介质元表面中的腔耦合窄带宽法诺共振

Jiachen Yu, Qiqige Wulan, Li Xing, Zhijun Liu
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摘要

介电元表面在光操纵方面显示出巨大的应用潜力,如光学滤波器和用于产生纠缠光子的半导体元表面。这些应用主要依赖于微/纳米结构元表面的共振模式特性。包括电偶极子(ED)、磁偶极子(MD)和连续共振中的准束缚态在内的几种模式已被广泛探索,其优点是品质因数高、带宽窄。然而,由于介电材料的透明性,这些已报道的元表面共振一般不吸收光,这限制了它们在热发射和光子探测等应用中的使用。在这项工作中,我们展示了一类新的介电元表面,它同时具有强光吸收和窄带宽的特点。我们制作的元表面由一个硅立方体阵列组成,阵列位于以金属铜膜为背衬的二氧化硅间隔层之上。二氧化硅间隔层中的空腔模式与硅立方体中的电偶极子耦合,在我们的元表面结构中产生了非对称窄带宽法诺共振。我们的光谱测量结果表明,法诺共振发生在波长 4.19 μm 处。它的吸收效率高达 65.8%,带宽窄至 32.5 纳米,品质因数高达 112。作为揭示我们的元表面潜力的一个例子,法诺共振被应用于折射率传感,其灵敏度为 518.75nm/RIU,优等系数(FoM)高达 14.82RIU-1。这些结果表明,空腔耦合介质元表面是获得强光吸收和窄带宽的有效途径,为元表面的应用开辟了新的空间。
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Cavity-coupled narrow bandwidth Fano resonance in dielectric metasurface
Dielectric metasurfaces show great potential in light manipulation for applications such as optical filters and semiconductor metasurfaces for generating entangled photons. These applications critically rely on resonant mode properties in micro/nano-structured metasurfaces. Several modes including electric dipole (ED), magnetic dipole (MD), and quasi-bound state in the continuum resonance have been widely explored with the merits of high quality factor and narrow bandwidth. However, these reported metasurface resonances generally do not absorb light due to the transparency of dielectric materials, which limits their usage in some applications such as thermal emission and photon detection etc. In this work, we demonstrate a new class of dielectric metasurfaces, which exhibit the features of both strong light absorption and narrower bandwidth. Our fabricated metasurface consists of a Si cuboid array on top of a SiO2 spacer layer backed with a metallic Cu film. The cavity mode within the SiO2 spacer couples with electrical dipole in the Si cuboid, leading to an asymmetric narrow bandwidth Fano resonance within our metasurface structure. Our spectral measurements show that the Fano resonance occurs at the wavelength of 4.19 μm. It has a strong absorption efficiency of 65.8% and a narrow bandwidth of 32.5nm, corresponding to a quality factor as high as 112. As an example to reveal the potentials of our metasurface, the Fano resonance is applied in refractive index sensing with a sensitivity of 518.75nm/RIU and a high figure-of-merit (FoM) of 14.82 RIU-1. These results indicate that cavity-coupled dielectric metasurface presents an effective way for obtaining both strong light absorption and narrow bandwidth, opening new space for metasurface applications.
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