Experimental quantum key distribution with simulated ground-to-satellite photon losses and processing limitations
arXiv:1512.05789 · doi:10.1103/PhysRevA.92.052339
Abstract
Quantum key distribution (QKD) has the potential to improve communications security by offering cryptographic keys whose security relies on the fundamental properties of quantum physics. The use of a trusted quantum receiver on an orbiting satellite is the most practical near-term solution to the challenge of achieving long-distance (global-scale) QKD, currently limited to a few hundred kilometers on the ground. This scenario presents unique challenges, such as high photon losses and restricted classical data transmission and processing power due to the limitations of a typical satellite platform. Here we demonstrate the feasibility of such a system by implementing a QKD protocol, with optical transmission and full post-processing, in the high-loss regime using minimized computing hardware at the receiver. Employing weak coherent pulses with decoy states, we demonstrate the production of secure key bits at up to 56.5 dB of photon loss. We further illustrate the feasibility of a satellite uplink by generating secure key while experimentally emulating the varying channel losses predicted for realistic low-Earth-orbit satellite passes at 600 km altitude. With a 76 MHz source and including finite-size analysis, we extract 3374 bits of secure key from the best pass. We also illustrate the potential benefit of combining multiple passes together: while one suboptimal "upper-quartile" pass produces no finite-sized key with our source, the combination of three such passes allows us to extract 165 bits of secure key. Alternatively, we find that by increasing the signal rate to 300 MHz it would be possible to extract 21570 bits of secure finite-sized key in just a single upper-quartile pass.
12 pages, 7 figures, 2 tables
References in corpus (7)
- Free-Space distribution of entanglement and single photons over 144 km
- Provably Secure and Practical Quantum Key Distribution over 307 km of Optical Fibre
- Quantum Memories. A Review based on the European Integrated Project "Qubit Applications (QAP)"
- Quantum cryptography with finite resources: unconditional security bound for discrete-variable protocols with one-way post-processing
- Efficient decoy-state quantum key distribution with quantified security
- Proof-of-Concept of Real-World Quantum Key Distribution with Quantum Frames
- Novel High-Speed Polarization Source for Decoy-State BB84 Quantum Key Distribution over Free Space and Satellite Links
Cited by in corpus (27)
- Progress in satellite quantum key distribution
- Spontaneous parametric down-conversion
- Satellite-Based Communications Security: A Survey of Threats, Solutions, and Research Challenges
- Quantum-limited measurements of optical signals from a geostationary satellite
- Airborne demonstration of a quantum key distribution receiver payload
- Key Reconciliation with Low-Density Parity-Check Codes for Long-Distance Quantum Cryptography
- Simple Quantum Key Distribution with qubit-based synchronization and a self-compensating polarization encoder
- Fast and simple qubit-based synchronization for quantum key distribution
- Creation of backdoors in quantum communications via laser damage
- Genuine time-bin-encoded quantum key distribution over a turbulent depolarizing free-space channel
- Mitigating radiation damage of single photon detectors for space applications
- Free-space quantum key distribution to a moving receiver
- Eavesdropper's ability to attack a free-space quantum-key-distribution receiver in atmospheric turbulence
- Laser annealing heals radiation damage in avalanche photodiodes
- Probing free-space quantum channels with laboratory-based experiments
- Finite resource performance of small satellite-based quantum key distribution missions
- Single-mode fiber coupling with a M-SPGD algorithm for long-range quantum communications
- Satellite-Based Quantum Key Distribution in the Presence of Bypass Channels
- Quantum teleportation through atmospheric channels
- Phase-locking an interferometer with single-photon detections
- Use of a Local Local Oscillator for the Satellite-to-Earth Channel
- Combined Quantum and Post-Quantum Security for Earth-Satellite Channels
- Discrete-Modulated Continuous-Variable Quantum Key Distribution in Satellite-to-Ground Communication
- The Role of Quantum Computing in Advancing Scientific High-Performance Computing: A perspective from the ADAC Institute
- Numeric estimation of resource requirements for a practical polarization-frame alignment scheme for QKD
- Qubit-based clock synchronization for QKD systems using a Bayesian approach
- Security proofs for practical QKD: variations, techniques, gaps, and limitations