IP Library Granted Patent US 11,883,165
Granted Patent B2
US 11,883,165 · App. 17/027,887 · Granted Jan 30, 2024

Microfluidic systems for epidermal sampling and sensing

Inventors: John A. Rogers (Wilmette, IL); Jungil Choi (Chicago, IL); Tyler R. Ray (Evanston, IL); Johnathan T. Reeder (Plano, TX); Yurina Sekine (Evanston, IL); Amay J. Bandodkar (Evanston, IL); Yi Zhang (Evanston, IL); Hexia Guo (Evanston, IL); Sungbong Kim (Champaign, IL); Diana Ostojich (Evanston, IL)
Assignees: NORTHWESTERN UNIVERSITY; THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ILLINOIS
A61B5/14539A61B5/0002A61B5/053A61B5/1032A61B5/1455A61B5/14517A61B5/14546A61B5/4842A61B5/6806B01L3/502715A61B5/6833A61B2562/028A61B2562/164B01L2300/025B01L2300/0663B01L2300/0803B01L2300/0864B01L2300/123B01L2400/0406B01L2400/0688
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,883,165
App. No.
17/027,887
Granted
Jan 30, 2024
Kind
B2
Abstract

A microfluidic system includes a flexible substrate having a skin-facing surface and a back-facing surface; a microfluidic network at least partially embedded in or supported by the flexible substrate; a sensor fluidically connected to the microfluidic network, wherein the microfluidic network is configured to transport a biofluid from a skin surface to the sensor; and a capping layer, having a capping layer skin-facing surface and a back-facing surface, wherein the back-facing surface of the capping layer is attached to the skin-facing surface of the substrate. The flexible substrate is at least partially formed of a thermoplastic elastomer or a polymer configured to provide a high barrier to vapor or liquid water transmission.

Claims (41)

1. A microfluidic system for measuring a characteristic of a biofluid, comprising:

a flexible substrate;

a collection layer embedded in or supported by the flexible substrate, wherein the collection layer is configured to promote transport of the biofluid from a skin surface;

at least one reservoir chamber embossed in the collection layer, the at least one reservoir chamber having:

an absorbent provided to receive at least a portion of the biofluid from the collection layer; and

a sensor for measuring the characteristic of the biofluid received by the absorbent; wherein the absorbent provides a force for transporting the biofluid that is greater than a capillary force of the collection layer for transporting the biofluid; and

a protective layer embedded in or supported by the flexible substrate, wherein the protective layer is configured to prevent the biofluid from escaping from the at least one reservoir chamber.

2. The microfluidic system of claim 1 , wherein the characteristic of the biofluid is amount of sweat loss or presence or absence of a biomarker from the skin surface.

3. The microfluidic system of claim 1 , wherein the sensor is an electronic sensor, wherein the electronic sensor comprises one or more high sensitivity electrodes configured to measure a change in an electrical parameter caused by the biofluid received by the absorbent, wherein the electrical parameter is capacitance.

4. The microfluidic system of claim 1 , wherein the sensor comprises one or more colorimetric assay reagents.

5. The microfluidic system of claim 1 , further comprising a wireless communication device for transmitting wireless information corresponding to the characteristic of the biofluid from the skin surface.

6. The microfluidic system of claim 1 , wherein said flexible substrate comprises a material selected from the group consisting of polydimethylsiloxane (PDMS), polyurethane, cellulose paper, cellulose sponge, polyurethane sponge, polyvinyl alcohol sponge, silicone sponge, polystyrene, polyimide, SU-8, wax, olefin copolymer, polymethyl methacrylate (PMMA), polycarbonate, polyvinyl chloride, chitosan, and any combination thereof.

7. The microfluidic system of claim 1 , further comprising an adhesive layer configured to mount the microfluidic system to the skin surface, wherein the adhesive layer reversibly adheres the microfluidic system to the skin surface.

8. The microfluidic system or claim 7 , wherein the adhesive layer comprises medical grade acrylic or medical grade silicon.

9. The microfluidic system of claim 1 , wherein said protective layer is polyethylene.

10. The microfluidic system of claim 1 , wherein the collection layer has an average thickness selected from a range of 50 μm to 1 mm.

