4.7 Article

Engineering spin and antiferromagnetic resonances to realize an efficient direction-multiplexed visible meta-hologram

期刊

NANOSCALE HORIZONS
卷 5, 期 1, 页码 57-64

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9nh00460b

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资金

  1. LGD-SNU incubation program
  2. National Research Foundation of Korea (NRF) grants - Ministry of Science and ICT (MSIT) of the Korean government [NRF-2019R1A2C3003129, CAMM-2019M3A6B3030637, NRF-2018M3D1A1058998, NRF-2015R1A5A1037668]
  3. Government of the Russian Federation
  4. Higher Education Commission of Pakistan [10177]
  5. Scientific and Technological Research Council of Turkey (TUBITAK) [B.14.2.TBT.0.06.01.02-216-10539]
  6. ITU
  7. NRF-MIST of the Korean government [NRF-2016H1A2A1906519]
  8. Russian Science Foundation (RSF) [19-13-00332]
  9. Russian Science Foundation [19-13-00332] Funding Source: Russian Science Foundation
  10. National Research Foundation of Korea [2018M3D1A1058997, 2015R1A5A1037668] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Driven by the need for enhanced integrated performance and rapid development of ultrathin multitasked optical devices, this paper experimentally demonstrates monolayer direction-controlled multiplexing of a transmissive meta-hologram in the visible domain. The directional sensitivity is designed by imparting direction-controlled spin-dependent holographic recordings in the monolayer structure. The designed metasurface hologram consists of nano half-waveplates (HWPs) of low loss hydrogenated amorphous silicon (a-Si:H). These nano-featured HWPs are carefully designed and optimized for circularly polarized (CP) illumination to not only excite electric and magnetic resonances simultaneously but also to excite antiferromagnetic modes to ensure high transmission for the cross CP-light. The antiferromagnetic modes are excited in such a way that the transmitted CP-light maintains the Ex component of the incident CP-light through even antiparallel magnetic dipoles while they reverse the E-y component via odd antiparallel magnetic dipoles. As compared to the standard amorphous silicon, our a-Si:H exhibits a much lower absorption coefficient in the visible domain. The proposed single-layer design is an advanced step towards scalability, low-cost fabrication, and on-chip implementation of novel metasurfaces with substantially higher performance in the visible domain.

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