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Updated: Aug 6, 2026

Generation and Coherent Control of Pulsed Quantum Frequency Combs
Published on: June 8, 2018
Hyperloss from coherent spatial-mode mixing in quantum-correlated networks
Stephan Grebien1, Julian Gurs1, Roman Schnabel1
1Institut für Quantenphysik and Zentrum für Optische Quantentechnologien, Universität Hamburg, Hamburg, Germany.
Spatial-mode mismatch in quantum networks causes "hyperloss," degrading squeezed light. Tuning spatial-mode phases can recover lost quantum correlations, a key design consideration for quantum technologies.
Area of Science:
- Quantum optics
- Quantum information science
Background:
- Quantum-correlated networks are essential for quantum technologies like computing and communication.
- Loss-induced decoherence, particularly in squeezed light, hinders quantum advantage.
- Spatial-mode mismatch is often assumed to cause incoherent loss.
Purpose of the Study:
- To investigate the effect of coherent spatial-mode mixing on squeezed light in quantum networks.
- To experimentally demonstrate and quantify the phenomenon of 'hyperloss'.
Main Methods:
- Experimental setup of a minimal two-node quantum network.
- Characterization of squeezing in the presence of spatial-mode mismatch.
- Analysis of correlation recovery by tuning differential spatial-mode phases.
Main Results:
- A minimal two-node network exhibited hyperloss, where 8% mode mismatch converted 5.8 dB of squeezing into a thermal state.
- Hyperloss represents a coherent effect, not merely incoherent loss.
- Lost quantum correlations were recoverable through phase tuning.
Conclusions:
- Spatial-mode mismatch can lead to hyperloss, a significant practical constraint in quantum network design.
- Understanding and controlling hyperloss is crucial for realizing strong quantum advantage.
- Phase tuning offers a method to mitigate hyperloss and recover quantum correlations.
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