Advanced Photonics, Volume. 3, Issue 6, 065001(2021)
Entanglement-based quantum key distribution with a blinking-free quantum dot operated at a temperature up to 20 K On the Cover
Fig. 1. Photoluminescence properties of GaAs QDs in a p-i-n diode structure at a temperature of 20 K, excited by resonant TPE. (a) p-i-n diode structure with a tunnel barrier between the n-doped and the intrinsic regions. The inset shows the principle of TPE, with
Fig. 2. Emission properties relevant for the polarization entanglement, measured at a temperature of 20 K. (a) Spectra of the individually filtered XX and X emission lines combined at a 50:50 fiber beam splitter. (b) Single-photon emission characteristics of the XX and X signals observed by detecting coincidences in a Hanbury–Brown–Twiss arrangement. The histogram for the X emission is shifted horizontally and vertically to facilitate reading. (c) Decay dynamics of the XX and X signals. The X signal exhibits a slow secondary decay channel, which is not present at temperatures lower than 10 K. (d) Examples among the 36 recorded coincidence histograms between the XX and X detections, corresponding to a measurement in the HV basis. The red-dashed lines indicate the time-bin of 2 ns, in which the coincidences are summed up to calculate the peak areas. (e) Unpolarized coincidence measurement between the XX and X photons. The excess coincidences at zero time delay stem from a nonunity photon-pair generation probability. (f) Density matrix of the two-photon polarization entangled state of the XX and X photons, recorded by full state tomography.
Fig. 3. Key generation in the BBM92 protocol over a time span of about 8 h and entanglement-based QKD. (a) QKD arrangement. Alice and the photon source are situated on an optical table, and Bob is placed in a movable box on a table in another building and connected with the source via a 350-m long single mode fiber. (b) QBER during the key generation with an average of 8.42%. The red-dashed line marks the maximum allowed QBER for BBM92 in the infinite key regime. (c) Raw key rate (after key sifting) with an average of
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Christian Schimpf, Santanu Manna, Saimon F. Covre da Silva, Maximilian Aigner, Armando Rastelli, "Entanglement-based quantum key distribution with a blinking-free quantum dot operated at a temperature up to 20 K," Adv. Photon. 3, 065001 (2021)
Category: Letters
Received: Aug. 31, 2021
Accepted: Nov. 26, 2021
Published Online: Dec. 20, 2021
The Author Email: Schimpf Christian (christian.schimpf@jku.at), Manna Santanu (santanu.manna@jku.at)