We demonstrate a point-to-point clock synchronization protocol based on bidirectionally propagating photons generated in a single spontaneous parametric down-conversion (SPDC) source. Tight timing correlations between photon pairs are used to determine the single and round-trip times measured by two separate clocks, providing sufficient information for distance-independent absolute synchronization secure against symmetric delay attacks. We show that the coincidence signature useful for determining the round-trip time of a synchronization channel, established using a 10\,km telecommunications fiber, can be derived from photons reflected off the end face of the fiber without additional optics. Our technique allows the synchronization of multi...
The increasing complexity of the recent photonic experiments challenges developing efficient multi-c...
We present an experimental realization of a robust quantum communication scheme [Phys. Rev. Lett. 93...
In this study of quantum optics, we want to extract information associated with quantum mechanically...
Photonic quantum technology requires precise, time-resolved identification of photodetection events....
The ability to measure, hold and distribute time with high precision and accuracy is a foundational ...
We demonstrate a three-node quantum network for C-band photon pairs using 2 pairs of 59 km of deploy...
We propose a satellite-based scheme to perform clock synchronization between ground stations spread ...
Timing requirements for long-range quantum networking are driven by the necessity of synchronizing t...
Nonlocal dispersion compensation between broadband photon pairs propagated over fiber corresponding ...
Efficient synchronization of single photons that are compatible with narrowband atomic transitions i...
Quantum networks are essential for realising distributed quantum computation and quantum communicati...
This manuscript reports the development of fundamental resources for long distance quantum communica...
Entanglement-based QKD protocols require robust and stable photon pair sources in terms of high hera...
We demonstrate the feasibility of a network-oriented Quantum Key Distribution (QKD) from affordable ...
Photon-number-resolving (PNR) detectors are a key enabling technology in photonic quantum informatio...
The increasing complexity of the recent photonic experiments challenges developing efficient multi-c...
We present an experimental realization of a robust quantum communication scheme [Phys. Rev. Lett. 93...
In this study of quantum optics, we want to extract information associated with quantum mechanically...
Photonic quantum technology requires precise, time-resolved identification of photodetection events....
The ability to measure, hold and distribute time with high precision and accuracy is a foundational ...
We demonstrate a three-node quantum network for C-band photon pairs using 2 pairs of 59 km of deploy...
We propose a satellite-based scheme to perform clock synchronization between ground stations spread ...
Timing requirements for long-range quantum networking are driven by the necessity of synchronizing t...
Nonlocal dispersion compensation between broadband photon pairs propagated over fiber corresponding ...
Efficient synchronization of single photons that are compatible with narrowband atomic transitions i...
Quantum networks are essential for realising distributed quantum computation and quantum communicati...
This manuscript reports the development of fundamental resources for long distance quantum communica...
Entanglement-based QKD protocols require robust and stable photon pair sources in terms of high hera...
We demonstrate the feasibility of a network-oriented Quantum Key Distribution (QKD) from affordable ...
Photon-number-resolving (PNR) detectors are a key enabling technology in photonic quantum informatio...
The increasing complexity of the recent photonic experiments challenges developing efficient multi-c...
We present an experimental realization of a robust quantum communication scheme [Phys. Rev. Lett. 93...
In this study of quantum optics, we want to extract information associated with quantum mechanically...