IP Library Granted Patent US 10,085,637
Granted Patent B2
US 10,085,637 · App. 15/067,378 · Granted Oct 2, 2018

Contact lens with a microfluidic channel to monitor radius of curvature of cornea

Inventors: Ismail Emre Araci (Palo Alto, CA); Murat Baday (Menlo Park, CA)
Assignee: SMARTLENS, INC.
A61B3/16A61B3/107
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Quick Facts
Patent No.
US 10,085,637
App. No.
15/067,378
Granted
Oct 2, 2018
Kind
B2
Abstract

a contact lens that monitors the radius of curvature of cornea includes an amplification chamber, am annular membrane, a microfluidic channel, and a gas reservoir within a top and bottom lens layers of the contact lens. The annular membrane is positioned within the amplification chamber and is in fluid communication with the gas reservoir through the microfluidic channel. A working gas within the gas reservoir and a working fluid within the amplification chamber and the microfluidic channel create a fluid-gas equilibrium pressure interface. The curvature change of the cornea results the amplification chamber wall and the annular membrane to deflect, wherein the deflection results the fluid-gas equilibrium pressure interface baseline to change within the microfluidic channel. Then the baseline position change is recorded by an external imaging system to analysis sensitivity calculation of the cornea.

Claims (66)

1. A contact lens to monitor radius of curvature of the cornea comprises;

a top lens layer;

a bottom lens layer;

an amplification chamber;

an annular membrane;

a microfluidic channel;

a gas reservoir;

the top lens layer and bottom lens layer being concentrically connected to each other to delineate the amplification chamber, the microfluidic channel, and the gas reservoir;

the annular membrane being perimetrically positioned within the amplification chamber;

the microfluidic channel and the gas reservoir being positioned within a central region of the top lens layer and the bottom lens layer;

a first open end of the microfluidic channel being in fluid communication with the amplification chamber and the annular membrane; and

a second open end of the microfluidic channel being in fluid communication with the gas reservoir, opposite of the first open end.

2. The contact lens to monitor radius of curvature of the cornea as claimed in claim 1 comprises;

the top lens layer and the bottom lens layer further comprises an edge;

the edge of the top lens layer being positioned offset from the edge of the bottom lens layer;

the edge of the top lens layer being positioned coplanar with the edge of the bottom lens layer;

the amplification chamber being radially extended from the central region of the top lens layer and the bottom lens layer to the edge of the top lens layer and the bottom lens layer; and

the amplification chamber being adjacently positioned with the edge of the top lens layer and the bottom lens layer.

3. The contact lens to monitor radius of curvature of cornea as claimed in claim 1 , wherein a diameter of the amplification chamber is larger than a diameter of the microfluidic channel.

4. The contact lens to monitor radius of curvature of cornea as claimed in claim 1 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the top lens layer.

5. The contact lens to monitor radius of curvature of the cornea as claimed in claim 1 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the bottom lens layer.

6. The contact lens to monitor radius of curvature of the cornea as claimed in claim 1 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the top lens layer and the bottom lens layer.

7. The contact lens to monitor radius of curvature of the cornea as claimed in claim 1 comprises;

a fluid-gas equilibrium pressure interface;

a working fluid being distributed from the amplification chamber to the fluid-gas equilibrium pressure interface through the first open end; and

a working gas being distributed from the gas reservoir to the fluid-gas equilibrium pressure interface through the second open end.

8. The contact lens to monitor radius of curvature of the cornea as claimed in claim 7 , wherein a fluid-region of the microfluidic channel is established from the first open end to the fluid-gas equilibrium pressure interface.

9. The contact lens to monitor radius of curvature of the cornea as claimed in claim 7 , wherein a gas-region of the microfluidic channel is established from the second open end to the fluid-gas equilibrium pressure interface.

10. The contact lens to monitor radius of curvature of the cornea as claimed in claim 1 comprises;

the top lens layer and the bottom lens layer further comprises an edge;

the edge of the top lens layer being perimetrically connected to the edge of the bottom lens layer to delineate a hermetic seal;

the amplification chamber being radially extended from the central region of the top lens layer and the bottom lens layer to the hermetic seal; and

the amplification chamber being adjacently positioned with the edge of the top lens layer and the bottom lens layer.

11. The contact lens to monitor radius of curvature of the cornea as claimed in claim 10 , wherein the bottom lens layer has a lower young's modulus compare to the top lens layer.

12. A contact lens to monitor radius of curvature of the cornea comprises;

a top lens layer;

a bottom lens layer;

an amplification chamber;

an annular membrane;

a microfluidic channel;

a gas reservoir;

a fluid-gas equilibrium pressure interface;

the top lens layer and bottom lens layer being concentrically connected to each other to delineate the amplification chamber, the microfluidic channel, and the gas reservoir;

the annular membrane being perimetrically positioned within the amplification chamber;

the microfluidic channel and the gas reservoir being positioned within a central region of the top lens layer and the bottom lens layer;

a first open end of the microfluidic channel being in fluid communication with the amplification chamber and the annular membrane;

a second open end of the microfluidic channel being in fluid communication with the gas reservoir, opposite of the first open end;

a working fluid being distributed from the amplification chamber to the fluid-gas equilibrium pressure interface through the first open end; and

a working gas being distributed from the gas reservoir to the fluid-gas equilibrium pressure interface through the second open end.

13. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 , wherein a fluid-region of the microfluidic channel is established from the first open end to the fluid-gas equilibrium pressure interface.

14. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 , wherein a gas-region of the microfluidic channel is established from the second open end to the fluid-gas equilibrium pressure interface.

15. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 comprises;

the top lens layer and the bottom lens layer further comprises an edge;

the edge of the top lens layer being perimetrically connected to the edge of the bottom lens layer to delineate a hermetic seal;

the amplification chamber being radially extended from the central region of the top lens layer and the bottom lens layer to the hermetic seal; and

the amplification chamber being adjacently positioned with the edge of the top lens layer and the bottom lens layer.

16. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 comprises;

the top lens layer and the bottom lens layer further comprises an edge;

the edge of the top lens layer being positioned offset from the edge of the bottom lens layer;

the edge of the top lens layer being positioned coplanar with the edge of the bottom lens layer;

the amplification chamber being radially extended from the central region of the top lens layer and the bottom lens layer to the edge of the top lens layer and the bottom lens layer; and

the amplification chamber being adjacently positioned with the edge of the top lens layer and the bottom lens layer.

17. The contact lens to monitor radius of curvature of cornea as claimed in claim 12 , wherein a diameter of the amplification chamber is larger than a diameter of the microfluidic channel.

18. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the top lens layer.

19. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the bottom lens layer.

20. The contact lens to monitor radius of curvature of the cornea as claimed in claim 12 , wherein the amplification chamber, the microfluidic channel, and the gas reservoir being integrated into the top lens layer and the bottom lens layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2018
From: ARACI, ISMAIL EMRE; BADAY, MURAT
To: SMARTLENS, INC.
Reel/Frame 046643/0090 →
Continuity (2)
Provisional Application 62131429 · Mar 11, 2015
Related Publication 20160262616A1 · Sep 15, 2016
Cited By (6)
US 12,245,817 US 12,262,950 US 12,268,449 US 12,390,162 US 12,440,103 US 12,655,256