超材料
波前
太赫兹辐射
斗篷
电介质
材料科学
光学
轴棱锥
镜头(地质)
膜
基质(水族馆)
掩蔽
光电子学
物理
激光束
激光器
地质学
海洋学
生物
遗传学
作者
Quanlong Yang,Sergey Kruk,Yuehong Xu,Qing-Wei Wang,Yogesh Kumar Srivastava,Kirill Koshelev,Ivan I. Kravchenko,Ranjan Singh,Jiaguang Han,Yuri S. Kivshar,Ilya V. Shadrivov
标识
DOI:10.1002/adfm.201906851
摘要
Abstract All‐dielectric metasurfaces have become a new paradigm for flat optics as they allow flexible engineering of the electromagnetic space of propagating waves. Such metasurfaces are usually composed of individual subwavelength elements embedded into a host medium or placed on a substrate, which often diminishes the quality of the resonances. The substrate imposes limitations on the metasurface functionalities, especially for infrared and terahertz frequencies. Here a novel concept of membrane Huygens' metasurfaces is introduced. The metasurfaces feature an inverted design, and they consist of arrays of holes made in a thin membrane of high‐index dielectric material, with the response governed by the electric and magnetic Mie resonances excited within dielectric domains of the membrane. Highly efficient transmission combined with the 2π phase coverage in the freestanding membranes is demonstrated. Several functional metadevices for wavefront control are designed, including beam deflector, a lens, and an axicon. Such membrane metasurfaces provide novel opportunities for efficient large‐area metadevices, whose advanced functionality is defined by structuring rather than by chemical composition.
科研通智能强力驱动
Strongly Powered by AbleSci AI