Lin Lin, Hu Jack, Dagli Sahil, Dionne Jennifer A, Lawrence Mark
Department of Electrical and Systems Engineering, Washington University in St. Louis, St. Louis, Missouri 63130, United States.
Department of Chemistry, Washington University in St. Louis, St. Louis, Missouri 63130, United States.
Nano Lett. 2023 Feb 22;23(4):1355-1362. doi: 10.1021/acs.nanolett.2c04621. Epub 2023 Feb 6.
Optical metasurfaces offer unprecedented flexibility in light wave manipulation but suffer weak resonant enhancement. Tackling this problem, we experimentally unveil a new phase gradient metasurface platform made entirely from individually addressable high quality factor (high-) silicon meta-atoms. Composed of pairs of nearly identical nanoblocks, these meta-atoms support dipolar-guided-mode resonances that, due to the controlled suppression of radiation loss, serve as highly sensitive phase pixels when placed above a mirror. A key novelty of this platform lies in the vanishingly small structural perturbations needed to produce universal phase fronts. Having fabricated elements with -factor ∼380 and spaced by λ/1.2, we achieve strong beam steering, up to 59% efficient, to angles 32.3°, 25.3°, and 20.9°, with variations in nanoantenna volume fractions across the metasurfaces of ≤2.6%, instead of >50% required by traditional versions. Aside from extreme sensitivity, the metasurfaces exhibit near-field intensity enhancement over 1000×. Taken together, these properties represent an exciting prospect for dynamic and nonlinear wave shaping.
光学超表面在光波操控方面提供了前所未有的灵活性,但共振增强较弱。为解决这一问题,我们通过实验揭示了一种全新的相位梯度超表面平台,该平台完全由可单独寻址的高品质因子(高Q)硅超原子构成。这些超原子由成对的几乎相同的纳米块组成,支持偶极子引导模式共振,由于辐射损耗得到了可控抑制,当置于镜子上方时,它们可作为高灵敏度的相位像素。该平台的一个关键新颖之处在于,产生通用相位前沿所需的结构微扰极小。我们制造出了品质因子约为380且间距为λ/1.2的元件,实现了高达59%效率的强光束转向,转向角度分别为32.3°、25.3°和20.9°,超表面上纳米天线体积分数的变化≤2.6%,而传统超表面则需要>50%。除了极高的灵敏度外,这些超表面还展现出超过1000倍的近场强度增强。综合来看,这些特性为动态和非线性波整形带来了令人兴奋的前景。