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Thickness controlled sol-gel silica films for plasmonic bio-sensing devices
Author(s) -
Cristiana Figus,
Francesco Quochi,
Flavia Artizzu,
Michele Saba,
Daniela Marongiu,
Francesco Floris,
F. Marabelli,
M. Patrini,
Lucia Fornasari,
Paola Pellacani,
Andrea Valsesia,
Andrea Mura,
Giovanni Bongiovanni
Publication year - 2014
Publication title -
aip conference proceedings
Language(s) - English
Resource type - Conference proceedings
eISSN - 1551-7616
pISSN - 0094-243X
DOI - 10.1063/1.4900455
Subject(s) - materials science , plasmon , surface plasmon resonance , layer (electronics) , coating , ellipsometry , nanostructure , nanotechnology , sol gel , fourier transform infrared spectroscopy , optoelectronics , chemical engineering , thin film , nanoparticle , engineering
Plasmonics has recently received considerable interest due to its potentiality in many fields as well as in nanobio-technology applications. In this regard, various strategies are required for modifying the surfaces of plasmonic nanostructures and to control their optical properties in view of interesting application such as bio-sensing, We report a simple method for depositing silica layers of controlled thickness on planar plasmonic structures. Tetraethoxysilane (TEOS) was used as silica precursor. The control of the silica layer thickness was obtained by optimizing the sol-gel method and dip-coating technique, in particular by properly tuning different parameters such as pH, solvent concentration, and withdrawal speed. The resulting films were characterized via atomic force microscopy (AFM), Fourier-transform (FT) spectroscopy, and spectroscopic ellipsometry (SE). Furthermore, by performing the analysis of surface plasmon resonances before and after the coating of the nanostructures, it was observed that the position of the resonance structures could be properly shifted by finely controlling the silica layer thickness. The effect of silica coating was assessed also in view of sensing applications, due to important advantages, such as surface protection of the plasmonic structure

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