Entangling Independent Photons by Time Measurement
Matthaeus Halder, Alexios Beveratos, Nicolas Gisin, Valerio Scarani,, Christoph Simon, Hugo Zbinden

TL;DR
This paper demonstrates entanglement swapping using continuous wave photon sources and time measurement, enabling autonomous and stable quantum communication without synchronization.
Contribution
First realization of entanglement swapping with CW sources using time measurement, eliminating the need for synchronization and enhancing robustness.
Findings
Successful entanglement swapping with CW sources
Use of narrow-band filters increases photon coherence time
Robust setup against environmental fluctuations
Abstract
A quantum system composed of two or more subsystems can be in an entangled state, i.e. a state in which the properties of the global system are well defined but the properties of each subsystem are not. Entanglement is at the heart of quantum physics, both for its conceptual foundations and for applications in information processing and quantum communication. Remarkably, entanglement can be "swapped": if one prepares two independent entangled pairs A1-A2 and B1-B2, a joint measurement on A1 and B1 (called a "Bell-State Measurement", BSM) has the effect of projecting A2 and B2 onto an entangled state, although these two particles have never interacted or shared any common past[1,2]. Experiments using twin photons produced by spontaneous parametric down-conversion (SPDC) have already demonstrated entanglement swapping[3-6], but here we present its first realization using continuous wave…
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