4.8 Article

Interference-assisted kaleidoscopic meta-plexer for arbitrary spin-wavefront manipulation

期刊

LIGHT-SCIENCE & APPLICATIONS
卷 8, 期 -, 页码 -

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CHINESE ACAD SCIENCES, CHANGCHUN INST OPTICS FINE MECHANICS AND PHYSICS
DOI: 10.1038/s41377-018-0113-y

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资金

  1. National Natural Science Foundation of China [61501499, 11634010, 61631007, 61571117]
  2. Youth Talent Lifting Project of the China Association for Science and Technology [17-JCJQ-QT-003]
  3. National Defense Foundation of China [2201078]
  4. Key Program of Natural Science Foundation of Shaanxi Province [2017KJXX-24]
  5. China Scholarship Fund [201703170022]
  6. Aviation Science Foundation of China [20161996009]
  7. National Key Research and Development Program of China [2017YFA0700201, 2017YFA0700202]
  8. 111 Project [111-2-05]
  9. National Research Foundation, Prime Minister's Office, Singapore [NRF-CRP15-2015-03]

向作者/读者索取更多资源

Achieving simultaneous polarization and wavefront control, especially circular polarization with the auxiliary degree of freedom of light and spin angular momentum, is of fundamental importance in many optical applications. Interferences are typically undesirable in highly integrated photonic circuits and metasurfaces. Here, we propose an interference-assisted metasurface-multiplexer (meta-plexer) that counterintuitively exploits constructive and destructive interferences between hybrid meta-atoms and realizes independent spin-selective wavefront manipulation. Such kaleidoscopic meta-plexers are experimentally demonstrated via two types of single-layer spinwavefront multiplexers that are composed of spatially rotated anisotropic meta-atoms. One type generates a spinselective Bessel-beam wavefront for spin-down light and a low scattering cross-section for stealth for spin-up light. The other type demonstrates versatile control of the vortex wavefront, which is also characterized by the orbital angular momentum of light, with frequency-switchable numbers of beams under linearly polarized wave excitation. Our findings offer a distinct interference-assisted concept for realizing advanced multifunctional photonics with arbitrary and independent spin-wavefront features. A variety of applications can be readily anticipated in optical diodes, isolators, and spin-Hall meta-devices without cascading bulky optical elements.

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