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  4. Enhancing three-dimensional beam shaping accuracy through cascaded spatial light modulators using diffractive neural networks
 
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2024
Conference Paper
Title

Enhancing three-dimensional beam shaping accuracy through cascaded spatial light modulators using diffractive neural networks

Abstract
Diffractive neural networks (DNNs) are an emerging design method for systems of cascaded phase masks, where the optical system is treated as an all-optical neural network. In previous work, we have demonstrated how this method can be used to design highly flexible beam shaping systems. We have also shown that DNNs can be used to correct pixel crosstalk and direct reflection in a spatial light modulator based on liquid crystal on silicon. Here, we extend the correction of these effects to two cascaded spatial light modulators and demonstrate the resulting increase in accuracy of the three-dimensional beam shaping capabilities of DNNs.
Author(s)
Buske, Paul  
Fraunhofer-Institut für Lasertechnik ILT  
Janssen, Fynn
Fraunhofer-Institut für Lasertechnik ILT  
Hofmann, Oskar  
RWTH Aachen University  
Stollenwerk, Jochen  
Fraunhofer-Institut für Lasertechnik ILT  
Holly, Carlo  
RWTH Aachen University  
Mainwork
Computational Optics 2024  
Conference
Conference "Computational Optics" 2024  
DOI
10.1117/12.3023102
Language
English
Fraunhofer-Institut für Lasertechnik ILT  
Keyword(s)
  • Beam shaping

  • Spatial light modulators

  • Crosstalk

  • Neural networks

  • Liquid crystal on silicon

  • Diffractive optical elements

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