IP Library Granted Patent US 11,512,384
Granted Patent B2
US 11,512,384 · App. 15/900,630 · Granted Nov 29, 2022

Analyte sensors and methods for fabricating analyte sensors

Inventors: Santhisagar Vaddiraju (Plymouth, MN); Dennis Slomski (Porter Ranch, CA)
Assignee: Medtronic MiniMed, Inc.
C23C14/205A61B5/14532A61B5/14865B23K26/36B41M1/06B41M1/10B41M1/12B41M5/0047C23C14/34C23C14/5813C23C14/5873G01N27/327G01N27/3271G01N27/3273G01N27/3277G01N27/4115A61B5/1486A61B2562/0209A61B2562/125C12Q1/006G01N27/40
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Quick Facts
Patent No.
US 11,512,384
App. No.
15/900,630
Granted
Nov 29, 2022
Kind
B2
Abstract

Analyte sensors and methods for fabricating analyte sensors are provided. In an exemplary embodiment, a method for fabricating a planar flexible analyte sensor includes sputtering platinum onto a polyester base layer to form a layer of platinum. The method includes patterning the layer of platinum to form working electrodes and additional electrodes. Further, the method includes forming an insulating dielectric layer over the base layer, wherein the insulating dielectric layer is formed with openings exposing portions of the working electrodes and portions of the additional electrodes. Also, the method includes partially singulating individual sensors from the base layer, wherein each individual sensor is connected to the base layer by a tab. The method further includes depositing an enzyme layer over the exposed portions of the working electrodes and coating the working electrodes with a glucose limiting membrane.

Claims (26)

1. A method for fabricating a planar flexible analyte sensor, the method comprising:

sputtering platinum directly onto a polyester base layer to form a layer of platinum in direct contact with the polyester base layer;

patterning the layer of platinum to form working electrodes and additional electrodes, wherein the additional electrodes comprise reference electrodes;

forming an insulating dielectric layer over the polyester base layer, wherein the insulating dielectric layer is formed with openings, wherein the openings lie directly over each electrode and each opening defines a geometric electrode surface area of each electrode;

printing silver/silver chloride ink over the geometric electrode surface area of each reference electrode;

forming a protection layer over the insulating dielectric layer, over the geometric electrode surface area of each reference electrode, and over the geometric electrode surface area of each working electrode;

partially singulating individual sensors from the polyester base layer, wherein each individual sensor is connected to the polyester base layer by a tab, wherein each individual sensor comprises a working electrode and a reference electrode;

after partially singulating individual sensors from the polyester base layer, depositing an enzyme layer over the geometric electrode surface areas of the working electrodes and coating the working electrodes with a glucose limiting membrane,

after depositing the enzyme layer over the geometric electrode surface areas of the working electrodes and coating the working electrodes with a glucose limiting membrane, singulating the individual sensors by completely separating each individual sensor from the polyester base layer.

2. The method of claim 1 , wherein the protection layer comprises a hydrophilic hydrogel layer.

3. The method of claim 1 , wherein the protection layer completely encapsulates the working electrodes and the reference electrodes.

4. The method of claim 1 , wherein the protection layer is formed by a screen printing, rotary printing, spray coating, dip coating, spin coating or brush coating process.

5. The method of claim 1 , wherein only the layer of platinum separates the silver/silver chloride ink from the polyester base layer.

6. The method of claim 1 wherein sputtering platinum directly onto the polyester base layer to form a layer of platinum comprises modulating adhesion of the platinum to the polyester base layer via surface modification of the polyester base layer.

7. A method for fabricating a planar flexible analyte sensor, the method comprising:

sputtering platinum directly onto a polyester base layer to form a layer of platinum;

patterning the layer of platinum to form working electrodes and additional electrodes, wherein the additional electrodes comprise reference electrodes;

forming an insulating dielectric layer over the polyester base layer, wherein the insulating dielectric layer is formed with openings, wherein the openings lie directly over each electrode and each opening defines a geometric electrode surface area of each electrode;

printing silver/silver chloride ink over the geometric electrode surface area of each reference electrode;

forming a protection layer over the insulating dielectric layer, over the silver/silver chloride ink, over the geometric electrode surface area of each reference electrode, and over the geometric electrode surface area of each working electrode;

partially singulating individual sensors from the polyester base layer, wherein each individual sensor is connected to the polyester base layer by a tab, wherein each individual sensor comprises a working electrode and a reference electrode;

after partially singulating individual sensors from the polyester base layer, depositing an enzyme layer over the geometric electrode surface areas of the working electrodes and coating the working electrodes with a glucose limiting membrane,

after depositing the enzyme layer over the geometric electrode surface areas of the working electrodes and coating the working electrodes with a glucose limiting membrane, singulating the individual sensors by completely separating each individual sensor from the polyester base layer.

8. The method of claim 7 wherein the protection layer comprises a hydrophilic hydrogel layer.

9. The method of claim 7 wherein the protection layer completely encapsulates the working electrodes and the reference electrodes.

10. The method of claim 7 wherein the protection layer is formed by a screen printing, rotary printing, spray coating, dip coating, spin coating or brush coating process.

Assignments (2)
SECURITY INTEREST Recorded Jan 16, 2026
From: MEDTRONIC MINIMED, INC.; COMPANION MEDICAL, INC.
To: CITIBANK, N.A.
Reel/Frame 074394/0237 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 1, 2018
From: VADDIRAJU, SANTHISAGAR; SLOMSKI, DENNIS
To: MEDTRONIC MINIMED, INC.
Reel/Frame 045082/0262 →
Continuity (2)
Provisional Application 62504670 · May 11, 2017
Related Publication 20180325430A1 · Nov 15, 2018
Cited By (1)
US 12,529,134