IP Library › Granted Patent US 11,759,107
Granted Patent B2
US 11,759,107 · App. 17/137,067 · Granted Sep 19, 2023

Closed microfluidic network for strain sensing embedded in a contact lens to monitor intraocular pressure

Inventors: Ismail Emre Araci (Santa Clara, CA); Sevda Agaoglu (Santa Clara, CA); Murat Baday (Palo Alto, CA); Priscilla Diep (San Jose, CA)
Assignee: Smartlens, Inc.
A61B3/16G02C7/04A61B2562/0261
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Quick Facts
Patent No.
US 11,759,107
App. No.
17/137,067
Granted
Sep 19, 2023
Kind
B2
Abstract

A microfluidic strain sensing device for monitoring intraocular pressure. The device has a contact lens and a closed microfluidic network embedded with the contact lens. The network has a volume that is sensitive to an applied strain. The network distinguishes: (i) a gas reservoir containing a gas, (ii) a liquid reservoir containing a liquid that changes volume when the strain is applied, and (iii) a sensing channel able to hold the liquid within the sensing channel. The sensing channel connects the gas reservoir on one end and connects the liquid reservoir on another end. The sensing channel establishes a liquid-gas equilibrium pressure interface and equilibrium within the sensing channel, which would fluidically change as a response to radius of curvature variations on a cornea, or as a response to mechanical stretching and release of the cornea. The liquid-gas equilibrium pressure interface and equilibrium are used for measuring the intraocular pressure.

Claims (33)

1. A wearable device for measuring an intraocular pressure within an eye, the device comprising:

a contact lens;

a first closed microfluidic strain sensor integrated into the contact lens, the first closed microfluidic strain sensor comprising:

a first gas reservoir containing a gas;

a first liquid reservoir containing a liquid; and

a first sensing channel connecting the first gas reservoir and the first liquid reservoir;

wherein the first sensing channel contains a first fluid-gas interface between the first gas reservoir and the first fluid reservoir, the first fluid-gas interface moving within the first sensing channel in response to an axial strain exerted on the contact lens; and

wherein an electronic component is absent from the wearable device,

wherein the wearable device further comprises a second closed microfluidic strain sensor, the second microfluidic strain sensor comprising a second fluid reservoir, a second gas reservoir, and a second sensing channel;

wherein the second sensing channel contains a second fluid-gas interface between the second gas reservoir and the second fluid reservoir, the second fluid-gas interface moving within the second sensing channel in response to axial strain exerted on the contact lens.

2. The wearable device as described in claim 1 , wherein the first closed microfluidic strain sensor is arranged along a peripheral area of the contact lens.

3. The wearable device as described in claim 2 , wherein the first closed microfluidic strain sensor is arranged as a ring.

4. The wearable device as described in claim 1 , wherein the first and second closed microfluidic strain sensors are independent of each other.

5. The wearable device as described in claim 1 , wherein the first liquid reservoir comprises one or more chambers.

6. The wearable device as described in claim 5 , wherein the one or more chambers further comprise two or more concentric rings.

7. The wearable device as described in claim 6 , wherein the two or more concentric rings are interconnected.

8. The wearable device as described in claim 6 , wherein each concentric ring is a different width.

9. The wearable device as described in claim 1 , wherein the first closed microfluidic strain sensor has a position that does not interfere with a vision pathway of a user through the contact lens.

10. A wearable device for measuring an intraocular pressure within an eye, the device comprising:

a contact lens;

a first closed microfluidic strain sensor integrated into the contact lens, the first closed microfluidic strain sensor comprising:

a first gas reservoir containing a gas;

a first liquid reservoir containing a liquid; and

a first sensing channel connecting the first gas reservoir and the first liquid reservoir;

wherein the first sensing channel contains a first fluid-gas interface between the first gas reservoir and the first fluid reservoir, the first fluid-gas interface moving within the first sensing channel in response to an axial strain exerted on the contact lens; and

wherein an electronic component is absent from the wearable device,

wherein the first liquid reservoir comprises one or more chambers, and

wherein the one or more chambers further comprise two or more concentric rings.

11. The wearable device as described in claim 10 , wherein the first closed microfluidic strain sensor is arranged along a peripheral area of the contact lens.

12. The wearable device as described in claim 11 , wherein the first closed microfluidic strain sensor is arranged as a ring.

13. The wearable device as described in claim 10 , wherein the two or more concentric rings are interconnected.

14. The wearable device as described in claim 10 , wherein each concentric ring is a different width.

15. The wearable device as described in claim 10 , wherein the first closed microfluidic strain sensor has a position that does not interfere with a vision pathway of a user through the contact lens.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 20, 2023
From: ARACI, ISMAIL EMRE; AGAOGLU, SEVDA; BADAY, MURAT; DIEP, PRISCILLA
To: SANTA CLARA UNIVERSITY
Reel/Frame 063388/0735 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 20, 2023
From: SANTA CLARA UNIVERSITY
To: SMARTLENS, INC.
Reel/Frame 063399/0524 →
Continuity (3)
Continuation 16124630 · Sep 7, 2018
Provisional Application 62556366 · Sep 9, 2017
Related Publication 20210113083A1 · Apr 22, 2021
Cited By (4)
US 12,262,950 US 12,268,449 US 12,390,162 US 12,440,103