein said fluid passageway includes a capillary electrophoresis channel.
- 21. The multilayered microfluidic DNA amplification device of claim 20, further comprising an electrode disposed in said capillary electrophoresis channel.
- 22. The multilayered microfluidic DNA amplification device of claim 21, wherein said electrode includes a thick-film portion, said thick-film portion being defined by a conductor-filled via sintered to one of said green-sheet layers, said conductor-filled via being formed by filling a tick-film paste into a via in said one of said green-sheet layers.
- 23. The multilayered microfluidic DNA amplification device of claim 20, further comprising a window providing optical access to said capillary electrophoresis channel.
- 24. The multilayered microfluidic DNA amplification device of claim 23, wherein said window is formed by sintering to one of said green-sheet layers a thick-film paste containing glass particles.
- 25. The multilayered microfluidic DNA amplification device of claim 1, wherein said fluid passageway includes an outlet port for releasing fluid, said outlet port being in fluid communication with said DNA amplification chamber.
- 26. The multilayered microfluidic DNA amplification device of claim 25, further comprising a capillary stop disposed in said fluid passageway between said DNA amplification chamber and said outlet port, whereby said capillary stop substantially blocks the flow of fluid at low pressures but allows the flow of fluid at high pressures.
- 27. The multilayered microfluidic DNA amplification device of claim 26, wherein said capillary stop comprises a hydrophobic region within said fluid passageway.
- 28. The multilayered microfluidic DNA amplification device of claim 27, wherein said hydrophobic region is formed by sintering a thick-film paste to at least one of said green-sheet layers, said thick-film paste containing particles of a hydrophobic glass-ceramic material.
- 29. A method for performing DNA amplification, said method comprising:
placing a fluidic sample containing DNA in a DNA amplification chamber within a substantially monolithic structure formed from a plurality of green-sheet layers sintered together; heating said fluidic sample with heating means defined within said substantially monolithic structure; and cooling said fluidic sample with cooling means defined within said substantially monolithic structure.
- 30. A method according to claim 29, wherein said green-sheet layers include particles selected from the group consisting of ceramic particles, glass particles, and glass-ceramic particles.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of application U.S. Ser. No. 09/460,281, filed on Dec. 9, 1999, hereby incorporated by reference, which 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 |
09460281 |
Dec 1999 |
US |
Child |
10340057 |
Jan 2003 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09337086 |
Jun 1999 |
US |
Child |
09460281 |
Dec 1999 |
US |
Parent |
09235081 |
Jan 1999 |
US |
Child |
09337086 |
Jun 1999 |
US |