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Article Abstract

In this article, we discuss a simple method to prepare core-shell Ag@TiO nanoparticles (NPs) with an optimized shell thickness to engineer plasmonic photocatalysts and surface-enhanced Raman scattering (SERS) substrates. Variation in the shell (TiO) thickness was analyzed by an acid-etching method, and the deterioration of the shell was traced by monitoring the extinction spectra of both colloidal and solid-supported Ag@TiO NPs. Attainment of the optimum shell thickness was confirmed by noticing the simultaneous appearance of the LSPR absorption band (at 450 nm) of core silver nanostructures ( = ∼10 nm) and the scattering signature of the shell (TiO) in the extinction spectrum of Ag@TiO NPs. This study showed that the optimum thickness of TiO is ∼2 nm, which allowed LSPR excitation by visible light. The observed blue shift of the LSPR peak, compared to the unetched Ag@TiO NPs, with etching time indicated the size reduction of the NPs. Ag@TiO with the optimum thickness exhibited a reaction rate five times faster than that of unetched Ag@TiO under visible light irradiation. Ag@TiO NPs exhibited higher photocatalytic activity under visible light irradiation than under UV light. Furthermore, Ag@TiO NPs with the optimized thickness exhibited significantly higher SERS activity than the unetched Ag@TiO NPs. The elevated photocatalytic and SERS activities exhibited by engineered Ag@TiO NPs reveal the effectiveness of the etching process in creating a plasmonic effect in core(plasmonic)-shell (semiconductor) nanostructures.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12019743PMC
http://dx.doi.org/10.1021/acsomega.4c10276DOI Listing

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