A review of metasurfaces: physics and applications

Обзор метаповерхностей: физика и применения
Antoinette J. Taylor, Hou‐Tong Chen, Nanfang Yu
2016-06-16

Huygens' metasurfacesPancharatnam–Berry phasedielectric metasurfacesmetasurfaceswavefront shaping
Metamaterials are composed of periodic subwavelength metal/dielectric structures that resonantly couple to the electric and/or magnetic components of the incident electromagnetic fields, exhibiting properties that are not found in nature. This class of micro- and nano-structured artificial media have attracted great interest during the past 15 years and yielded ground-breaking electromagnetic and photonic phenomena. However, the high losses and strong dispersion associated with the resonant responses and the use of metallic structures, as well as the difficulty in fabricating the micro- and nanoscale 3D structures, have hindered practical applications of metamaterials. Planar metamaterials with subwavelength thickness, or metasurfaces, consisting of single-layer or few-layer stacks of planar structures, can be readily fabricated using lithography and nanoprinting methods, and the ultrathin thickness in the wave propagation direction can greatly suppress the undesirable losses. Metasurfaces enable a spatially varying optical response (e.g. scattering amplitude, phase, and polarization), mold optical wavefronts into shapes that can be designed at will, and facilitate the integration of functional materials to accomplish active control and greatly enhanced nonlinear response. This paper reviews recent progress in the physics of metasurfaces operating at wavelengths ranging from microwave to visible. We provide an overview of key metasurface concepts such as anomalous reflection and refraction, and introduce metasurfaces based on the Pancharatnam-Berry phase and Huygens' metasurfaces, as well as their use in wavefront shaping and beam forming applications, followed by a discussion of polarization conversion in few-layer metasurfaces and their related properties. An overview of dielectric metasurfaces reveals their ability to realize unique functionalities coupled with Mie resonances and their low ohmic losses. We also describe metasurfaces for wave guidance and radiation control, as well as active and nonlinear metasurfaces. Finally, we conclude by providing our opinions of opportunities and challenges in this rapidly developing research field.
1
Dielectric metasurfaces combine Mie-resonance-based functionalities with low ohmic losses, expanding practical photonic applications across microwave-to-visible wavelengths.
2
Few-layer metasurfaces can achieve polarization conversion and related polarization-control functionalities.
3
Metasurfaces overcome key metamaterial limitations by using ultrathin planar structures that are more readily fabricated and can suppress propagation-direction losses.
4
Pancharatnam–Berry-phase and Huygens’ metasurfaces provide important platforms for anomalous reflection, refraction, wavefront control, and beam-forming applications.
5
Spatially varying amplitude, phase, and polarization responses allow metasurfaces to mold optical wavefronts and enable designed beam shaping and forming.

Metasurfaces (planar subwavelength metamaterials)

the physics, optical response, functionalities, and applications of metasurfaces across microwave-to-visible wavelengths

Publication Details
Publication Date
2016-06-16
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Antoinette J. Taylor
Hou‐Tong Chen
Nanfang Yu
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%