English

Freeform super-oscillatory optics for CMOS-integrated THz super-resolution imaging

Optics 2026-08-05 v1

Abstract

The diffraction limit fundamentally constrains the spatial resolution of far-field imaging systems. While near-field techniques can circumvent this limit, their inherently short working distances (WD) severely restrict practical applications. Super-oscillatory lenses (SOLs) offer a far-field alternative; however, conventional SOLs are plagued by discrete operating wavelengths, low efficiencies (below 5%), and formidable trade-offs among numerical aperture, chromatic aberration, and depth of focus (DOF). Here, we introduce a nonlocal, nonlinear-curvature mechanism to design a freeform SOL that achieves ultrabroadband (0.3 to 1 THz), achromatic super-resolution focusing with an unprecedented efficiency of 44%. Operating at a 9 mm WD, the lens maintains a consistent sub-diffraction full-width at half-maximum (FWHM) of around 0.45 wavelength alongside an extended DOF of around 10 wavelengths. By integrating a compact 65-nm CMOS oscillator-radiator array, we establish an advanced imaging platform capable of resolving complex 2D and 3D sub-millimeter features (down to 0.15 mm). Readily scalable to the optical regime via two-photon lithography, this freeform SOL paradigm paves the way for next-generation, high-performance integrated photonics.

Keywords

Cite

@article{arxiv.2608.04711,
  title  = {Freeform super-oscillatory optics for CMOS-integrated THz super-resolution imaging},
  author = {Jin Chen and Liang Gao and Hao Guo and Zhi Chao Chen and Kang Jie Lin and Kam Man Shum and Ka Fai Chan and Chi Hou Chan},
  journal= {arXiv preprint arXiv:2608.04711},
  year   = {2026}
}