Affiliation:
1. MOE Key Laboratory of Advanced Micro-Structured Materials
2. Shanghai Frontiers Science Center of Digital Optics
3. Shanghai Professional Technical Service Platform for Full-Spectrum and High-Performance Optical Thin Film Devices and Applications
4. Moscow State University
5. Tongji University
6. Fudan University
Abstract
Littrow diffraction, the
ability to reflect light back
along incident direction, is a key functionality of retroreflectors,
exhibiting wide applications in nanophotonics. However,
retroreflectors have hitherto low working efficiencies and narrow
bandwidths, and work only for a specific polarization, being
unfavorable for integration-optics applications. Here, we propose
a type of metagrating
consisting of an all-dielectric Bragg reflector and a periodic
metasurface with freeform-shaped dielectric resonators, which enables
broadband depolarized perfect Littrow diffraction at optical
frequencies. The physics is governed by exact cancellations of
specular reflections contributed by two Bragg modes in metagratings,
enabled by careful structural optimization to yield the desired
reflection-phase difference of Bragg modes within a wide frequency
band and for two polarizations. As a proof of concept, we
experimentally demonstrate retroreflections with unpolarized absolute
efficiency higher than 98% (99% in design) at 1030–1090 nm using
multilayer freeform metagratings. Our results pave the way for
numerous applications based on high-efficiency Littrow diffraction
(e.g., spectral laser beam combining), which is not bonded to a
specific polarization or frequency.
Funder
National Natural Science Foundation of
China
Science and Technology Commission of
Shanghai Municipality
Shanghai Pujiang Program
Shanghai Municipal Education
Commission
The Shanghai Municipal Science and
Technology Major Project
Fundamental Research Funds for the
Central Universities
Special Development Funds for Major
Projects of Shanghai Zhangjiang National Independent Innovation
Demonstration Zone
China Postdoctoral Science
Foundation
Subject
Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials
Cited by
16 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献