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Physical Layer Aspects of Quantum Communications: A Survey

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arxiv 2407.09244 v1 pith:RUOWKJRE submitted 2024-07-12 quant-ph cs.NI

classification quant-phcs.NI
keywords quantumcommunicationsystemscommunicationslayerphysicalsurveyaspects
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Quantum communication systems support unique applications in the form of distributed quantum computing, distributed quantum sensing, and several cryptographic protocols. The main enabler in these communication systems is an efficient infrastructure that is capable to transport unknown quantum states with high rate and fidelity. This feat requires a new approach to communication system design which efficiently exploits the available physical layer resources, while respecting the limitations and principles of quantum information. Despite the fundamental differences between the classic and quantum worlds, there exist universal communication concepts that may proven beneficial in quantum communication systems as well. In this survey, the distinctive aspects of physical layer quantum communications are highlighted in a attempt to draw commonalities and divergences between classic and quantum communications. More specifically, we begin by overviewing the quantum channels and use cases over diverse optical propagation media, shedding light on the concepts of crosstalk and interference. Subsequently, we survey quantum sources, detectors, channels and modulation techniques. More importantly, we discuss and analyze spatial multiplexing techniques, such as coherent control, multiplexing, diversity and MIMO. Finally, we identify synergies between the two communication technologies and grand open challenges that can be pivotal in the development of next-generation quantum communication systems.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Security Analysis of MDI-QKD in Turbulent Free-Space Polarization Channels-A Composite Channel Framework

    quant-ph 2025-09 conditional novelty 6.0 of 10

    A closed-form composite channel model maps atmospheric turbulence to depolarization and decoherence parameters, yielding an analytic secret key rate for free-space MDI-QKD.

  2. Quantum Internet in a Nutshell -- Advancing Quantum Communication with Ion Traps

    quant-ph 2025-07 conditional novelty 6.0 of 10

    A trapped-ion quantum computer emulates BB84 and BBM92 with cloning and side-channel attacks, and simulated small QEC codes can suppress channel noise and fingerprint the noise channel.

  3. Crosstalk-Resilient Quantum MIMO for Scalable Quantum Communications

    quant-ph 2025-06 conditional novelty 6.0 of 10

    When crosstalk strength is exactly rational and lattices are matched, the mixing can be shifted into a gauge subsystem so GKP-encoded logical information survives.

  4. OSI Stack Redesign for Quantum Networks: Requirements, Technologies, Challenges, and Future Directions

    quant-ph 2025-06 conditional novelty 4.0 of 10

    The paper proposes a Quantum-Converged OSI stack with nine layers, adding Layer 0 (Quantum Substrate) and Layer 8 (Cognitive Intent Plane) to the classical OSI model for quantum networks.

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