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Characterising higher-order phase correlations in gain-switched laser sources with application to quantum key distribution

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abstract

Multi-photon emissions in laser sources represent a serious threat for the security of quantum key distribution (QKD). While the decoy-state technique allows to solve this problem, it requires uniform phase randomisation of the emitted pulses. However, gain-switched lasers operating at high repetition rates do not fully satisfy this requirement, as residual photons in the laser cavity introduce correlations between the phases of consecutive pulses. Here, we introduce experimental schemes to characterise the phase probability distribution of the emitted pulses, and demonstrate that an optimisation task over interferometric measures suffices in determining the impact of arbitrary order correlations, which ultimately establishes the security level of the implementation according to recent security proofs. We expect that our findings may find usages beyond QKD as well.

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representative citing papers

Secure quantum key distribution against correlated leakage source

quant-ph · 2025-07-15 · conditional · novelty 8.0

A new QKD security framework uses round rearrangement and the generalized chain rule to give the first finite-key analysis for correlated sources, and a two-state SNS protocol tolerant to large correlation ranges.

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  • Secure quantum key distribution against correlated leakage source quant-ph · 2025-07-15 · conditional · none · ref 49 · internal anchor

    A new QKD security framework uses round rearrangement and the generalized chain rule to give the first finite-key analysis for correlated sources, and a two-state SNS protocol tolerant to large correlation ranges.