Σφακιανάκης Αλέξανδρος
ΩτοΡινοΛαρυγγολόγος
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Παρασκευή 9 Μαρτίου 2018

Design and characterization of silicone micromaterials: A systematic study

Publication date: 15 May 2018
Source:Materials & Design, Volume 146
Author(s): Joanna Lewandowska-Łańcucka, Magdalena Staszewska, Michał Szuwarzyński, Szczepan Zapotoczny, Mariusz Kepczynski, Zbigniew Olejniczak, Bogdan Sulikowski, Maria Nowakowska
Silicone micromaterials were synthesized using two surfactant-free methods: the Stöber synthesis or solidification in spontaneously formed emulsions (the Ouzo effect) and their physicochemical properties were evaluated. The effect of the chemical structure of a silicone precursor on the morphology of formed microstructures was considered. For that purpose, various organosilicon compounds containing in their structure T-units and D-units, methyl groups, ethylene linkages, and cyclotetrasiloxane rings were used as silicone precursors. All materials existed as sub-micron sized particles, although they differed considerably in morphology and dispersity (spherical particles with a diameter of about 490 and 740nm, cauliflower-like structures, large rough-surfaced aggregates). The chemical composition of the microstructure surface was examined using XPS. The porosity of silicone materials was assessed on the basis of nitrogen adsorption isotherms. The specific surface area (SBET) varied substantially and ranged from 5 to 379m2/g. For the first time the microelastic modulus of the silicone materials was determined using AFM measurements. We found that the structure of the organic part had a large impact on the microelasticity of the material. The microelastic modulus of the silicone materials (11–33GPa) was significantly lower compared to silica (59GPa).

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