Thickness bound for nonlocal wide-field-of-view metalenses
arXiv:2205.09366 · doi:10.1038/s41377-022-01038-6
Abstract
Metalenses -- flat lenses made with optical metasurfaces -- promise to enable thinner, cheaper, and better imaging systems. Achieving a sufficient angular field of view (FOV) is crucial toward that goal and requires a tailored incident-angle-dependent response. Here, we show that there is an intrinsic trade-off between achieving a desired broad-angle response and reducing the thickness of the device. It originates from the Fourier transform duality between space and angle. One can write down the transmission matrix describing the desired angle-dependent response, convert it to the spatial basis where its degree of nonlocality can be quantified through a lateral spreading, and determine the minimal device thickness based on such a required lateral spreading. This approach is general. When applied to wide-FOV lenses, it predicts the minimal thickness as a function of the FOV, lens diameter, and numerical aperture. The bound is tight, as some inverse-designed multi-layer metasurfaces can approach the minimal thickness we found. This work offers guidance for the design of nonlocal metasurfaces, proposes a new framework for establishing bounds, and reveals the relation between angular diversity and spatial footprint in multi-channel systems.
References in corpus (11)
- Light fields in complex media: mesoscopic scattering meets wave control
- Characterization of the angular memory effect of scattered light in biological tissues
- Fundamental limitations of Huygens metasurfaces for optical beam shaping
- Squeeze free space with nonlocal flat optics
- An optic to replace space and its application towards ultra-thin imaging systems
- Fullwave Maxwell inverse design of axisymmetric, tunable, and multi-scale multi-wavelength metalenses
- Computational inverse design for ultra-compact single-piece metalenses free of chromatic and angular aberration
- Towards 3D-Printed Inverse-Designed Metaoptics
- Fast multi-source nanophotonic simulations using augmented partial factorization
- Customizing the angular memory effect for scattering media
- Fundamental limits to multi-functional and tunable nanophotonic response
Cited by in corpus (8)
- Phase-change nonlocal metasurfaces for dynamic wavefront manipulation
- Fast multi-source nanophotonic simulations using augmented partial factorization
- Roadmap on Nonlocality in Photonic Materials and Metamaterials
- High-efficiency high-NA metalens designed by maximizing the efficiency limit
- Scalable freeform optimization of wide-aperture 3D metalenses by zoned discrete axisymmetry
- Transmission efficiency limit for nonlocal metalenses
- Arbitrary control over multimode wave propagation for machine learning
- Fast multi-channel inverse design through augmented partial factorization