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Friday, January 25, 2008

How to Build a Bionic Eye

Continued from page 1

By Kate Greene

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In addition to wires, the researchers used chemicals to carve out circular indentations in which the LEDs would be placed. Parviz notes that one challenge in building working electronics and opto-electronics into plastic is that these devices must be made with high heat that would melt the plastic. To get around this problem, his team fabricated LEDs on a separate substrate, ensuring that the devices could easily be removed and transferred onto the plastic lens.

Next, the researchers coated the fully assembled electronic lenses with polymethyl methacrylate (PMMA), a biocompatible material. PMMA is also used to coat hard contact lenses, says Parviz, making his lenses more similar to hard contacts than the soft contacts worn by most people today. In the final step, the researchers molded the plastic into the shape of a lens.

When the team tested the lenses, the circuit was viable and the LEDs lit up. The researchers also placed the lens in a rabbit's eye for 20 minutes and found no adverse effects. However, they did not turn on the electronics while the lens was in the rabbit's eye. "I think we have to be careful about what happens to the eye when it turns on," says Parviz. "It's a functioning circuit. It could generate some heat. We need to take all the possible precautions to make sure this is safe." While it's true that the human body can withstand a range of temperatures, ultimately the circuits must be designed to consume ultralow amounts of power.

"The idea of building a circuit into a contact lens is interesting--it catches the attention," says George Whitesides, a professor of chemistry at Harvard who is not affiliated with the project. "It has been something that others have certainly talked about, but I, at least, have never seen any kind of implementation." Whitesides adds that this is an early step, and there is still the issue of providing power to the lens while it is in the eye. In addition, the University of Washington prototype does not have a clear function.

One of the next steps for the team will be to increase the number of LEDs on the lens to a couple hundred, in the hope of making a viable display. Right now, the LEDs are about 300 micrometers in diameter, which obviously limits the number of them that can be put on a lens. In addition, LEDs this size tend to break in the lens-shaping process. Parviz's team will try to shrink the LEDs to 30 micrometers in future experiments, which could enable the lens to display a few hundred pixels, he says.

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Comments

  • Sign me up!
    deirdrebeth on 01/25/2008 at 2:51 PM
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    Beyond seeing videos in your own head there are the thousands of pairs of cosmetic lenses with cats eyes/demon eyes/lightening/clouds/whatever that are bought every year...what if you could buy one lens and just reprogram it to whatever look you wanted.

    Yeah...I remember that from the Cyberpunk games :-)

    Sign me up.
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  • And the image is formed how?
    JBP on 01/26/2008 at 6:55 AM
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    So you have an array of LEDs on the 1st surface of the cornea - and you illuminate them in a pattern. How do you form a sharp image on the retina? The first surface of the cornea is responsible for 75% of the refractive power in the eye, and it is effectively removed from operation if the object is in contact with it.

    This seems to have tremendous potential as a biosensor, but it can't be an input device in the plane of the cornea.
    Rate this comment: 12345
    • Re: And the image is formed how?
      randrews4 on 01/26/2008 at 8:53 AM
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      I've been following the hoopla about this lens for the past week. It is about time someone questioned how anyone can see an image that is on the lens. I'm surprised MIT Review didn't raise the question.
      Rate this comment: 12345
      • Re: And the image is formed how?
        Manuvidya on 08/05/2008 at 7:03 AM
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        Why wouldn't you be able to anything coming from a contact lens? There's a way to create a sort of virtual depth of field, like the red reticle inside certain aiming devices for guns and such. Look at the dot as you would at the gun (focus wise) and the dot is all blurry. Focus on the distant object and the dot is fully focused. I'm not sure what the technique is called, but I'm sure it can be used on lenses as well. Even if they can only project one color, the goal is information transfer, which makes the potential uses for lenses of that kind uncountable.

        I guess that if you want to ask a good question, I'd start wondering what would power a lens like that. Motion powered would need mechanical parts, piezo electricity to generate power from changing the 'bend' of the lens (blinking, eye movement) needs parts etc as well.. maybe incorporate a mini solar panel, create a top layer of the stuff for power.. and think of what our eyes would look like :O
        Rate this comment: 12345
  • [no subject]
    Monsterboy on 08/05/2008 at 1:31 PM
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    Well, I've read of a few nonstandard focusing methods right here on tech review. For instance: http://www.technologyreview.com/Nanotech/19576/

    Never know what a little engineering can do to something in a few years.
    Rate this comment: 12345
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