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Experimental Verification of the Inverse Doppler Effect in Negative-index Material

机译:负折射率材料中反多普勒效应的实验验证

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Research of negative-index material (NIM) is a very hot developing research field in recent years. NIMis also called left-handed material (LHM), in which the electric field (→)(E) , the magnetic field (→)(H) andthe wave vector (→)(K) are not composed of a set of right-handed coordinates but a set of left-handedcoordinates. Thus the action of electromagnetic waves in both left-handed material and right-handed material is just the opposite, for instance, the negative refraction phenomenon, the inverse Doppler effect and so on. Here we report the explicit result of the inverse Doppler effect through a photonic crystal (PC) prism at 10.6μm wavelength for the first time, and the result we get from the experiment is much similar to the theoretical analysis we have deduced before. During the experiment, the CO2 laser is used as a light source, and the PC prism is used as a sample, which can move a tiny distance (lmm) uniformly with a translating stage. Based on the method of optical heterodyne, we let the emergent light from the output surface of PC prism and the reference light from light source interfere at the surface of the detector. When the translating stage moves towards the detector, the optical paths in the PC prism will be changed, and then the Doppler frequency shift will be generated. Though several different samples have been tested repeatedly, the results we get are extraordinarily similar. So we can be sure that the inverse Doppler effect really exists in the NIM at optical frequencies. To our best knowledge, this is the only experimental verification of the inverse Doppler effect in the NIM at optical frequencies at home and aboard.
机译:负折射率材料(NIM)的研究是近年来非常热门的研究领域。尼姆 也称为左手材料(LHM),其中的电场(→)(E),磁场(→)(H)和 波向量(→)(K)不是由一组右手坐标组成,而是由一组左手坐标组成 坐标。因此,电磁波在左手材料和右手材料中的作用正好相反,例如,负折射现象,反多普勒效应等。在这里,我们首次通过波长为10.6μm的光子晶体(PC)棱镜报告了反向多普勒效应的显式结果,并且从实验中获得的结果与之前推论的理论分析非常相似。在实验过程中,将CO2激光器用作光源,并将PC棱镜用作样品,该样品可以在平移台上均匀移动微小的距离(lmm)。基于光学外差法,我们让来自PC棱镜输出表面的出射光和来自光源的参考光在探测器表面发生干涉。当平移台移向检测器时,PC棱镜中的光路将发生变化,然后将产生多普勒频移。尽管已经对多个不同的样本进行了反复测试,但我们得到的结果却极为相似。因此,我们可以确定NIM在光频率上确实存在逆多普勒效应。据我们所知,这是在室内和室外光频率下对NIM中多普勒逆效应进行的唯一实验验证。

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