Separating the entanglement dimension k from the Hilbert space dimension d reduces the signal-to-noise ratio needed to certify k-dimensional entanglement, with an optimal d near 2.41k that can cut detector efficiency requirements by orders of magnitude.
Experimental quantum conference key agreement
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abstract
Quantum networks will provide multi-node entanglement over long distances to enable secure communication on a global scale. Traditional quantum communication protocols consume pair-wise entanglement, which is sub-optimal for distributed tasks involving more than two users. Here we demonstrate quantum conference key agreement, a quantum communication protocol that exploits multi-partite entanglement to efficiently create identical keys between N users with up to N-1 rate advantage in constrained networks. We distribute four-photon Greenberger-Horne-Zeilinger (GHZ) states generated by high-brightness, telecom photon-pair sources across up to 50 km of fibre, implementing multi-user error correction and privacy amplification on resulting raw keys. Under finite-key analysis, we establish $1.15\times10^6$ bits of secure key, which are used to encrypt and securely share an image between the four users in a conference transmission. We have demonstrated a new protocol tailored for multi-node networks leveraging low-noise, long-distance transmission of GHZ states that will pave the way forward for future multiparty quantum information processing applications.
fields
quant-ph 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
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Is high-dimensional photonic entanglement robust to noise?
Separating the entanglement dimension k from the Hilbert space dimension d reduces the signal-to-noise ratio needed to certify k-dimensional entanglement, with an optimal d near 2.41k that can cut detector efficiency requirements by orders of magnitude.