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Determination of the Concentration of Silver Atoms in Hydrosol Nanoparticles

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Date 2022 Sep 23
PMID 36144882
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Abstract

In this work, we propose a new method for determining the concentration of silver atoms in hydrosols of nanoparticles (NPs) stabilized with various capping agents. The proposed method is based on the determination of IBT absorption in the UV region (a broad band with a weakly pronounced shoulder at ~250 nm). To determine the extinction coefficient at 250 nm, we synthesized silver nanoparticles with average sizes of 5, 10, and 25 nm, respectively. The prepared nanoparticles were characterized by TEM, HRTEM, electron diffraction, XRD, DLS, and UV-Vis spectroscopy. It has been shown that the absorption characteristics of spherical NPs are not significantly influenced by the hydrosol preparation method and the type of stabilizer used. For particles with a size of 5-25 nm, the molar extinction coefficient of Ag0 atoms was found to be equal to 3500 ± 100 L mol cm at a wavelength of 250 nm. The results of the theoretical calculations of the molar extinction coefficients for spherical nanoparticles are in good agreement with the experimental values. ICP-MS analysis confirmed the applicability of this method in the concentration range of 5 × 10-1 × 10 mol L.

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References
1.
Paramelle D, Sadovoy A, Gorelik S, Free P, Hobley J, Fernig D . A rapid method to estimate the concentration of citrate capped silver nanoparticles from UV-visible light spectra. Analyst. 2014; 139(19):4855-61. DOI: 10.1039/c4an00978a. View

2.
Ershov V, Tarasova N, Ershov B . Evolution of Electronic State and Properties of Silver Nanoparticles during Their Formation in Aqueous Solution. Int J Mol Sci. 2021; 22(19). PMC: 8509023. DOI: 10.3390/ijms221910673. View

3.
Ershov V, Tarasova N, Abkhalimov E, Safonov A, Sorokin V, Ershov B . Photochemical Synthesis of Silver Hydrosol Stabilized by Carbonate Ions and Study of Its Bactericidal Impact on : Direct and Indirect Effects. Int J Mol Sci. 2022; 23(2). PMC: 8780126. DOI: 10.3390/ijms23020949. View

4.
Gottschalk F, Sun T, Nowack B . Environmental concentrations of engineered nanomaterials: review of modeling and analytical studies. Environ Pollut. 2013; 181:287-300. DOI: 10.1016/j.envpol.2013.06.003. View

5.
Evanoff D, Chumanov G . Size-Controlled Synthesis of Nanoparticles. 2. Measurement of Extinction, Scattering, and Absorption Cross Sections. J Phys Chem B. 2022; 108(37):13957-13962. DOI: 10.1021/jp0475640. View