| Literature DB >> 30595022 |
Qingbin Fan1,2, Wenqi Zhu3,4, Yuzhang Liang1,2, Pengcheng Huo1,2, Cheng Zhang3,4, Amit Agrawal3,4, Kun Huang5, Xiangang Luo6, Yanqing Lu1,2, Chengwei Qiu7, Henri J Lezec3, Ting Xu1,2.
Abstract
Bending light along arbitrary curvatures is a captivating and popular notion, triggering unprecedented endeavors in achieving diffraction-free propagation along a curved path in free-space. Much effort has been devoted to achieving this goal in homogeneous space, which solely relies on the transverse acceleration of beam centroid exerted by a beam generator. Here, based on an all-dielectric metasurface, we experimentally report a synthetic strategy of encoding and multiplexing acceleration features on a freely propagating light beam, synergized with photonic spin states of light. Independent switching between two arbitrary visible accelerating light beams with distinct acceleration directions and caustic trajectories is achieved. This proof-of-concept recipe demonstrates the strength of the designed metasurface chip: subwavelength pixel size, independent control over light beam curvature, broadband operation in the visible, and ultrathin scalable planar architecture. Our results open up the possibility of creating ultracompact, high-pixel density, and flat-profile nanophotonic platforms for efficient generation and dynamical control of structured light beams.Entities:
Keywords: Metasurface; accelerating light beams; nanostructures; visible wavelength
Year: 2019 PMID: 30595022 PMCID: PMC6536309 DOI: 10.1021/acs.nanolett.8b04571
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189