Quantum Breakthrough: 100-Channel Parallel Teleportation Achieved with Spatial Light Modes

September 15, 2026
Quantum Breakthrough: 100-Channel Parallel Teleportation Achieved with Spatial Light Modes
  • A research team led by Jietai Jing at East China Normal University demonstrated quantum teleportation across 100 independent channels by encoding a 100-pixel image in a 10-by-10 grid of spatial light modes, effectively achieving parallel quantum information transfer.

  • The capacity limit was primarily due to available laser power, with about one watt used for pumping; more powerful lasers could enable more spatial modes and additional channels.

  • This setup represents a scalable architecture for high-bandwidth quantum networks, enabling parallel teleportation without a proportional increase in system complexity.

  • The work was published in Physical Review Letters, marking a notable step toward practical, high-capacity quantum communication networks.

  • They created a matching grid of entangled light and an all-optical processing system that handles all 100 channels in parallel, avoiding the need for separate electronic feedforward for each channel.

  • The experiment achieved an average teleportation fidelity of 0.60 across all channels, surpassing the classical limit of 0.52 and confirming genuine quantum teleportation for the setup.

  • Each spatial mode acts as a pixel carrying the continuous-variable quantum state of the optical field, and the 100 modes collectively encoded the letter 'Q' for the test image.

Summary based on 1 source


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