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High-gain optical phase conjugation using degenerate four-wave mixing via coherent population trapping in moving atoms

机译:使用简并四波混频并通过相干陷阱捕获运动原子来实现高增益光学相位共轭

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Previously, we have used four-wave mixing via coherent population trapping to achieve optical phase conjugation (OPC) with high gain, using two dye lasers and a sodium vapor cell. The /spl Lambda/ transition used involved the two hyperfine ground states and one excited state, so that two different optical frequencies were needed to satisfy the two-photon resonant condition between the probe and one of the pump beams. Later, we demonstrated in rubidium that a single hyperfine transition with Zeeman sublevels is enough to achieve OPC with equally high gain, thus eliminating the need for high-frequency sideband generation. However, in order to guarantee that the diffraction from the grating is primarily dispersive, the backward pump beam had to be detuned by about 60 MHz from the probe and the forward pump. One of the key disadvantages of such a nondegenerate scheme is that applications such as phase-conjugate mirrors are hard to implement. Here, we report the observation of optical phase conjugation in rubidium with equally high gain, but all the frequencies are degenerate.
机译:以前,我们使用相干粒子阱捕获技术通过四波混频来实现高增益的光学相位共轭(OPC),它使用了两个染料激光器和一个钠蒸气电池。所使用的/ spl Lambda /跃迁涉及两个超精细基态和一个激发态,因此需要两个不同的光学频率才能满足探针与泵浦光束之一之间的双光子共振条件。后来,我们在rub中演示了一个简单的Zeeman子级超精细跃迁足以实现具有相同高增益的OPC,从而消除了产生高频边带的需要。但是,为了确保来自光栅的衍射主要是色散,后向泵浦光束必须与探头和前向泵浦失谐约60 MHz。这种非简并方案的主要缺点之一是诸如相位共轭镜之类的应用难以实现。在这里,我们报告了the具有相同高增益的光学相位共轭的观察结果,但是所有频率都退化了。

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