Optical metasurfaces have catalysed transformative advances across imaging, optoelectronics, quantum information processing, sensing, energy conversion, and optical computing. Yet, most current research remains constrained by the challenge of integrating multiple functions within a single device. Inspired by the aesthetic of disordered mosaics in art, we demonstrate that by engineering structural disorder of meta-pixels to implement a photonic function, the active area required can be considerably reduced, without compromising optical performance. Without increasing the design complexity, the remaining unallocated space can be repurposed to encode functionally distinct meta-pixels, each independently addressable via various optical degrees of freedom. To demonstrate the universal adaptability of our approach, we present two proof-of-concept examples including an achromatic metalens — that operates across the 1200–1400 nm spectral window and with a scalable aperture size up to 8.1 mm — and single-shot, high-spatial-resolution polarimetric imaging of arbitrarily structured light fields. This disordered mosaic metasurface platform establishes a versatile foundation for integrating diverse photonic functionalities within a single diffractive optical element, representing a substantial step toward compact, high-density, multifunctional optical devices. Despite the technological advancements in optical metasurfaces, the integration of multiple functions with a single device is challenging. Here, authors propose a multifunctional metasurface based on engineered structural disorder, demonstrating a broadband metalens with scalable aperture and metasurface-based detection of optical topological textures.
Li et al. (2026) studied this question.