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Robust raspberry-like metallo-dielectric nanoclusters of critical sizes as SERS substrates
Author(s) -
Aurélie Le Beulze,
Sergio GómezGraña,
Hélène Gehan,
Stéphane Mornet,
Serge Ravaine,
Miguel A. CorreaDuarte,
Luca Guerrini,
Ramón A. ÁlvarezPuebla,
Étienne Duguet,
Etienne Pertreux,
Aurélien Crut,
Paolo Maioli,
Fabrice Vallée,
Natalia Del Fatti,
Ovidiu Ersen,
Mona TréguerDelapierre
Publication year - 2017
Publication title -
nanoscale
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.038
H-Index - 224
eISSN - 2040-3372
pISSN - 2040-3364
DOI - 10.1039/c7nr00969k
Subject(s) - materials science , nanoclusters , laser linewidth , plasmon , nanoparticle , dielectric , raman scattering , raman spectroscopy , surface plasmon polariton , photonics , nanodot , optoelectronics , nanotechnology , surface plasmon , laser , optics , physics
Raspberry-like nano-objects made of large plasmonic satellites (>10 nm) covering a central dielectric particle have many potential applications as photonic materials, superlenses and (bio-) sensors, but their synthesis remains challenging. Herein, we show how to build stable and robust raspberry-like nano-systems with close-packed satellites, by combining monodisperse silica particles (80 or 100 nm diameter) and oppositely charged noble metal nanoparticles (Au or Ag) with well-defined sizes (10-50 nm). The spectral characteristics of their associated plasmonic resonances (wavelength, linewidth, extinction cross-section) and the electromagnetic coupling between satellites were observed using the spatial modulation spectroscopy technique and interpreted through a numerical model. The composite nano-objects exhibit numerous hot spots at satellite junctions, resulting in excellent surface-enhanced Raman scattering (SERS) performance. The SERS efficiency of the raspberry-like clusters is highly dependent on their structure.

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