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- W2092942811 abstract "The synthesis and study of optical properties of copper nanoparticles are of great interest since they areapplicable to different areas such as catalysis, lubrication, conductive thin films and nanofluids. Their optical propertiesare governed by the characteristics of the dielectric function of the metal, its size and environment.The study of the dielectric function with radius is carried out through the contribution of free and boundelectrons. The first one is corrected for size using the modification of the damping constant. The second one takes intoconsideration the contribution of the interband transitions from the d-band to the conduction band, considering the larger spacing between electronic energy levels as the particle decreases in size below 2 nm.Taking into account these specific modifications, it was possible to fit the bulk complex dielectric function, andconsequently, determine optical parameters and band energy values such as the coefficient for bound electroncontribution Q bulk = 2 x 10 24 , gap energy E g = 1.95 eV, Fermi energy E F = 2.15 eV and damping constant for bound electrons γ b = 1.15 x 10 14 Hz.The fit of the experimental extinction spectra of the colloidal suspensions obtained by 500 μJ ultrashort pulselaser ablation of solid target in water and acetone, reveals that the nanometric and subnanometric particles have a Cu-Cu 2 O structure due to an oxidation reaction during the fabrication. The results were compared with those obtained by AFM, observing a very good agreement between the two techniques, showing that Optical Extinction Spectroscopy (OES) is a good complementary technique to standard electron microscopy." @default.
- W2092942811 created "2016-06-24" @default.
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- W2092942811 date "2012-10-09" @default.
- W2092942811 modified "2023-10-07" @default.
- W2092942811 title "Plasmonic properties and sizing of core-shell Cu-Cu2O nanoparticles fabricated by femtosecond laser ablation in liquids" @default.
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- W2092942811 doi "https://doi.org/10.1117/12.928670" @default.
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