IP Library Granted Patent US 10,492,683
Granted Patent B2
US 10,492,683 · App. 15/674,588 · Granted Dec 3, 2019

Split-ring resonator-based strain sensor on flexible substrates for glaucoma detection

Inventors: Arda D. Yalçinkaya (Istanbul, TR); Günhan Dündar (Istanbul, TR); Hamdi Torun (Istanbul, TR)
Assignee: BOGAZICI UNIVERSITESI
A61B3/16A61B5/6821A61B2562/0247A61B2562/0261A61B2562/12
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Quick Facts
Patent No.
US 10,492,683
App. No.
15/674,588
Granted
Dec 3, 2019
Kind
B2
Abstract

The invention relates a split-ring resonator-based strain sensor on flexible substrates for glaucoma detection. The purpose of this invention is to provide a sensor which is electrically passive, wireless and low cost to measure intraocular pressure. It measures intraocular pressure by placing a microwave resonator on top of contact lenses. The sensor that is a metallic ring can be placed on a contact lens using standard methods of metal deposition (sputtering, evaporation, etc.) using a shadow mask. The sensor on the lens does not require any electrical signal to operate and are interrogated by external antennas that can be located away from the contact lens. This is very advantageous to define flexible strain sensors that are required for applications as glaucoma detection.

Claims (48)

1. A biomedical pressure sensor comprising:

a flexible substrate; and

a flexible resonator disposed on the flexible substrate, wherein a change in a shape of the flexible resonator changes a resonant frequency of the flexible resonator, and

wherein the flexible resonator is a split-ring which includes a gap and two extension portions at both ends of the gap.

2. The biomedical pressure sensor according to claim 1 , wherein the flexible substrate is made of cellulose acetate.

3. The biomedical pressure sensor according to claim 1 , wherein an inductance of the split-ring is expressed by the following equation:

L

=

μ

0

R

m

(

log

8

R

m

h

+

w

-

1

2

)

wherein μ 0 is free-space permeability, R m is effective radius of the split-ring, w is a width of the split-ring, and h is a height of the split-ring;

wherein a capacitance of the gap is calculated as follows:

C

gap

=

ɛ

0

hw

g

+

C

0

wherein ε 0 is free-space permittivity, C 0 is the capacitance caused by fringing fields and can be calculated as C 0 =ε 0 (h+w+g).

4. The biomedical pressure sensor according to claim 1 , wherein the split-ring has the resonant frequency in S-band which is 2-4 GHz of an electromagnetic band.

5. The biomedical pressure sensor according to claim 1 , wherein the split-ring is made of a silver conductive paint.

6. The biomedical pressure sensor according to claim 1 , wherein a thickness of the split-ring is 500 μm.

7. The biomedical pressure sensor according to claim 1 , wherein a width of the split-ring is 1.5 mm.

8. The biomedical pressure sensor according to claim 1 , wherein a width of the gap is 1 mm.

9. The biomedical pressure sensor according to claim 1 , wherein a length of the two extension portions is 3.5 mm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2017
From: YALÇINKAYA, ARDA D.; DÜNDAR, GÜNHAN; TORUN, HAMDI
To: BOGAZICI UNIVERSITESI
Reel/Frame 043539/0243 →
Continuity (2)
Provisional Application 62374023 · Aug 12, 2016
Related Publication 20180042479A1 · Feb 15, 2018
Cited By (10)
US 12,196,636 US 12,265,058 US 12,270,785 US 12,313,570 US 12,317,466 US 12,318,136 US 12,339,272 US 12,379,339 US 12,449,387 US 12,736,504