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Phase-controlled electromagnetically induced focusing in a closed-loop atomic system

机译:相控电磁诱导的聚焦在闭环原子系统中

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In atomic systems, the spatially nonuniform distribution of a coupling field leads to the focusing of a probe beam producing a recipe for electromagnetically induced focusing (EIF). A diffraction-like pattern for the output probe beam can arise, and the probe radiation experiences focusing and defocusing across an electromagnetically induced transparency window. This phenomenon has critical implications for experiments on atomic coherence effects. Here, we study the EIF in a four-level closed-loop atomic system and show that full width at half-maximum (FWHM) of focused output probe intensity in the focal plane can be controlled by both intensity profile and relative phase of applied fields. We also demonstrate that the FWHM of the focused output probe intensity in focal length is much smaller than that of the input probe intensity, and in addition, through a special set of parameters, the minimum value of the FWHM can be obtained. Moreover, the FWHM can be made small by increasing Rabi frequency of the Gaussian signal field. Furthermore, the Gaussian probe intensity profile switches to a doughnut-like one just by changing the relative phase of applied fields. Finally, we apply a Laguerre-Gaussian signal field and find that the characteristics of the output probe field depend on the intensity profile of the signal field. Our results can be used to design a lens-like device with a controllable focal length and focusing strength that would pave the way toward all-optical switching devices. (C) 2017 Optical Society of America
机译:在原子系统中,耦合场的空间不均匀分布导致探针束的聚焦,用于产生电磁诱导的聚焦(EIF)的配方。用于输出探针光束的衍射状图案可以出现,并且探针辐射在电磁诱导的透明度窗口上聚焦和散焦。这种现象对原子相干效应的实验具有重要意义。在这里,我们研究了四级闭环原子系统中的EIF,并显示了焦平面中聚焦输出探测强度的半最大(FWHM)的全宽可以通过应用领域的强度分布和相对相位来控制。我们还证明了聚焦输出探针强度在焦距中的FWHM远小于输入探针强度,并且另外,通过特殊的参数,可以获得FWHM的最小值。此外,通过增加高斯信号场的Rabi频率可以使FWHM变小。此外,通过改变所施加的场的相对相位,高斯探针强度曲线仅切换到类似甜甜圈的甜甜圈。最后,我们应用了一个Laguerre-Gaussian信号字段,发现输出探头字段的特性取决于信号字段的强度分布。我们的结果可用于设计具有可控焦距和聚焦强度的镜头状器件,这些设备将向所有光学开关装置铺平道路。 (c)2017年光学学会

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