Yutong Xu, T. Wang, Yangyang Zou, Bin Wu, Yongnan Lu, Jia Zhang, Liu Zhang, Hua Kuang Liu
Metalenses are crucial for miniaturized and highly integrated optical systems, yet their inherent chromatic dispersion restricts broader application. Although recent designs have improved achromatic performance, attaining ultra-broadband achromaticity across the near- and short-wave infrared spectra remains challenging, especially when reconciling processing feasibility with structural stability. In response to this challenge, a semi-embedded unit cell is proposed in this paper, which can effectively alleviate the trade-off between performance and fabrication feasibility. By simulating and analyzing a metalens with an aperture of 62µm and a focal length of 65 µm, we demonstrate that the proposed structure achieves achromatic focusing across the 1000-2400 nm wavelength range, even under oblique illumination with incident angles up to 23° (equivalent to a 46°field of view). Within the operating wavelength band, the focal plane shift of the metalens is limited to a maximum of 4.5%. It exhibits an average absolute focusing efficiency of 42.66%, a full width at half maximum (FWHM) close to the diffraction limit, and an average relative focusing efficiency of 49.65%. Additionally, the proposed metalens exhibits high robustness to variations in material properties and geometric parameters, maintaining stable performance under a refractive index tolerance of ±0.04, an embedded region height tolerance of ±5%, an exposed region height tolerance of ±3.75%, and a side length tolerance of ±4%. The proposed semi-embedded structure offers a novel and reliable approach for developing ultra-broadband metalenses, with strong potential for highly integrated imaging and on-chip photonic applications.