4.6 Article

Plasmonic Pollen Grain Nanostructures: A Three-Dimensional Surface-Enhanced Raman Scattering (SERS)-Active Substrate

Journal

CHEMISTRY-AN ASIAN JOURNAL
Volume 16, Issue 13, Pages 1807-1819

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/asia.202100386

Keywords

Nanostructures; surface-enhanced Raman scattering; plasmonics; finite difference time domain; electromagnetic near-field distribution

Funding

  1. KFUPM [DF191020]

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A new route has been developed to design plasmonic pollen grain-like nanostructures (PGNSs) as SERS-active substrate. The nanostructures consisting of Ag, Au, and ZnO nanoparticles were highly SERS-active. The SERS-activity was confirmed using R6G as Raman-active dyes, with an enhancement factor as high as 3.5x10(6).
A new route has been developed to design plasmonic pollen grain-like nanostructures (PGNSs) as surface-enhanced Raman scattering (SERS)-active substrate. The nanostructures consisting of silver (Ag) and gold (Au) nanoparticles along with zinc oxide (ZnO) nanoclusters as spacers were found highly SERS-active. The morphology of PGNSs and those obtained in the intermediate stage along with each elemental evolution has been investigated by a high-resolution field emission scanning electron microscopy. The optical band gaps and crystal structure have been identified by UV-vis absorption and X-ray powder diffraction (XRD) measurements, respectively. For PGNSs specimen, three distinct absorption bands related to constituent elements Ag, Au, and ZnO were observed, whereas XRD peaks confirmed the existence of Ag, Au, and ZnO within the composition of PGNSs. SERS-activity of PGNSs was confirmed using Rhodamine 6G (R6G) as Raman-active dyes. Air-cooled solid-state laser kits of 532 nm were used as excitation sources in SERS measurements. SERS enhancement factor was estimated for PGNSs specimen and was found as high as 3.5x10(6). Finite difference time domain analysis was carried out to correlate the electromagnetic (EM) near-field distributions with the experiment results achieved under this investigation. EM near-field distributions at different planes were extracted for s-, p- and 45 degrees of incident polarizations. EM near-field distributions for such nanostructures as well as current density distributions under different circumstances were demonstrated and plausible scenarios were elucidated given SERS enhancements. Such generic fabrication route as well as correlated investigation is not only indispensable to realize the potential of SERS applications but also unveil the underneath plasmonic characteristics of complex SERS-active nanostructures.

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