| Literature DB >> 26979724 |
Šarūnas Meškinis1, Arvydas Čiegis1, Andrius Vasiliauskas1, Kęstutis Šlapikas1, Rimantas Gudaitis1, Iryna Yaremchuk2, Volodymyr Fitio3, Yaroslav Bobitski3,4, Sigitas Tamulevičius1.
Abstract
In the present study, diamond-like carbon films with embedded Ag nanoparticles (DLC:Ag) were deposited by reactive magnetron sputtering. Structure of the films was investigated by Raman scattering spectroscopy. Atomic force microscopy was used to define thickness of DLC:Ag films as well as to study the surface morphology and size distribution of Ag nanoparticles. Optical absorbance and reflectance spectra of the films were studied in the 180-1100-nm range. Air annealing effects on structure and optical properties of the DLC:Ag were investigated. Annealing temperatures were varied in the 180-400 °C range. Changes of size and shape of the Ag nanoclusters took place due to agglomeration. It was found that air annealing of DLC:Ag films can result in graphitization following destruction of the DLC matrix. Additional activation of surface-enhanced Raman scattering (SERS) effect in DLC:Ag films can be achieved by properly selecting annealing conditions. Annealing resulted in blueshift as well as significant narrowing of the plasmonic absorbance and reflectance peaks. Moreover, quadrupole surface plasmon resonance peaks appeared. Modeling of absorption spectra of the nanoclusters depending on the shape and surrounding media has been carried out.Entities:
Keywords: Annealing; Diamond-like carbon; Nanocomposite; Silver nanoparticles; Surface plasmon resonance
Year: 2016 PMID: 26979724 PMCID: PMC4792837 DOI: 10.1186/s11671-016-1362-4
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Annealing effects on the DLC:Ag grating step height
Fig. 2Annealing effects on thickness of DLC:Ag films. 0 °C point refers to the initial thickness of the film (before annealing)
Fig. 3AFM images of DLC:Ag films: reference (a), after annealing at 200 °C (b), after annealing at 300 °C (c), and after annealing at 400 °C (d)
Fig. 4Annealing effects on the surface roughness of DLC:Ag films
Fig. 5Raman scattering spectra of DLC:Ag film: reference and after the annealing at different temperatures
Fig. 6Influence of the annealing on optical absorbance (a) and reflectance (b) spectra of the DLC:Ag films
Fig. 7Resonance responses of the silver nanoparticles of elliptical shape (prolate or oblate) in air (a) and in DLC (b)
Fig. 8Resonance responses of the silver nanocluster with different eccentricities (a) and different refractive indices (b) of DLC
Fig. 9Experimental and calculated optical absorbance of DLC film doped by silver nanoparticles after annealing at 140 (a), 200 (b), 300 (c), and 400 °C (d)