Single-photon transistor based on cavity electromagnetically induced transparency with Rydberg atomic ensemble

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作者
Y. M. Hao
G. W. Lin
X. M. Lin
Y. P. Niu
S. Q. Gong
机构
[1] East China University of Science and Technology,Department of Physics
[2] Fujian Normal University,College of Physics and Energy
来源
Scientific Reports | / 9卷
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摘要
A scheme is presented to realize a single-photon transistor based on cavity quantum electrodynamics (QED) with Rydberg atomic ensemble. By combining the advantages of the cavity-enhanced interaction and Rydberg blockade, we achieve a high gain single-photon transistor. The numerical calculation shows that by using one single gate photon more than one thousand source photons can be switched.
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[1]  
Imamoglu A(1998)Strongly interacting photons in a nonlinear Cavity Phys. Rev. Lett. 79 1467-5097
[2]  
Schmidt H(1996)Giant Kerr nonlinearities obtained by electromagnetically induced transparency Opt. Lett. 21 1936-922
[3]  
Woods G(2000)Dark-state polaritons in electromagnetically induced transparency Phys. Rev. Lett. 84 5094-554
[4]  
Deutsch M(2007)Photon storage in Λ-type optically dense atomic media. I. Cavity model Phys. Rev. A 76 033804-263
[5]  
Schmidt H(2018)M. Non-Hermitian optics in atomic systems J. Phys. B: At. Mol. Opt. Phys. 51 072001-695
[6]  
Imamoglu A(2018)Parity-time-symmetric optical lattice with alternating gain and loss atomic configurations Laser Photon. Rev. 12 1800155-812
[7]  
Fleischhauer M(2016)Observation of parity-time symmetry in optically induced atomic lattices Phys. Rev. Lett. 117 123601-80
[8]  
Lukin MD(2018)Controllable photonic crystal with periodic Raman gain in a coherent atomic medium Opt. Lett. 43 919-609
[9]  
Gorshkov AV(2010)Nonlinear Talbot effect Phys. Rev. Lett. 104 183901-770
[10]  
André A(2012)Observation and measurement of interaction-induced dispersive optical nonlinearities in an ensemble of cold Rydberg atoms Phys. Rev. Lett. 109 233602-1269