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      SERS-active silver colloids prepared by reduction of silver nitrate with short-chain polyethylene glycol

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          Abstract

          We report a fast, one-step, facile, and green preparation method that yields very stable and biocompatible silver colloids that are highly active as surface-enhanced Raman spectroscopy (SERS) platforms that has a possible application in biomedicine. Reduction of silver nitrate has been carried out using polyethylene glycol (PEG) which acts as both reducing agent and stabilizer. It turned out that the -OH groups provided by the addition of NaOH represent a key element in the successful synthesis of PEG-coated silver nanoparticles (AgNPs). The as-obtained silver colloids have been characterized by UV-visible spectroscopy, transmission electron spectroscopy, and SERS using 532- and 633-nm laser lines on a dispersive Raman spectrometer. Several analytes as methylene blue, p-aminothiophenol, amoxicillin, and Cu(PAR) 2 were used to prove SERS enhancement of the obtained silver colloid. It has been found that the PEGylated AgNPs provide SERS signals comparable to those achieved using classical hydroxylamine and citrate-reduced silver colloids, thus demonstrating the ability of this new method to prepare biocompatible silver colloids.

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          Most cited references13

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          Adsorption and surface-enhanced Raman of dyes on silver and gold sols

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            PEGylated nanoparticles for biological and pharmaceutical applications.

            The utility of polymeric micelles formed through the multimolecular assembly of block copolymer was comprehensively described as novel core-shell typed colloidal carriers for drug and gene targeting. Particularly, novel approaches for the formation of functionalized poly(ethylene glycol) (PEG) layers as hydrophilic outer shell were focused to attain receptor-mediated drug and gene delivery through PEG-conjugated ligands with a minimal non-specific interaction with other proteins. Surface organization of block copolymer micelles with cross-linking core was also described from a standpoint of the preparation of a new functional surface-coating with a unique macromolecular architecture. The micelle-attached surface and the thin hydrogel layer made by layered micelles exhibited nonfouling properties and worked as the reservoir for hydrophobic reagents. Furthermore, the potential utility of multimolecular assembly derived from heterobifunctional PEGs and block copolymers were explored to systematically modify the properties of metal and semiconductor nanostructures by controlling their structure and their surface properties, making them extremely attractive for use in biological and biomedical applications.
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              Extinction coefficient of gold nanoparticles with different sizes and different capping ligands.

              Extinction coefficients of gold nanoparticles with core size ranging from approximately 4 to 40 nm were determined by high resolution transmission electron microscopy analysis and UV-vis absorption spectroscopic measurement. Three different types of gold nanoparticles were prepared and studied: citrate-stabilized nanoparticles in five different sizes; oleylamide-protected gold nanoparticles with a core diameter of 8 nm, and a decanethiol-protected nanoparticle with a diameter of around 4 nm. A linear relationship between the logarithms of extinction coefficients and core diameters of gold particles was found independent of the capping ligands on the particle surface and the solvents used to dissolve the nanoparticles. This linear relation may be used as a calibration curve to determine the concentration or average size of an unknown nanoparticle or nanoparticle-biomolecule conjugate sample.
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                Author and article information

                Journal
                Nanoscale Res Lett
                Nanoscale Res Lett
                Nanoscale Research Letters
                Springer
                1931-7573
                1556-276X
                2013
                23 January 2013
                : 8
                : 1
                : 47
                Affiliations
                [1 ]Pharmaceutical-Biophysics Department, University of Medicine and Pharmacy ‘Iuliu Hatieganu’, Pasteur 6, Cluj-Napoca, 400349, Romania
                [2 ]Regional Institute of Gastroenterology-Hepatology ‘Octavian Fodor’, Constanta 5, Cluj-Napoca, 400158, Romania
                [3 ]Faculty of Physics, ‘Babes-Bolyai’ University, Kogalniceanu 1, Cluj-Napoca, 400084, Romania
                Article
                1556-276X-8-47
                10.1186/1556-276X-8-47
                3564716
                23343449
                f8b41676-3163-4284-94b6-c2706973a6dc
                Copyright ©2013 Stiufiuc et al.; licensee Springer.

                This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

                History
                : 13 November 2012
                : 12 January 2013
                Categories
                Nano Express

                Nanomaterials
                silver colloids,polyethylene glycol,sers,tem,uv–vis
                Nanomaterials
                silver colloids, polyethylene glycol, sers, tem, uv–vis

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