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Ilos Eix

Publications and source records attributed to Ilos Eix.

3 recordsLinked to original sources

High-speed, high-sensitivity, gated surface profiling with closed-loop optical coherence topography.

We describe and experimentally demonstrate a novel (to our knowledge) surface profiling technique, for which we propose the term closed-loop optical coherence topography. This technique is a scanning beam, servo-locked variation of low-coherence interferometry. It allows for the sub-wavelength-resolution tracking of a weakly scattering macroscopic-scale surface, with the surface profile being directly output by the controlling electronics. The absence of significant real-time computational overhead makes the technique well suited to high-speed tracking. The use of a micrometer-scale coherence gate efficiently suppresses signals arising from structures not associated with the surface. These features make the technique particularly well suited to real-time surface profiling of in vivo, macroscopic biological surfaces.

Animals↗

Micro displays as intraocular vision aid--design of an optical system.

All over the world about 10 million people suffer from blindness caused by an opaque, irreversible damaged and inoperable cornea. Many of these people still have intact retinal functions. After Prof. Heimann of the University of Köln miniaturized and implantable displays might help such people to restore partially their vision. Optical and physiological constraints of such vision aids are discussed.

Blindness↗

High-speed gated surface profiling with closed-loop optical coherence topography.

The here presented work describes a surface profiling technique, for which the term closed-loop optical coherence topography (CLOCT) was proposed [1]. This technique is a scanning beam, servo-locked variation of low-coherence interferometry. It allows for the sub-wavelength-resolution tracking of a weakly scattering macroscopic-scale surface with the absence of significant real-time computational overhead and is thus particularly well suited to real-time surface profiling of in vivo, macroscopic biological surfaces.

Corneal Topography↗