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Few-femtosecond plasmon dephasing of a single metallic nanostructure from optical response function reconstruction by interferometric frequency resolved optical gating

  • Alexandria Anderson
  • , Kseniya S. Deryckx
  • , Xiaoji G. Xu
  • , Günter Steinmeyer
  • , Markus B. Raschke
  • University of Washington
  • Tampere University
  • Max-Born-Institute for Nonlinear Optics and Short Pulse Spectroscopy

Research output: Contribution to journalArticlepeer-review

143 Scopus citations

Abstract

The precise characterization of the ultrafast optical response of metals and metallic nanostructures has remained an experimental challenge. We probe the few-femtosecond electronic dephasing of a local surface plasmon polariton excitation using symmetry-selective second-harmonic (SH) Rayleigh scattering of a nanoscopic conical gold tip as an individual plasmonic nanostructure. The full reconstruction of the optical response function of the plasmon excitation with phase and amplitude without any model assumptions is demonstrated from the analysis of the two-dimensional spectrogram obtained by simultaneous time- and frequency-domain SH measurements, using interferometric frequency resolved optical gating. The measured dephasing time of T2 = 18 ± 5 fs indicates the plasmon damping is dominated by nonradiative decay, consistent with a Drude-Sommerfeld dielectric response for gold. Even for the nominally homogeneous localized plasmon response, deviations are observed from the ideal harmonic oscillator phase behavior, which may reflect the underlying inhomogeneous electronic response with its different scattering channels. The presented technique is generally applicable for the reconstruction of the plasmon dynamics of complex nanostructures: information that cannot be obtained by conventional dark-field scattering.

Original languageEnglish
Pages (from-to)2519-2524
Number of pages6
JournalNano Letters
Volume10
Issue number7
DOIs
StatePublished - Jul 14 2010

Keywords

  • FROG
  • Nanotip
  • Nonlinear dynamics
  • Plasmon dephasing

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