Carletti Luca, Zilli Attilio, Moia Fabio, Toma Andrea, Finazzi Marco, De Angelis Costantino, Neshev Dragomir N, Celebrano Michele
Department of Information Engineering, University of Brescia, Via Branze 38, 25123 Brescia, Italy.
Physics Department, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
ACS Photonics. 2021 Mar 17;8(3):731-737. doi: 10.1021/acsphotonics.1c00026. Epub 2021 Feb 19.
Nonlinear metasurfaces constitute a key asset in meta-optics, given their ability to scale down nonlinear optics to sub-micrometer thicknesses. To date, nonlinear metasurfaces have been mainly realized using narrow band gap semiconductors, with operation limited to the near-infrared range. Nonlinear meta-optics in the visible range can be realized using transparent materials with high refractive index, such as lithium niobate (LiNbO). Yet, efficient operation in this strategic spectral window has been so far prevented by the nanofabrication challenges associated with LiNbO, which considerably limit the aspect ratio and minimum size of the nanostructures (i.e., meta-atoms). Here we demonstrate the first monolithic nonlinear periodic metasurface based on LiNbO and operating in the visible range. Realized through ion beam milling, our metasurface features a second-harmonic (SH) conversion efficiency of 2.40 × 10 at a pump intensity as low as 0.5 GW/cm. By tuning the pump polarization, we demonstrate efficient steering and polarization encoding into narrow SH diffraction orders, opening novel opportunities for polarization-encoded nonlinear meta-optics.
非线性超表面是超光学领域的一项关键资产,因为它们能够将非线性光学缩小到亚微米厚度。迄今为止,非线性超表面主要是使用窄带隙半导体实现的,其操作仅限于近红外范围。可见范围内的非线性超光学可以使用具有高折射率的透明材料来实现,例如铌酸锂(LiNbO)。然而,到目前为止,与LiNbO相关的纳米制造挑战阻碍了在这个重要光谱窗口中的高效操作,这些挑战极大地限制了纳米结构(即超原子)的纵横比和最小尺寸。在这里,我们展示了第一个基于LiNbO且在可见范围内工作的单片非线性周期性超表面。通过离子束铣削实现,我们的超表面在低至0.5 GW/cm的泵浦强度下具有2.40×10的二次谐波(SH)转换效率。通过调整泵浦偏振,我们展示了将高效的转向和偏振编码到窄的SH衍射级中,为偏振编码的非线性超光学开辟了新的机会。