IP Library › Granted Patent US 6,977,149
Granted Patent B2
US 6,977,149 · App. 10/034,075 · Granted Dec 20, 2005

Biochemical reaction detection apparatus

Assignee: Hitachi, Ltd.
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Quick Facts
Patent No.
US 6,977,149
App. No.
10/034,075
Granted
Dec 20, 2005
Kind
B2
Abstract

A biochemical reaction detection chip capable of controlling the temperature for biochemical reactions including hybridizations and its substrate. The function of the chip is performed by comprising a plurality of islands of a heat conducting material on the membrane of the substrate, the islands being spaced from each other and individually provided with temperature controllers, and the probes immobilized on the substrate.

Claims (31)

1. A biochemical reaction detection apparatus, comprising;

a first membrane of no more than 20 μm thick;

a heat draining layer shaped in a mesh having spaces provided on one side of said first membrane;

a plurality of islands provided on one said of said first membrane, each space of the mesh having at least one of said plurality of islands being formed therein;

probe cells for immobilizing probes for detecting biochemical reactions, each of said probe cells being provided on a side opposite to said one side of said first membrane corresponding to one of the islands directly through a cross section of the first membrane; and

a cover placed on top of the probe cells for accommodating a sample solution layer between the cover and said side opposite to said one side of said first membrane covering all of the probe cells,

wherein said islands are spaced from each other with intervals filled with air, and each of the islands includes a temperature controller for heating and temperature-controlling a corresponding one of said probe cells independently so that temperature of the sample solution is controlled independently probe cell by probe cell.

2. The biochemical reaction detection apparatus according to claim 1 , wherein the interval between each of said islands is 50 μm or longer.

3. The biochemical reaction detection apparatus according to claim 1 , wherein the interval between each of said islands is 100 μm or longer.

4. The biochemical reaction detection apparatus according to claim 1 , wherein said first membrane has a heat conductivity of 10 w/mk (watt/(meter*kelvin)) or less.

5. The biochemical reaction detection apparatus according to claim 1 , wherein said first membrane is made of a material or a composite material selected from a group consisting of silicon nitride, silicon oxide, aluminum oxide and Ta 2 O 5 .

6. The biochemical reaction detection apparatus according to claim 1 , wherein said first membrane is 5 μm thick or thinner.

7. The biochemical reaction detection apparatus according to claim 1 , wherein the heat draining layer functions as heat sinks provided among said islands.

8. The biochemical reaction detection apparatus to claim 1 , wherein the heat draining layer includes a thermal conductor layers.

9. The biochemical reaction detection apparatus according to claim 7 , wherein the heat draining layer is made from Si, Au, Ag or Cu.

10. The biochemical reaction detection apparatus according to claim 7 , wherein a distance between one of said islands and one of the heat sinks is 10 -500 μm.

11. A biochemical reaction detection apparatus, comprising:

a first membrane of no more than 20 μm thick, a first side thereof being provided with a sample solution layer;

a heat draining layer shaped in a mesh having spaces provided on a second side of said first membrane opposite to the first side of said first membrane;

a plurality of islands provided on said second side of said first membrane, each space of the mesh having at least one of said plurality of islands being formed therein; and

probe cells for immobilizing probes for detecting biochemical reactions, each of said probe cells being provided on the first side of said first membrane corresponding to one of the islands directly through a cross section of said first membrane, each of said probe cells being set to contact with said sample solution layer,

wherein said islands are spaced from each other with intervals filled with air, and each of the islands includes a temperature controller for heating and temperature-controlling a corresponding one of said probe cells independently so that a temperature of the sample solution is controlled independently probe cell by probe cell.

12. The biochemical reaction detection apparatus according to claim 11 , wherein the interval between each of said islands is 50 μm or longer.

13. The biochemical reaction detection apparatus according to claim 11 , wherein the interval between each of said islands is 100 μm or longer.

14. The biochemical reaction detection apparatus according to claim 11 , wherein said first membrane has a heat conductivity of 10 w/mk (watt/(meter*kelvin)) or less.

15. The biochemical reaction detection apparatus according to claim 11 , wherein said first membrane is made of a material or a composite material selected from a group consisting of silicon nitride, silicon oxide, aluminum oxide and Ta 2 O 5 .

16. The biochemical reaction detection apparatus according to claim 11 , wherein said first membrane is 5 μm thick or thinner.

17. The biochemical reaction detection apparatus according to claim 11 , wherein the thermal conductor layer functions as heat sinks provided among said islands.

18. The biochemical reaction detection apparatus to claim 11 , wherein the thermal conductor layer drains heat from said islands.

19. The biochemical reaction detection apparatus according to claim 17 , wherein the thermal conductor layer is made from Si, Au, Ag or Cu.

20. The biochemical reaction detection apparatus according to claim 17 , wherein a distance between one of said islands and one of the heat sinks is 10 -500 μm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2002
From: KAJIYAMA, TOMOHARU; MIYAHARA, YUJI; MURAKAWA, KATSUJI
To: HITACHI, LTD.
Reel/Frame 012433/0559 →
Priority Claims (1)
JP 11-356433 · Dec 15, 1999 · national
Continuity (2)
Continuation 0952723300 · Mar 16, 2000
Related Publication 20020164778A1 · Nov 7, 2002