IP Library › Granted Patent US 7,225,535
Granted Patent B2
US 7,225,535 · App. 10/662,081 · Granted Jun 5, 2007

Method of manufacturing electrochemical sensors

Assignee: Abbott Diabetes Care, Inc.
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Quick Facts
Patent No.
US 7,225,535
App. No.
10/662,081
Granted
Jun 5, 2007
Kind
B2
Abstract

Methods for manufacturing electrochemical sensors are described. The sensors have a working electrode and a counter electrode, which are planar, and optionally an indicator electrode. The sensor includes a sample chamber to hold a sample of no more than 1 μL in electrolytic contact with the working electrode. The methods provide sensors that can be used to determine the concentration of a biomolecule, such as glucose or lactate, in a biological fluid, such as blood or serum, using techniques such as coulometry, amperometry, and potentiometry.

Claims (46)

1. A method of manufacturing electrochemical sensors, the method comprising steps of:

(a) applying a plurality of working electrodes on a substrate;

(b) applying a plurality of counter electrodes on the substrate;

(c) positioning a spacer layer over the substrate and the working electrodes and the counter electrodes;

(d) overlaying the spacer layer with a second substrate;

(e) creating a sample chamber region within the spacer layer comprising a plurality of connected sample chambers between the substrate and the second substrate; and

(f) separating a plurality of electrochemical sensors, each electrochemical sensor comprising at least one working electrode planar with at least one counter electrode on the substrate, the substrate and second substrate having generally a similar length and width, and at least one sample chamber between the substrate and the second substrate, the sample chamber having a volume of no more than about 1 microliter and continuous with the at least one sample chamber of an adjacent electrochemical sensor.

2. The method according to claim 1 , wherein the step of positioning a spacer layer comprises:

(a) positioning an adhesive layer over the substrate having the electrodes.

3. The method according to claim 2 , further comprising:

(a) applying a plurality of indicator electrodes on the substrate; and

(b) wherein the step of separating a plurality of electrochemical sensors comprises:

(i) separating a plurality of electrochemical sensors, each electrochemical sensor comprising at least one working electrode, at least one counter electrode, at least one indicator electrode, and at least one sample chamber.

4. The method according to claim 2 , wherein the step of positioning an adhesive layer over the substrate having the electrodes is done before the step of creating a sample chamber region between the substrate having the electrodes and the second substrate.

5. The method according to claim 1 , wherein the step of applying a plurality of working electrodes on a substrate comprises:

(a) applying a plurality of working electrodes on a substrate by printing.

6. The method according to claim 5 , wherein the step of applying a plurality of working electrodes on a substrate by printing comprises:

(a) applying a plurality of working electrodes on a substrate by screen printing or ink jet printing.

7. The method according to claim 1 , wherein the step of creating a sample chamber region between the substrate having the electrodes and the second substrate comprises:

(a) removing a portion of the spacer layer; and then

(b) positioning the spacer layer between the substrate having the electrodes and the second substrate to create the sample chamber region.

8. The method according to claim 1 , wherein the step of creating a sample chamber region between the substrate having the electrodes and the second substrate comprises:

(a) positioning the spacer layer over the substrate having the electrodes; and then

(b) removing a portion of the spacer layer to create the sample chamber region.

9. The method according to claim 1 , wherein the step of creating a sample chamber region comprising a plurality of connected sample chambers comprises:

(a) creating a sample chamber region having a plurality of connected sample chambers each having a volume of no more than about 0.5 microliter.

10. The method according to claim 9 , wherein the step of creating a sample chamber region comprising a plurality of connected sample chambers comprises:

(a) creating a sample chamber region having a plurality of connected sample chambers each having a volume of no more than about 0.25 microliter.

11. A method of manufacturing electrochemical sensors, the method comprising steps of:

(a) applying a plurality of working electrodes on a substrate;

(b) applying a plurality of counter electrodes on the substrate;

(c) forming a plurality of indicator electrodes on one of the substrate and a second substrate;

(d) overlaying the working electrodes and the counter electrodes with a spacer layer;

(e) creating a sample chamber region within the spacer layer comprising a plurality of connected sample chambers between the substrate;

(f) overlaying the second substrate over the spacer layer; and

(g) separating a plurality of electrochemical sensors, each electrochemical sensor comprising at least one working electrode planar with at least one counter electrode on the substrate, the substrate and second substrate having generally a similar length and width, at least one indicator electrode, and at least one sample chamber between the substrate and the second substrate, the sample chamber having a volume of no more than about 1 microliter and continuous with the at least one sample chamber of an adjacent electrochemical sensor.

12. The method according to claim 11 , wherein the step of creating a sample chamber region between the substrate having the electrodes and the second substrate comprises:

(a) removing a portion of the spacer layer; and then

(b) positioning the spacer layer over the substrate having the electrodes to create the sample chamber region.

13. The method according to claim 11 , wherein the step of creating a sample chamber region between the substrate having the electrodes and the second substrate comprises:

(a) positioning the spacer layer over the substrate having the electrodes; and then

(b) removing a portion of the spacer layer to create the sample chamber region.

14. The method according to claim 11 , wherein the step of creating a sample chamber region comprising a plurality of connected sample chambers comprises:

(a) creating a sample chamber region having a plurality of connected sample chambers each having a volume of no more than about 0.5 microliter.

15. The method according to claim 14 , wherein the step of creating a sample chamber region comprising a plurality of connected sample chambers comprises:

(a) creating a sample chamber region having a plurality of connected sample chambers each having a volume of no more than about 0.25 microliter.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 30, 2008
From: FELDMAN, BENJAMIN J.; HELLER, ADAM; HELLER, EPHRAIM; MAO, FEI; VIVOLO, JOSEPH A.; FUNDERBURK, JEFFREY V.; COLMAN, FREDRIC C.; KRISHNAN, RAJESH
To: THERASENSE, INC.
Reel/Frame 021040/0489 →
CHANGE OF NAME Recorded May 30, 2008
From: THERASENSE, INC.
To: ABBOTT DIABETES CARE INC.
Reel/Frame 021040/0505 →
CHANGE OF NAME Recorded Mar 27, 2007
From: THERASENSE, INC.
To: ABBOTT DIABETES CARE INC.
Reel/Frame 019068/0295 →
Continuity (5)
Division 0959428500 · Jun 15, 2000
Continuation 0929596200 · Apr 21, 1999
Provisional Application 6010577300 · Oct 8, 1998
Provisional Application 6010362700 · Oct 8, 1998
Related Publication 20040060818A1 · Apr 1, 2004