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The synthesis of hybrid metallic-dielectric substrates as reliable SERS platforms relies on core-shell nanoparticles, obtained by wet chemistry, with an outer dielectric shell composed of SiO or TiO. Apart from the shell composition, the nanoparticle density and aggregation type strongly affect the surface-enhanced SERS. Going beyond a single layer by building random aggregates of hybrid NPs would result in a step forward in the production of reliable hybrid SERS platforms. Here we achieve the fabrication of a 3D nanogranular film of Ag metallic cores not fully enclosed in a TiO capping layer, defined as a Ag@TiO quasi-shell-isolated Raman substrate (Ag@TiO QuaSIRS) by an environmentally friendly gas phase synthesis technique (SCBD). The Ag core drives the electromagnetic enhancement with plasmonic hotspots while the TiO shell passivates it and leads to different possible surface functionalization. The SERS capabilities of the Ag@TiO QuaSIRS peak at a film thickness of 60 nm providing a detection limit of 10 M concentration for Methylene Blue at 632.81 nm. The importance of the nanogranular 3D morphology is evidenced by the very good detection of analytes dispersed in aqueous solutions, since the liquid can penetrate the pores hence exploiting most of the plasmonic hotspots present in the film. The versatility of SCBD to deposit such reliable hybrid SERS platforms by a single step at room temperature over different substrates provides an opportunity to design a new generation of hybrid SERS-active substrates based on hybrid nanoparticles.
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http://dx.doi.org/10.1039/c9cp03998h | DOI Listing |
Metal nanoparticles (MNPs) have emerged as vital components in nanotechnology due to their unique ability to concentrate light at the nanoscale. This property makes them especially valuable in biosensing applications, where high sensitivity is essential. At the same time, cellulose-based materials like paper offer an affordable, widely available, and versatile platform, making them ideal for the development of paper-based microfluidic analytical devices (μPADs).
View Article and Find Full Text PDFAnal Chem
September 2025
School of Medicine, South China University of Technology, Guangzhou 510006, China.
Detecting low-concentration foodborne viruses in complex samples has long posed a great challenge. Here, we propose a colorimetric enhancement-surface-enhanced Raman scattering (SERS) quantitative dual-mode immunochromatographic assay (ICA), characterized by high flexibility, sensitivity, and stability, which can rapidly and accurately detect viruses in various environments, including field, home, and clinical laboratory settings. A multifunctional SERS nanozyme tag (DSAIA) is customized using dendritic mesoporous SiO as the core, which is densely loaded with AuIr catalytic particles and coated with a layer of highly active 35 nm Au nanoparticles on the exterior, thereby simultaneously achieving monodispersity, strong peroxidase activity, and a high density of efficient SERS hotspots.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Division of Chemistry and Biological Chemistry, School of Chemistry, Chemical Engineering and Biotechnology, Nanyang Technological University, 21 Nanyang Link, Singapore, 637371, Singapore.
Rapid and accurate identification of harmful plasticizer analogs in their native matrix is crucial for contaminant monitoring across industries. Surface-enhanced Raman scattering (SERS) shows promise for detecting structurally similar analogs but faces challenges like subtle receptor signal changes and distortion with weakly adsorbing plasticizer analytes. We address these limitations by integrating direct and indirect SERS to capture intrinsic Raman signals and receptor-analyte interactions, achieving 100% classification accuracy eight plasticizer analogs and multiplex quantification of three major plasticizers extracted from canola oil with < 5% predictive errors at a limit of detection (LOD) of 0.
View Article and Find Full Text PDFTalanta
August 2025
School of Pharmacy, Key Laboratory of Innovative Drug Development and Evaluation, Hebei Medical University, Shijiazhuang, Hebei Province, 050017, PR China. Electronic address:
Abnormal cellular Cu level is closely associated with many various pathological conditions, including cancer, Menkes disease, and Wilson's disease. However, sensitive and accurate detection of intracellular Cu remains challenging. To address this, we engineered an interference-free surface-enhanced Raman scattering (SERS) nanoprobe utilizing a target-responsive aggregation mechanism for selective Cu detection.
View Article and Find Full Text PDFSpectrochim Acta A Mol Biomol Spectrosc
August 2025
School of Electronic Engineering, Xi'an University of Posts & Telecommunications, Xi'an, 710121, China. Electronic address:
Surface-enhanced Raman scattering (SERS) with ultrahigh sensitivity has garnered significant attention for quantitative analysis and chemically specific detection. However, conventional SERS platforms, typically structured by depositing plasmonic micro/nanoparticles onto rigid substrates, face limitations in further advancement and applications. In this study, we present a novel method to prepare a flexible SERS film substrate composed of graphene overlayer (G) atop a self-assembled array of silver micropopcorns (Ag MPs) and a polymethyl methacrylate (PMMA) membrane.
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