Electromagnetically-induced transparency with amplification in superconducting circuits
arXiv:1004.1817 · doi:10.1103/PhysRevLett.105.073601
Abstract
We show that electromagnetically-induced transparency and lasing without inversion are simultaneously achieved for microwave fields by using a fluxonium superconducting circuit. As a result of the energy-level structure of this artificial three-level atom, we find the surprising phenomenon that the electromagnetically-induced transparency window in the frequency domain is sandwiched between absorption on one side and amplification on the other side.
4 pages, 5 figures
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