Generation of ultraviolet entangled photons in a semiconductor

Entanglement is one of the key features of quantum information and communications technology. The method that has been used most frequently to generate highly entangled pairs of photons 1 , 2 is parametric down-conversion. Short-wavelength entangled photons are desirable for generating further entan...

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Veröffentlicht in:Nature (London) 2004-09, Vol.431 (7005), p.167-170
Hauptverfasser: Edamatsu, Keiichi, Oohata, Goro, Shimizu, Ryosuke, Itoh, Tadashi
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Sprache:eng
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Zusammenfassung:Entanglement is one of the key features of quantum information and communications technology. The method that has been used most frequently to generate highly entangled pairs of photons 1 , 2 is parametric down-conversion. Short-wavelength entangled photons are desirable for generating further entanglement between three or four photons, but it is difficult to use parametric down-conversion to generate suitably energetic entangled photon pairs. One method that is expected to be applicable for the generation of such photons 3 is resonant hyper-parametric scattering (RHPS): a pair of entangled photons is generated in a semiconductor via an electronically resonant third-order nonlinear optical process. Semiconductor-based sources of entangled photons would also be advantageous for practical quantum technologies, but attempts to generate entangled photons in semiconductors have not yet been successful 4 , 5 . Here we report experimental evidence for the generation of ultraviolet entangled photon pairs by means of biexciton resonant RHPS in a single crystal of the semiconductor CuCl. We anticipate that our results will open the way to the generation of entangled photons by current injection, analogous to current-driven single photon sources 6 , 7 .
ISSN:0028-0836
1476-4687
DOI:10.1038/nature02838