JOURNAL ARTICLE

Surface Energy of Sol Gel‐Derived Silicon Oxycarbide Glasses

Aitana TamayoR. Peña-AlonsoJ. RubioRishi RajGian Domenico SorarùJ. L. Oteo

Year: 2011 Journal:   Journal of the American Ceramic Society Vol: 94 (12)Pages: 4523-4533   Publisher: Wiley

Abstract

The surface properties of different SiOC glasses before and after HF etching have been analyzed by means of nitrogen adsorption and inverse gas chromatography ( IGC ) at infinite dilution. R aman and D rift spectroscopies have been also used for structural characterization. The dispersive surface energy (γ s d ), acid–base ( k A / k B ) character and nanorugosity index ( I M ) have been compared with those found for vitreous silica ( VS ) glass. The γ s d value of the SiOC glass is higher than VS (γ s d = 58.8 mJ·m −2 ) and decreases from 151.02 to 104.39 mJ·m −2 with the increase of the carbon content. R aman spectroscopy corroborates the previous results in which the higher ordered graphite is attributed to the higher dispersive surface energy. After HF etching the γ s d values of the SiOC glasses increase up to 200 mJ·m −2 , being these results in accordance with the elimination of silica phase and therefore the presence of a high concentration of carbon mainly as ordered graphite. R aman and D rift spectroscopies suggest that HF etching not only removes silica but poorly ordered graphite and probably β‐SiC nanocrystals as well. The acid–base properties, i.e., the k A / k B ratio, of the analyzed SiOC glasses are very close to those of VS or natural graphites, depending on their free carbon content. In general the acid constant is higher than the base even after HF etching, indicating that the free carbon phase contains surface active acidic groups. Finally, the surface nanorugosity of the SiOC glasses has been found to be dependent also on the graphite order. For VS the surface is completely smooth ( I M = −0.76), and for the SiOC glasses having highly ordered graphite the nanorugosity is similar to graphite‐like materials ( I M values between −11 and −13), reaching an average value close to I M = −6.35 in the case of poorly ordered graphite carbon.

Keywords:
Inverse gas chromatography Graphite Materials science Etching (microfabrication) Carbon fibers Analytical Chemistry (journal) Surface energy Base (topology) Adsorption Phase (matter) Silicon Composite number Chemical engineering Mineralogy Composite material Chemistry Physical chemistry Layer (electronics) Chromatography Organic chemistry Metallurgy

Metrics

26
Cited By
1.17
FWCI (Field Weighted Citation Impact)
50
Refs
0.76
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Adsorption, diffusion, and thermodynamic properties of materials
Physical Sciences →  Chemistry →  Spectroscopy
Glass properties and applications
Physical Sciences →  Materials Science →  Ceramics and Composites
Catalysis and Oxidation Reactions
Physical Sciences →  Chemical Engineering →  Catalysis

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