4.8 Article

Shape-Dependent Light Scattering Properties of Subwavelength Silicon Nanoblocks

期刊

NANO LETTERS
卷 15, 期 3, 页码 1759-1765

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nl504442v

关键词

Silicon nanoblock; leaky-mode resonance; resonant scattering; scattering cross section; structural color

资金

  1. National Research Foundation of Korea (NRF) [2013R1A2A2A01014224, 2014M3A6B3063709, 2014M3C1A3052537, 357-2011-1-C00041, 2012R1A6A3A01039034]
  2. Air Force Office of Sponsored Research [FA9550-14-1-0117]
  3. National Research Foundation of Korea [2012R1A6A3A01039034, 2013R1A2A2A01014224, 357-2011-1-C00041] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

We explore the shape-dependent light scattering properties of silicon (Si) nanoblocks and their physical origin. These high-refractive-index nanostructures are easily fabricated using planar fabrication technologies and support strong, leaky-mode resonances that enable light manipulation beyond the optical diffraction limit.-Dark-field microscopy and a numerical modal analysis show that the nanoblocks can be viewed as truncated Si waveguides, and the waveguide dispersion strongly controls the resonant properties. This explains why the lowest-order transverse magnetic (TM01 mode resonance can be widely tuned over the entire visible wavelength range depending on the nanoblock length, whereas the wavelength-scale TM11 mode resonance does not change greatly. For sufficiently short lengths, the TM01 and TM11 modes can be made to spectrally overlap, and a substantial scattering efficiency, which is defined as the ratio of the scattering cross-section to the physical cross section of the nanoblock, Of,similar to 9.95, approaching the theoretical lOwest-order single-channel scattering limit, is achievable. Control over the subwavelength-scaleleaky-mode resonance allows Si nanoblOcks to generate vivid structural color, manipulate forward and backward scattering, and as excellent photonic artificial atoms for metasurfaces.

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