Applications

Programmable light control for the next infrastructure layer.

NanoSLM targets the optical-control bottlenecks emerging in AI data centers, optical links, and quantum systems.

AI optical switching

AI optical switching

Programmable optical switching for AI infrastructure.

NanoSLM enables optical circuit switches with up to 10,000 programmable ports, opening the unexplored microsecond switching regime.

AI training clusters are increasingly limited by data movement, network contention, and accelerator idle time. NanoSLM enables compact optical circuit switching architectures with up to 10,000 programmable ports and microsecond-scale reconfiguration.

This opens the path to burst-scale optical packet switching and new data-center network architectures designed to improve accelerator utilization without adding more electronic switching layers.

  • High-port-count optical circuit switching
  • Microsecond-scale optical reconfiguration
  • Burst-scale optical packet switching
  • Reduced GPU idle time in large accelerator clusters
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Quantum control

Quantum control

High-speed holographic control for scalable quantum systems.

NanoSLM enables programmable holographic optical control up to 100x faster than conventional SLM-based systems.

Neutral-atom and photonic quantum platforms require precise, programmable optical patterns to generate, rearrange, and control many optical sites in parallel.

NanoSLM provides high-speed holographic optical control for scalable quantum systems, enabling architectures designed to move beyond the speed limits of conventional spatial light modulators while maintaining precise optical pattern control.

  • Programmable holographic optical patterns
  • Fast reconfiguration of optical site arrays
  • Parallel optical control for scalable quantum platforms
  • Up to 100x faster control than conventional SLM-based systems
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Next step

Flatlight focuses first on AI optical switching, while also addressing optical communication links and scalable quantum control with application-specific precision.