Phase-locked sustainment of photorefractive holograms using phase conjugation
Yong Qiao, Demetri Psaltis, Claire Gu, John Hong, Pochi Yeh
Abstract
Yong Qiao, Demetri Psaltis, Claire Gu, John Hong, Pochi Yeh
Abstract
When multiple holograms are recorded in a photorefractive crystal, the recording of recent holograms erases early ones. We can equalize the strengths of all recorded holograms by following an appropriate exposure schedule. However, this leads to a composite hologram whose strength decreases as the number of exposures increases. In this paper, we describe a system in which the composite photorefractive hologram reaches a steady state with overall efficiency independent of the number of holograms (N). Furthermore, the phases of the recorded holograms remain locked during this process.
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When multiple holograms are recorded in a photorefractive crystal, the recording of recent holograms erases early ones. We can equalize the strengths of all recorded holograms by following an appropriate exposure schedule. However, this leads to a composite hologram whose strength decreases as the number of exposures increases. In this paper, we describe a system in which the composite photorefractive hologram reaches a steady state with overall efficiency independent of the number of holograms (N). Furthermore, the phases of the recorded holograms remain locked during this process.
Key concepts: Photorefractive effect, Holography, Materials science, Optics, Phase (matter), Diffraction efficiency, Crystal (programming language), Optoelectronics