4.6 Article

Light Emission from Self-Assembled and Laser-Crystallized Chalcogenide Metasurface

期刊

ADVANCED OPTICAL MATERIALS
卷 8, 期 8, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adom.201901236

关键词

laser processing; metasurfaces; optical antennas; optical nanostructures; Raman emission

资金

  1. National Science Foundation through the MRSEC Center [DMR-1420541]
  2. AFOSR Young Investigator Program [FA9550-18-1-0300]
  3. NASA Early Career Faculty Award [80NSSC17K0526]
  4. National Natural Science Foundation of China [11772227, 61775003, 11734001]

向作者/读者索取更多资源

Subwavelength periodic confinement can collectively and selectively enhance local light intensity and enable control over the photoinduced phase transformations at the nanometer scale. Standard nanofabrication process can result in geometrical and compositional inhomogeneities in optical phase change materials, especially chalcogenides, as those materials exhibit poor chemical and thermal stability. Here the self-assembled planar chalcogenide nanostructured array is demonstrated with resonance-enhanced light emission to create an all-dielectric optical metasurface, by taking advantage of the fluid properties associated with solution-processed films. A patterned silicon membrane serves as a template for shaping the chalcogenide metasurface structure. Solution-processed arsenic sulfide metasurface structures are self-assembled in the suspended 250 nm silicon membrane templates. The periodic nanostructure dramatically manifests the local light-matter interaction such as absorption of incident photons, Raman emission, and photoluminescence. Also, the thermal distribution is modified by the boundaries and thus the photothermal crystallization process, leading to the formation of anisotropic nanoemitters within the field enhancement area. This hybrid structure shows wavelength-selective anisotropic photoluminescence, which is a characteristic behavior of the collective response of the resonant-guided modes in a periodic nanostructure. The resonance-enhanced Purcell effect can manifest the quantum efficiency of localized light emission.

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