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Near-field transmission matrix microscopy for mapping high-order eigenmodes of subwavelength nanostructures

Author

Listed:
  • Eunsung Seo

    (Institute for Basic Science
    Korea University)

  • Young-Ho Jin

    (Korea University)

  • Wonjun Choi

    (Institute for Basic Science
    Korea University)

  • Yonghyeon Jo

    (Institute for Basic Science
    Korea University)

  • Suyeon Lee

    (Samsung Advanced Institute of Technology)

  • Kyung-Deok Song

    (Institute for Basic Science
    Korea University)

  • Joonmo Ahn

    (Institute for Basic Science
    Korea University)

  • Q.-Han Park

    (Korea University)

  • Myung-Ki Kim

    (Korea University)

  • Wonshik Choi

    (Institute for Basic Science
    Korea University)

Abstract

As nanoscale photonic devices are densely integrated, multiple near-field optical eigenmodes take part in their functionalization. Inevitably, these eigenmodes are highly multiplexed in their spectra and superposed in their spatial distributions, making it extremely difficult for conventional near-field scanning optical microscopy (NSOM) to address individual eigenmodes. Here, we develop a near-field transmission matrix microscopy for mapping the high-order eigenmodes of nanostructures, which are invisible with conventional NSOM. At an excitation wavelength where multiple modes are superposed, we measure the near-field amplitude and phase maps for various far-field illumination angles, from which we construct a fully phase-referenced far- to near-field transmission matrix. By performing the singular value decomposition, we extract orthogonal near-field eigenmodes such as anti-symmetric mode and quadruple mode of multiple nano-slits whose gap size (50 nm) is smaller than the probe aperture (150 nm). Analytic model and numerical mode analysis validated the experimentally observed modes.

Suggested Citation

  • Eunsung Seo & Young-Ho Jin & Wonjun Choi & Yonghyeon Jo & Suyeon Lee & Kyung-Deok Song & Joonmo Ahn & Q.-Han Park & Myung-Ki Kim & Wonshik Choi, 2020. "Near-field transmission matrix microscopy for mapping high-order eigenmodes of subwavelength nanostructures," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-020-16263-z
    DOI: 10.1038/s41467-020-16263-z
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