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Titlebook: Engineering the Atom-Photon Interaction; Controlling Fundamen Ana Predojević,Morgan W. Mitchell Book 2015 Springer International Publishing

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楼主: purulent
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Palgrave Macmillan,Macmillan Publishers Ltd.c filters, characterization using multi-photon interference, and application to quantum-enhanced sensing with atoms. Using either type-I or type-II cavity-enhanced spontaneous parametric down-conversion, we generate pairs of photons in the resonant modes of optical cavities with linewidths comparabl
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https://doi.org/10.1007/978-1-349-13887-6solid state environment. We will consider ensembles of rare-earth ions embedded in dielectric crystals. We will describe the methods used to create quantum light spectrally compatible with the narrow atomic transitions, as well as possible protocols based on dipole rephasing that can be used to reve
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https://doi.org/10.1057/9780312376178which is a method that allows for on-demand generation of photon pairs. We explore the advantages of resonant excitation and present a number of results that were made in this excitation regime. In particular, we cover the following topics: photon statistics, coherent manipulation of the ground-exci
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https://doi.org/10.1057/9781137548733, but also very useful for scalable linear optical quantum computing. In this chapter, we review preparations and applications of frequency-uncorrelated photon pairs. We first introduce the elimination of spectral correlation for the spontaneous parametric down-conversion (SPDC) sources by using the
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g efficiencies and highest degrees of photon indistinguishability. The system, which is based on low density InAs QDs embedded in a quasi planar single sided microcavity with natural photonic traps is an ideal testbed to study quantum light emission from single QDs. We will discuss the influence of
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Photon-Atom Coupling with Parabolic Mirrorscentral optical element of a free-space coupling scheme, covering the preparation of suitable modes of the field incident onto these mirrors as well as the location of an atom at the mirror’s focus. Furthermore, we establish a robust method for determining the efficiency of the photon-atom coupling.
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