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Multicasting Optical Reconfigurable Switch

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arxiv 2401.14173 v2 pith:Q4PCIF3K submitted 2024-01-25 physics.optics cs.NI

classification physics.opticscs.NI
keywords opticalmulticastingwavelengthchannelsportsspatialswitchapproach
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Artificial Intelligence (AI) demands large data flows within datacenters, heavily relying on multicasting data transfers. As AI models scale, the requirement for high-bandwidth and low-latency networking compounds. The common use of electrical packet switching faces limitations due to optical-electrical-optical conversion bottlenecks. Optical switches, while bandwidth-agnostic and low-latency, suffer from having only unicast or non-scalable multicasting capability. This paper introduces an optical switching technique addressing this challenge. Our approach enables arbitrarily programmable simultaneous unicast and multicast connectivity, eliminating the need for optical splitters that hinder scalability due to optical power loss. We use phase modulation in multiple layers, tailored to implement any multicast connectivity map. Phase modulation also enables wavelength selectivity on top of spatial selectivity, resulting in an optical switch that implements space-wavelength routing. We conducted simulations and experiments to validate our approach. Our results affirm the concept's feasibility, effectiveness, and scalability, as a multicasting switch by experimentally demonstrating 16 spatial ports using 2 wavelength channels. Numerically, 64 spatial ports with 4 wavelength channels each were simulated, with approximately constant efficiency (< 3 dB) as ports and wavelength channels scale.

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  1. Miniaturised transmissive multi-plane light converters via laser-written geometric phase holograms cascaded in glass

    physics.optics 2026-02 conditional novelty 6.0 of 10

    Stacked laser-written geometric-phase holograms inside glass form compact multi-plane light converters that sort 3 and 10 Hermite-Gaussian modes.

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