"Nonlocality-of-a-single-photon" based Quantum Key Distribution and Random Number Generation schemes and their device-independent security analysis
arXiv:2311.07451 · doi:10.22331/q-2026-04-28-2084
Abstract
The question of ``non-locality of a single photon'', which started with a paper by Tan, Walls and Collett (TWC, 1991) stirred a thirty years long debate. This hampered attempts to use the TWC interferometric scheme in quantum cryptography. The scheme involves a single photon 50-50 beam-split into two modes propagating to two spatially separated observation stations at which weak homodyne measurements are made. The physics and non-classicality of such an arrangement has been understood only recently, and points out that an unquestionable Bell non-classicality, as was suggested by Hardy (1994), can be observed when the local measurement settings differ by the weak local oscillator being on or off, and additionally the homodyning for the on case is not balanced. Based on that, we present a single-photon based device-independent quantum key distribution scheme secure even against no-signaling eavesdropping. In our protocol the random bits of the cryptographic key are obtained by measurements on the single photon, that is for off settings at both Alice and Bob sides, while the security is positively tested if for eavesdropping testing runs one observes a violation of a specific Bell inequality involving the on and off weak homodyne measurements as alternative local settings. The security analysis presented here is based on a decomposition of the correlations into extreme points of a no-signaling polytope, which allows for identification of the optimal strategy for any eavesdropping constrained only by the no-signaling principle. For this strategy, the key rate is calculated, which is then connected with the violation of a specific Clauser-Horne inequality. We also adapt this analysis to propose a self-testing quantum random number generator based on the old idea that employs the randomness of reflection and transmission events of a quantum light impinged on a 50-50 beamsplitter.
21 pages, 3 figures
References in corpus (31)
- Quantum cryptography: Public key distribution and coin tossing
- Experimental loophole-free violation of a Bell inequality using entangled electron spins separated by 1.3 km
- Bell nonlocality
- Device-independent security of quantum cryptography against collective attacks
- No Signalling and Quantum Key Distribution
- From Bell's Theorem to Secure Quantum Key Distribution
- The operational meaning of min- and max-entropy
- Non-local correlations as an information theoretic resource
- Secure device-independent quantum key distribution with causally independent measurement devices
- Quantum Nonlocality in Phase Space
- Experimental device-independent quantum key distribution between distant users
- Highly indistinguishable and strongly entangled photons from symmetric GaAs quantum dots
- |0>|1>+|1>|0>
- Trevisan's extractor in the presence of quantum side information
- Simple and tight device-independent security proofs
- Efficient quantum key distribution secure against no-signalling eavesdroppers
- A Comprehensive Review of Quantum Random Number Generators: Concepts, Classification and the Origin of Randomness
- Optimal States for Bell inequality Violations using Quadrature Phase Homodyne Measurements
- Full security of quantum key distribution from no-signaling constraints
- Quantum Cryptography Based Solely on Bell's Theorem
- Demonstration of EPR steering using single-photon path entanglement and displacement-based detection
- Stable transmission of high-dimensional quantum states over a 2 km multicore fiber
- Tuning between photon-number and quadrature measurements with weak-field homodyne detection
- Single-photon nonlocality in quantum networks
- Heralded distribution of single-photon path entanglement
- Quantum to Classical Randomness Extractors
- Can single photon excitation of two spatially separated modes lead to a violation of Bell inequality via homodyne measurements?
- On detecting violation of local realism with photon-number resolving weak-field homodyne measurements
- Optimal interferometry for Bellnonclassicality by a vacuumonephoton qubit
- Interference due to Coherence Swapping
- Complete extension: the non-signaling analog of quantum purification