| Literature DB >> 25940659 |
Kun Huang1, Hong Liu2, Francisco J Garcia-Vidal3,4, Minghui Hong1, Boris Luk'yanchuk5, Jinghua Teng2, Cheng-Wei Qiu1.
Abstract
Miniaturization of optical structures makes it possible to control light at the nanoscale, but on the other hand it imposes a challenge of accurately handling numerous unit elements in a miniaturized device with aperiodic and random arrangements. Here, we report both the new analytical model and experimental demonstration of the photon sieves with ultrahigh-capacity of subwavelength holes (over 34 thousands) arranged in two different structural orders of randomness and aperiodicity. The random photon sieve produces a uniform optical hologram with high diffraction efficiency and free from twin images that are usually seen in conventional holography, while the aperiodic photon sieve manifests sub-diffraction-limit focusing in air. A hybrid approach is developed to make the design of random and aperiodic photon sieve viable for high-accuracy control of the amplitude, phase and polarization of visible light. The polarization independence of the photon sieve will also greatly benefit its applications in optical imaging and spectroscopy.Entities:
Year: 2015 PMID: 25940659 DOI: 10.1038/ncomms8059
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919