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Title: A Multi-spectroscopic Investigation of Sulphur Speciation in Silicate Glasses and Slags

Journal Article · · Glass Technology - European Journal of Glass Science and Technology Part A
OSTI ID:1020179

Sulphur K-edge x-ray absorption near-edge structure (XANES), sulphur K{sub {alpha}} and K{sub {beta}} high resolution x-ray emission spectroscopies (XES), electron paramagnetic resonance (EPR) and optical absorption spectroscopies have been used to study the speciation of sulphur in a range of soda-lime-silica glasses and silicate slags. Several inorganic standards with known sulphur oxidation states and structural environments have also been analysed. Results confirm that the average oxidation state of sulphur in glasses decreases, as expected, in the order (colourless>light olive>dark olive>light amber>dark amber). This behaviour is consistent with decreasing S{sup 6+}/{Sigma}S ratio, which has been quantified by linear combination fitting of XES S K{alpha} spectra, and with analysed sulphur contents which exhibit a characteristic relationship with oxygen partial pressure, pO{sub 2}. A combination of S{sup 6+}, S{sup 5+}, S{sup 4+} and more reduced sulphur species has been detected in olive and amber glasses. The S{sup 4+} and S{sup 5+} species are most evident in olive-coloured glasses produced under moderately reducing conditions that coincide with minimum sulphur solubilities. The reduced form of sulphur, present in all reduced glasses, is interpreted as being present as S{sup 2-} on the basis of XANES, XES, EPR and optical measurements. An alternative interpretation of the data is that there is a continuum of less strongly reduced species, primarily S{sup +} and S{sup 2+}; this interpretation has less merit. In this paper we show that the established relationship that describes sulphur redox only in terms of S{sup 6+} and S{sup 2-}, and which states that only these two species co-exist over a narrow, moderately reducing range of pO{sub 2}, does not fully describe the behaviour of S in the industrial, non-equilibrated glasses studied. Hence this relationship requires slight modification for non-equilibrated systems to explain the existence of intermediate sulphur oxidation states such as S{sup 4+} and S{sup 5+}, particularly within the intermediate pO{sub 2} range that corresponds with sulphur solubility minima.

Research Organization:
Brookhaven National Lab. (BNL), Upton, NY (United States). National Synchrotron Light Source
Sponsoring Organization:
DOE - OFFICE OF SCIENCE
DOE Contract Number:
DE-AC02-98CH10886
OSTI ID:
1020179
Report Number(s):
BNL-96029-2011-JA; TRN: US201116%%159
Journal Information:
Glass Technology - European Journal of Glass Science and Technology Part A, Vol. 51, Issue 2; ISSN 1753-3546
Country of Publication:
United States
Language:
English