11. The microfluidic system of claim 1 , wherein the collection layer is a mesh.

12. The microfluidic system of claim 1 , wherein the collection layer has a plurality of pores having an average diameter selected from a range of 10 μm to 250 μm.

13. The microfluidic system of claim 1 , wherein the collection layer is polyester.

14. The microfluidic system of claim 1 that is incorporated into a glove.

15. The microfluidic system of claim 1 , wherein a property of the biofluid is visually observable.

16. The microfluidic system of claim 1 , wherein a signal corresponding to a property of the biofluid is transmitted from said microfluidic system to an external receiving device.

17. The microfluidic system of claim 1 , wherein a property of the biofluid is one or more of a sweat volume, a sweat rate, or a sweat loss.

18. The microfluidic system of claim 1 , wherein a property of the biofluid is pH.

19. The microfluidic system of claim 1 , wherein a property of the biofluid comprises the presence of, amount or concentration of an analyte in said biofluid or component thereof.

20. The microfluidic system of claim 19 , wherein said analyte is an electrolyte, a metabolite, or a biomarker in said biofluid or component thereof.

21. The microfluidic system of claim 1 , wherein a leading edge of the biofluid in a sensor microfluidic channel or reservoir is sensed as a function of time.

22. The microfluidic system of claim 21 , wherein the leading edge is sensed visually or measured using a photodetector.

23. The microfluidic system of claim 1 , wherein the flexible substrate is a functional substrate.

24. The microfluidic system of claim 1 , further comprising an electronic sensor operably connected to a microfluidic network, wherein an amount of the biofluid is proportional to an electrical resistivity or electrical conductivity parameter measured by the electronic sensor.

25. The microfluidic system of claim 1 , comprising a disposable portion comprising a microfluidic network and a reusable portion corresponding to an electronic device, wherein the disposable portion and the reusable portion are connected to each other by one or more selectively releasable coupling elements.

26. The microfluidic system of claim 25 , wherein the selectively releasable coupling elements comprise a magnet.

27. The microfluidic system of claim 1 , comprising a plurality of distinct component layers arranged in a stacked configuration.

28. A microfluidic system for measuring a characteristic of a biofluid, comprising:

a flexible substrate;

a collection layer embedded in or supported by the flexible substrate, wherein the collection layer is configured to promote transport of the biofluid from a skin surface;

at least one reservoir chamber embedded in or supported by the flexible substrate and fluidically connected to the collection layer, the at least one reservoir chamber having:

an absorbent provided to receive at least a portion of the biofluid from the collection layer; and

a sensor for measuring the characteristic of the biofluid received by the absorbent; wherein the absorbent provides a force for transporting the biofluid that is greater than a capillary force of the collection layer for transporting the biofluid;

a disposable portion comprising a microfluidic network and a reusable portion corresponding to an electronic device, wherein the disposable portion and the reusable portion are connected to each other by one or more selectively releasable coupling elements, wherein the selectively releasable coupling elements comprise a magnet; and

a protective layer embedded in or supported by the flexible substrate, wherein the protective layer is configured to prevent the biofluid from escaping from the at least one reservoir chamber.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2020
From: ROGERS, JOHN A.
To: NORTHWESTERN UNIVERSITY; THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ILLINOIS
Reel/Frame 053840/0963 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2020
From: KIM, SUNGBONG
To: THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ILLINOIS
Reel/Frame 053841/0108 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2020
From: CHOI, JUNGIL; RAY, TYLER R.; REEDER, JOHNATHAN T.; SEKINE, YURINA; BANDODKAR, AMAY J.; ZHANG, YI; GUO, HEXIA; OSTOJICH, DIANA
To: NORTHWESTERN UNIVERSITY
Reel/Frame 053841/0153 →
Continuity (11)
Continuation 16616770
Provisional Application 62514546 · Jun 2, 2017
Provisional Application 62514374 · Jun 2, 2017
Provisional Application 62514559 · Jun 2, 2017
Provisional Application 62514455 · Jun 2, 2017
Provisional Application 62514436 · Jun 2, 2017
Provisional Application 62514489 · Jun 2, 2017
Provisional Application 62514515 · Jun 2, 2017
Provisional Application 62514520 · Jun 2, 2017
Provisional Application 62514468 · Jun 2, 2017
Related Publication 20210000395A1 · Jan 7, 2021
Cited By (2)
US 12,605,394 US 12,667,578