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Rapid simulations of hyperspectral near-field images of three-dimensional heterogeneous surfaces

  • Xinzhong Chen
  • , Ziheng Yao
  • , Stefan G. Stanciu
  • , D. N. Basov
  • , Rainer Hillenbrand
  • , Mengkun Liu
  • Stony Brook University
  • National University of Science and Technology POLITEHNICA Bucharest
  • Columbia University
  • CIC nanoGUNE
  • Ikerbasque Basque Foundation for Science

Research output: Contribution to journalArticlepeer-review

34 Scopus citations

Abstract

The scattering-type scanning near-field optical microscope (s-SNOM) has emerged as a powerful tool for resolving nanoscale inhomogeneities in laterally heterogeneous samples. However, most analytical models used to predict the scattering near-field signals are assuming homogenous landscapes (bulk materials), resulting in inconsistencies when applied to samples with more complex configurations. In this work, we combine the point-dipole model (PDM) to the finite-element method (FEM) to account for the lateral and vertical heterogeneities while keeping the computation time manageable. Full images, spectra, or hyperspectral line profiles can be simulated by calculating the self-consistent dipole radiation demodulated at higher harmonics of the tip oscillation, mimicking real experimental procedures. Using this formalism, we clarify several important yet puzzling experimental observations in near-field images on samples with rich typography and complex material compositions, heterostructures of two-dimensional material flakes, and plasmonic antennas. The developed method serves as a basis for future investigations of nano-systems with nontrivial topography.

Original languageEnglish
Pages (from-to)39648-39668
Number of pages21
JournalOptics Express
Volume29
Issue number24
DOIs
StatePublished - Nov 22 2021

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