A hybrid achromatic metalens

Гибридная ахроматическая метаповерхностная линза
Fatih Balli, Mansoor A. Sultan, Sarah K. Lami, J. Todd Hastings
2020-08-04

air-spaced metalenschromatic aberration correctionfocusing efficiencyhybrid achromatic metalensmulti-photon lithography
Metalenses, ultra-thin optical elements that focus light using subwavelength structures, have been the subject of a number of recent investigations. Compared to their refractive counterparts, metalenses offer reduced size and weight, and new functionality such as polarization control. However, metalenses that correct chromatic aberration also suffer from markedly reduced focusing efficiency. Here we introduce a Hybrid Achromatic Metalens (HAML) that overcomes this trade-off and offers improved focusing efficiency over a broad wavelength range from 1000-1800 nm. HAMLs can be designed by combining recursive ray-tracing and simulated phase libraries rather than computationally intensive global search algorithms. Moreover, HAMLs can be fabricated in low-refractive index materials using multi-photon lithography for customization or using molding for mass production. HAMLs demonstrated diffraction limited performance for numerical apertures of 0.27, 0.11, and 0.06, with average focusing efficiencies greater than 60% and maximum efficiencies up to 80%. A more complex design, the air-spaced HAML, introduces a gap between elements to enable even larger diameters and numerical apertures.
1
Demonstrated HAMLs provide average focusing efficiencies above 60% and peak efficiencies up to 80%.
2
HAML designs combine recursive ray tracing with simulated phase libraries, avoiding computationally intensive global-search algorithms.
3
HAMLs achieve diffraction-limited performance at numerical apertures of 0.27, 0.11, and 0.06.
4
HAMLs can be fabricated in low-refractive-index materials through multiphoton lithography or molding; air-spaced designs enable larger diameters and numerical apertures.
5
The Hybrid Achromatic Metalens (HAML) overcomes the typical efficiency penalty of chromatic-aberration correction across 1000–1800 nm.

hybrid achromatic metalenses (HAMLs)

broadband chromatic-aberration correction with diffraction-limited focusing and improved focusing efficiency

Publication Details
Publication Date
2020-08-04
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Fatih Balli
Mansoor A. Sultan
Sarah K. Lami
J. Todd Hastings
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%