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JOURNALS // Optics and Spectroscopy // Archive

Optics and Spectroscopy, 2019 Volume 126, Issue 3, Pages 374–382 (Mi os769)

This article is cited in 4 papers

Applied optics

An analysis of the optical properties of homogeneous metal and oxide nanoparticles along with double–layer nanoparticles with a metal core and an oxide shell aimed at improving the efficiency of absorption of solar radiation

L. G. Astaf'evaa, V. K. Pustovalovb, W. Fritzschec

a B. I. Stepanov Institute of Physics, National Academy of Sciences of Belarus, Minsk
b Belarusian National Technical University
c Leibniz Institute of Photonic Technology, Jena, Germany

Abstract: Problems related to using nanoparticles for absorption of solar radiation and photothermal nanotechnologies are now being actively studied. The efficiency of using nanoparticles as photothermal agents for solar energy is determined by their spectral optical properties. We performed computer simulation of optical properties of homogeneous metal (nickel, titanium, and molybdenum) nanoparticles and their oxides, along with nanoparticles consisting of a metal core and an oxide shell, with radii in the range from 50 to 100 nm in the spectral interval between 200 and 2500 nm. The influence of nanoparticle radius, the type of metal and its oxide on spectral coefficients of efficiency absorption $(K_{\operatorname{abs}})$ and scattering $(K_{\operatorname{sca}})$ of radiation by nanoparticles is investigated. The type of nanoparticles suitable for absorption of solar radiation was chosen based on a comparative analysis of the wavelength dependences of absorption efficiency coefficients $K_{\operatorname{abs}}$, intensity of solar radiation $I_S$, and parameter $P_1=K_{\operatorname{abs}}/K_{\operatorname{sca}}$. Spherical double–layer nanoparticles consisting of nickel or titanium core and oxide shells with a radius of 75 or 100 nm can be used in the spectral interval from 200 to 2500 nm for efficient absorption of solar radiation. These results are a substantial contribution to the investigation of optical properties of nanoparticles that can be used in systems of thermal energy.

Received: 26.03.2018
Revised: 26.10.2018
Accepted: 06.11.2018

DOI: 10.21883/OS.2019.03.47381.88-18


 English version:
Optics and Spectroscopy, 2019, 126:3, 294–302

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