Correlations in photon-numbers and integrated intensities in parametric processes involving three optical fields
arXiv:0901.1115 · doi:10.1140/epjd/e2009-00136-3
Abstract
Two strongly-pumped parametric interactions are simultaneously realized in a single nonlinear crystal in order to generate three strongly correlated optical fields. By combining together the outputs of two of the three detectors measuring intensities of the generated fields, we obtain the joint photocount statistics between the single field and the sum of the other two. Moreover, we develop a microscopic quantum theory to determine the joint photon-number distribution and the joint quasi-distributions of integrated intensities and prove nonclassical nature of the three-mode state. Finally, by performing a conditional measurement on the single field, we obtain a state endowed with a sub-Poissonian statistics, as testified by the analysis of the conditional Fano factor. The role of quantum detection efficiencies in this conditional state-preparation method is discussed in detail.
9 pages, 14 figures
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Cited by in corpus (5)
- Photon-number distributions of twin beams generated in spontaneous parametric down-conversion and measured by an intensified CCD camera
- Photon-number entangled states generated in Kerr media with optical parametric pumping
- Optimal sub-Poissonian light generation from twin beams by photon-number resolving detectors
- Characterizing the non-classicality of mesoscopic optical twin-beam states
- Quantum properties of the three-mode squeezed operator: triply concurrent parametric amplifiers