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The optical properties of the cobalt nanoparticles in the transparent condensed matrices

https://doi.org/10.17586/2220-8054-2015-6-5-628-636

Abstract

The absorption and scattering efficiency factors for cobalt nanoparticles over wavelengths ranging from 400 – 1200 nm were calculated. The maximum values and corresponding radii of the absorption efficiency were shown to be dependent upon the incident light wavelength. The highest scattering factor values in the studied spectral range were between 2.2 and 2.4. If the absorptivity of the matrix increases, absorption of the light by cobalt nanoparticles begins to dominate over scattering process. The obtained results allow us to predict the optical properties for composite materials based on a transparent matrix with cobalt nanoparticles, which is essential for the accurate modeling of such systems’ behavior under laser irradiation. 

About the Authors

M. V. Ananyeva
Kemerovo state University
Russian Federation

Kemerovo, 650043



A. V. Kalenskii
Kemerovo state University
Russian Federation

Kemerovo, 650043



A. A. Zvekov
Institute of Coal Chemistry and Material Science SB RAS
Russian Federation

Kemerovo, 650000



A. P. Nikitin
Institute of Coal Chemistry and Material Science SB RAS
Russian Federation

Kemerovo, 650000



I. Yu. Zykov
Kemerovo state University
Russian Federation

Kemerovo, 650043



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Review

For citations:


Ananyeva M.V., Kalenskii A.V., Zvekov A.A., Nikitin A.P., Zykov I.Yu. The optical properties of the cobalt nanoparticles in the transparent condensed matrices. Nanosystems: Physics, Chemistry, Mathematics. 2015;6(5):628-636. https://doi.org/10.17586/2220-8054-2015-6-5-628-636

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ISSN 2220-8054 (Print)
ISSN 2305-7971 (Online)