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Probe frequency- and field intensity-sensitive coherent control effects in an EIT-based periodic layered medium

Probe frequency- and field intensity-sensitive coherent control effects in an EIT-based periodic layered medium
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摘要 A periodic layered medium, with unit cells consisting of a dielectric and an electromagnetically-induced transparency (EIT)-based atomic vapor, is designed for light propagation manipulation. Considering that a destructive quantum interference relevant to a two-photon resonance emerges in EIT-based atoms interacting with both control and probe fields, an EIT-based periodic layered medium exhibits a flexible frequency-sensitive optical response, where a very small variation in the probe frequency can lead to a drastic variation in reflectance and transmittance. The present EIT-based periodic layered structure can result in controllable optical processes that depend sensitively on the external control field. The tunable and sensitive optical response induced by the quantum interference of a multi-level atomic system can be applied in the fabrication of new photonic and quantum optical devices. This material will also open a good perspective for the application of such designs in several new fields, including photonic microcircuits or integrated optical circuits. A periodic layered medium, with unit cells consisting of a dielectric and an electromagnetically-induced transparency (EIT)-based atomic vapor, is designed for light propagation manipulation. Considering that a destructive quantum interference relevant to a two-photon resonance emerges in EIT-based atoms interacting with both control and probe fields, an EIT-based periodic layered medium exhibits a flexible frequency-sensitive optical response, where a very small variation in the probe frequency can lead to a drastic variation in reflectance and transmittance. The present EIT-based periodic layered structure can result in controllable optical processes that depend sensitively on the external control field. The tunable and sensitive optical response induced by the quantum interference of a multi-level atomic system can be applied in the fabrication of new photonic and quantum optical devices. This material will also open a good perspective for the application of such designs in several new fields, including photonic microcircuits or integrated optical circuits.
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2012年第1期1-4,共4页 中国光学快报(英文版)
基金 supported by the Taiwan Science Council (Nos.NSC 99-2811-M-216-001 and NSC 99-2112-M-216-002) the National Natural Science Foundation of China (Nos.60990320 and 60990322) the Natural Science Foundation of Zhejiang Province in China (No.Y6100280) the Fundamental Research Funds for the Central Universities of China
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