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可见光中具有双磁共振的介电超材料全息图。

Dielectric Meta-Holograms Enabled with Dual Magnetic Resonances in Visible Light.

机构信息

School of Electronic Information, Wuhan University , Wuhan 430072, China.

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH) , Pohang 37673, Republic of Korea.

出版信息

ACS Nano. 2017 Sep 26;11(9):9382-9389. doi: 10.1021/acsnano.7b04868. Epub 2017 Sep 14.

Abstract

Efficient transmission-type meta-holograms have been demonstrated using high-index dielectric nanostructures based on Huygens' principle. It is crucial that the geometry size of building blocks be judiciously optimized individually for spectral overlap of electric and magnetic dipoles. In contrast, reflection-type meta-holograms using the metal/insulator/metal scheme and geometric phase can be readily achieved with high efficiency and small thickness. Here, we demonstrate a general platform for design of dual magnetic resonance based meta-holograms based on the geometric phase using silicon nanostructures that are quarter wavelength thick for visible light. Significantly, the projected holographic image can be unambiguously observed without a receiving screen even under the illumination of natural light. Within the well-developed semiconductor industry, our ultrathin magnetic resonance-based meta-holograms may have promising applications in anticounterfeiting and information security.

摘要

高效的透射式全息图已经通过基于惠更斯原理的高折射率介电纳米结构得到了展示。至关重要的是,构建块的几何尺寸必须经过精心优化,以实现电偶极子和磁偶极子的光谱重叠。相比之下,使用金属/电介质/金属方案和几何相位的反射式全息图可以很容易地以高效率和小厚度实现。在这里,我们展示了一个基于几何相位的基于硅纳米结构的双磁共振的元全息图设计的通用平台,其厚度为四分之一波长的可见光。重要的是,即使在自然光的照射下,也无需接收屏就可以清晰地观察到投影的全息图像。在发达的半导体行业中,我们的这种超薄磁共振元全息图在防伪和信息安全方面可能具有广阔的应用前景。

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