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Vision is the result of light being detected and transduced into neural signals by the retina of the eye. This information is then further analyzed and interpreted by the brain. First, light enters the front of the eye and is focused by the cornea and lens onto the retina—a thin sheet of neural tissue lining the back of the eye. Because of refraction through the convex lens of the eye, images are projected onto the retina upside-down and reversed.
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The eye is a spherical, hollow structure composed of three tissue layers. The outer layer — the fibrous tunic, comprises the sclera — a white structure — and the cornea, which is transparent. The sclera encompasses some of the ocular surface, most of which is not visible. However, the 'white of the eye' is distinctively visible in humans compared to other species. The cornea, a clear covering at the front of the eye, enables light penetration. The eye's middle...
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At the molecular level, visual signals trigger transformations in photopigment molecules, resulting in changes in the photoreceptor cell's membrane potential. The photon's energy level is denoted by its wavelength, with each specific wavelength of visible light associated with a distinct color. The spectral range of visible light, classified as electromagnetic radiation, spans from 380 to 720 nm. Electromagnetic radiation wavelengths exceeding 720 nm fall under the infrared category,...
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Light rays enter the eye through the cornea, a transparent dome-shaped tissue that is the eye's outermost layer. The cornea bends or refracts, light rays traveling to the pupil. The shape of the cornea determines how much of the light is bent and whether the image will be focused correctly on the retina at the back of the eye. Once the light has passed through both refraction layers, it converges into a single focal point onto a small area. This is where photoreceptors start transforming...
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Biologically inspired artificial eyes and photonics.

Jae-Jun Kim1, Hewei Liu1, Alireza Ousati Ashtiani1

  • 1Electrical and Computer Engineering, University of Wisconsin-Madison, Madison, WI 53706, United States of America.

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Summary

Scientists are developing bioinspired photonic devices that mimic natural eyes for advanced imaging. These artificial eyes offer tunable focus, high resolution, and efficient light management, surpassing conventional technologies.

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Area of Science:

  • Optics and Photonics
  • Biomimetics
  • Materials Science

Background:

  • Natural visual systems, particularly mammal and compound eyes, possess advanced optical properties.
  • These properties include tunable focal length, high-resolution imaging, wide field of view, and efficient light management.
  • Conventional photonic devices often lack the sophistication of natural visual systems.

Purpose of the Study:

  • To provide a comprehensive review of bioinspired artificial eyes and photonic devices.
  • To highlight the functional mimicry of natural eye features in engineered devices.
  • To explore diverse applications of these bioinspired technologies.

Main Methods:

  • Review of scientific literature on bioinspired photonic devices.
  • Categorization of devices based on inspiration from mammal eyes and compound eyes.
  • Discussion of optical components, imaging sensors, and light management strategies.

Main Results:

  • Overview of mammal eye-inspired components: tunable lenses, curved sensors, and light modulators.
  • Presentation of compound eye-inspired devices: microlens/micromirror arrays, curved sensor arrays, waveguides, and antireflective nanostructures.
  • Description of advanced functionalities like tunable focal length, enhanced photosensitivity, and polarization imaging.

Conclusions:

  • Bioinspired photonic devices offer significant advantages over conventional technologies.
  • Mimicking natural eye functions leads to innovative solutions in imaging and light management.
  • Continued research in this field promises further advancements in photonic device capabilities.