Unlocking Mode Programming with Multi-Plane Light Conversion Using Computer-Generated Hologram Optimisation
Stefan Rothe, Fabio Barbosa, J\"urgen W. Czarske, Filipe M. Ferreira

TL;DR
This paper demonstrates that computer-generated hologram algorithms, like direct search, significantly enhance mode programming in multi-plane light conversion systems, improving mode extinction ratios over traditional wavefront matching methods.
Contribution
The study introduces a novel hologram optimization approach that outperforms traditional methods, enabling better mode control and adaptability in programmable optical multiplexers.
Findings
Mode extinction ratio improved by up to 15 dB.
Insertion loss increased by less than 3 dB.
Enhanced performance on both LP and Schmidt modes.
Abstract
Programmable optical devices provide performance enhancement and flexibility to spatial multiplexing systems enabling transmission of tributaries in high-order eigenmodes of spatially-diverse transmission media, like multimode fiber (MMF). Wavefront shaping with spatial light modulators (SLMs) facilitates scalability of the transmission media by allowing for channel diagonalization and quasi-single-input single-output operation. Programmable mode multiplexing configurations like multi-plane light conversion (MPLC) utilise the SLM and offer the potential to simultaneously launch an arbitrary subset of spatial tributaries in any N-mode MMF. Such programmable optical processor would enable the throughput of space-division multiplexing (SDM) systems to be progressively increased by addressing a growing number of tributaries over one MMF and in this way meet a growing traffic demand -…
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Taxonomy
TopicsNeural Networks and Reservoir Computing · Spectroscopy Techniques in Biomedical and Chemical Research
