IP Library Granted Patent US 10,624,791
Granted Patent B2
US 10,624,791 · App. 15/812,433 · Granted Apr 21, 2020

Artificial vision intraocular implant device

Inventor: Manjinder Saini (Germantown, TN)
A61F9/08A61F2/1624A61F2250/0002
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Quick Facts
Patent No.
US 10,624,791
App. No.
15/812,433
Granted
Apr 21, 2020
Kind
B2
Abstract

An intraocular implant device for restoring, augmenting, or improving vision of a user, the implant including an intraocular implant body shaped for positioning inside a lens chamber of an eye, the body having an anterior side facing the cornea of the eye, and a posterior side facing the retina of the eye; a photoelectric sensor disposed on the anterior side of the body; wherein the photoelectric sensor is operable to receive incident light through the cornea and to convert the received light into electrical energy for use with one or more circuit components disposed on the body, and wherein the photoelectric sensor is nearly simultaneously operable to convert the received light into image data. The ocular implant device may include a projector for projecting the image data onto the retina of a user. The ocular implant may include a wireless receiver for receiving image data transmissions from an external source.

Claims (29)

1. An intraocular implant device, comprising:

an intraocular implant body shaped for positioning inside a lens chamber of an eye, the intraocular implant body having an anterior side for facing a cornea of the eye, and a posterior side for facing a retina of the eye;

a photoelectric sensor disposed on the anterior side of the intraocular implant body, wherein the photoelectric sensor is operable to receive incident light through the cornea and to convert the incident light into electrical energy for use with one or more circuit components disposed on the intraocular implant body, and

wherein the photoelectric sensor is also operable to convert the incident light into image data, and

wherein the photoelectric sensor comprises a picture element operable to detect chrominance and luminance of the incident light and a photoelectric element disposed proximate the picture element.

2. The device of claim 1 , further comprising:

a light projector disposed on the posterior side of the intraocular implant body, the light projector configured to receive a digital input signal including the image data, and to emit photons from the light projector onto the retina in a pattern representative of the image data.

3. The device of claim 2 , further comprising:

an external light source spaced in relation to the intraocular implant body exterior to the eye, the external light source is operable to generate and emit the incident light through the cornea onto the photoelectric sensor disposed on the anterior side of the implant body.

4. The device of claim 1 , wherein the photoelectric sensor further comprises a light filter proximate the picture element, wherein the light filter is configured to permit specific wavelengths of light to pass through to the picture element.

5. The device of claim 1 , wherein the photoelectric sensor further comprises a prism disposed anterior the picture element, wherein the prism separates incident light according to wavelength.

6. An intraocular implant device, comprising:

an intraocular implant body shaped for positioning inside a lens chamber of an eye, the intraocular implant body having an anterior side for facing a cornea of the eye, and a posterior side for facing a retina of the eye;

a photoelectric sensor disposed on the anterior side of the intraocular implant body, wherein the photoelectric sensor is operable to receive incident light through the cornea and to convert the incident light into electrical energy for use with one or more circuit components disposed on the intraocular implant body, and

wherein the photoelectric sensor is also operable to convert the incident light into image data, and

wherein the photoelectric sensor comprises a plurality of stacked photoelectric p-n junctions, wherein each stacked photoelectric p-n junction is receptive to a specific bandwidth of light frequencies.

7. A method of providing artificial vision to a user, comprising:

implanting an intraocular implant device into a lens chamber of a user, wherein the intraocular device comprises:

an intraocular implant body,

a photoelectric power harnessing camera disposed on the intraocular implant body, and

a projector operable to receive power and an input signal from the photoelectric power harnessing camera, the input signal representing images;

projecting the images represented in the input signal onto a retina of the user;

transmitting the input signal from a wireless transceiver disposed in the intraocular implant device to an external device prior to projecting;

modifying the input signal in the external device; and

re-transmitting the input signal from the external device to the wireless transceiver.

8. The method of claim 7 , further comprising transmitting a second input signal from an external device to a wireless receiver disposed in the intraocular implant device.

9. The method of claim 8 , further comprising integrating the second input signal into the input signal via a processor disposed in the intraocular implant device prior to projecting the input signal.

10. The method of claim 9 , wherein the second input signal includes a GPS overlay input signal.

11. The method of claim 7 , further comprising supplying the intraocular implant device with optimized light power from a light emitting contact lens or a light emitting device mounted to glasses of a user.

Continuity (2)
Provisional Application 62517894 · Jun 10, 2017
Related Publication 20180353332A1 · Dec 13, 2018
Cited By (1)
US 12,233,006