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首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Optical metamirror: all-dielectric frequency-selective mirror with fully controllable reflection phase
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Optical metamirror: all-dielectric frequency-selective mirror with fully controllable reflection phase

机译:光学元镜:全介电频率选择镜,反射相位完全可控

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摘要

Light control in conventional optical components relies on gradual phase changes along the light path. New artificial composites, so-called metasurfaces, offer possibilities for abrupt phase variations over the subwavelength scale. These functionalities pave the way for fundamentally new phenomena, such as anomalous refraction and reflection. Whereas full manipulation of refracted light can be attained with translucent dielectric Huygens' composites, known means of full control of reflected beams still require reflector-backed structures which block light propagation at all spectrum. In this work, we demonstrate the first design of an all-dielectric frequency-selective mirror, a so-called metamirror, which provides desired high-efficiency manipulation of reflected light ( in our example, realizing a focusing reflector) at the telecommunication wavelength of 1.5 mu m, being practically transparent at other frequencies. The results can lead to a variety of new devices for telecommunications, integrated and nano-optics, and light energy harvesting. (C) 2015 Optical Society of America
机译:常规光学组件中的光控制依赖于沿光路的逐渐相位变化。新的人造复合材料,即所谓的超表面,为亚波长范围内的突然相位变化提供了可能性。这些功能为异常折射和反射等根本新现象铺平了道路。使用半透明的介电惠更斯复合材料可以完全控制折射光,而完全控制反射光束的已知方法仍然需要反射器支持的结构,该结构会阻挡所有光谱的光传播。在这项工作中,我们演示了全介电频率选择镜的第一个设计,即所谓的超镜,该镜可提供期望的高效率的反射光(在我们的示例中,实现聚焦反射镜)在电信波长下的操纵。 1.5微米,在其他频率下实际上是透明的。结果可能导致用于电信,集成和纳米光学以及光能收集的各种新设备。 (C)2015年美国眼镜学会

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