AI Article Synopsis

  • Compact silicon integrated devices like micro-ring resonators are proving to be effective sources for generating quantum correlated photon pairs.
  • The challenge in mass-producing these devices lies in developing reliable techniques for monitoring their performance, especially concerning time-energy correlations.
  • By examining the stimulated four-wave mixing process, researchers can reconstruct the joint spectral density of photon pairs, enabling differentiation between uncorrelated and highly correlated pairs with high spectral resolution and quick measurement times.

Article Abstract

Compact silicon integrated devices, such as micro-ring resonators, have recently been demonstrated as efficient sources of quantum correlated photon pairs. The mass production of integrated devices demands the implementation of fast and reliable techniques to monitor the device performances. In the case of time-energy correlations, this is particularly challenging, as it requires high spectral resolution that is not currently achievable in coincidence measurements. Here we reconstruct the joint spectral density of photons pairs generated by spontaneous four-wave mixing in a silicon ring resonator by studying the corresponding stimulated process, namely stimulated four wave mixing. We show that this approach, featuring high spectral resolution and short measurement times, allows one to discriminate between nearly-uncorrelated and highly-correlated photon pairs.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4817032PMC
http://dx.doi.org/10.1038/srep23564DOI Listing

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