Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems

Pentacoordinated silicon (SiO5) has long been considered as a possible reactive intermediate in bond-swapping reactions in even ambient pressure viscous flow, diffusion, nucleation and crystallization. In this paper, new results are presented for potassium silicate glasses and for two lithium silica...

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Main Author: Jonathan F. Stebbins
Format: Article
Language:English
Published: Elsevier 2019-03-01
Series:Journal of Non-Crystalline Solids: X
Online Access:http://www.sciencedirect.com/science/article/pii/S2590159119300251
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spelling doaj-d323180f271b4bddb2e02ac968ee6c4a2020-11-24T22:12:25ZengElsevierJournal of Non-Crystalline Solids: X2590-15912019-03-011Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systemsJonathan F. Stebbins0Corresponding author.; Department of Geological Sciences, Stanford University, Stanford, CA, USAPentacoordinated silicon (SiO5) has long been considered as a possible reactive intermediate in bond-swapping reactions in even ambient pressure viscous flow, diffusion, nucleation and crystallization. In this paper, new results are presented for potassium silicate glasses and for two lithium silicates. In the former, SiO5 is readily detectable by 29Si MAS NMR on 29Si-enriched glasses at concentrations as low as about 0.02 mol%; in the latter this species is below detection limits. SiO5 concentrations are higher at higher fictive temperatures, and first increase, then decrease, as K2O is added to SiO2. This pattern in compositional variation resembles those long-known in alkali borate and germanates, although high coordinate species (BO4 and GeO5/GeO6) are orders of magnitude more abundant than in ambient pressure silicates. A simple thermodynamic model, considering only the non-ideal mixing of bridging and non-bridging oxygens, at least qualitatively predicts the shape of the compositional variation of SiO5 in the potassium silicates, and is sensible with respect to known tendencies for clustering and unmixing; such a model also predicts curves of network cation coordination vs. compositon that resemble those known for borates and germanates, suggesting an underlying similarity in the energetics of mixing of anionic species. Keywords: Nuclear magnetic resonance, NMR, Five coordinated silicon, Fictive temperature, Alkali borate glass, Alkali germanate glasshttp://www.sciencedirect.com/science/article/pii/S2590159119300251
collection DOAJ
language English
format Article
sources DOAJ
author Jonathan F. Stebbins
spellingShingle Jonathan F. Stebbins
Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
Journal of Non-Crystalline Solids: X
author_facet Jonathan F. Stebbins
author_sort Jonathan F. Stebbins
title Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
title_short Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
title_full Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
title_fullStr Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
title_full_unstemmed Pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: Temperature and compositional effects and analogies to alkali borate and germanate systems
title_sort pentacoordinated silicon in ambient pressure potassium and lithium silicate glasses: temperature and compositional effects and analogies to alkali borate and germanate systems
publisher Elsevier
series Journal of Non-Crystalline Solids: X
issn 2590-1591
publishDate 2019-03-01
description Pentacoordinated silicon (SiO5) has long been considered as a possible reactive intermediate in bond-swapping reactions in even ambient pressure viscous flow, diffusion, nucleation and crystallization. In this paper, new results are presented for potassium silicate glasses and for two lithium silicates. In the former, SiO5 is readily detectable by 29Si MAS NMR on 29Si-enriched glasses at concentrations as low as about 0.02 mol%; in the latter this species is below detection limits. SiO5 concentrations are higher at higher fictive temperatures, and first increase, then decrease, as K2O is added to SiO2. This pattern in compositional variation resembles those long-known in alkali borate and germanates, although high coordinate species (BO4 and GeO5/GeO6) are orders of magnitude more abundant than in ambient pressure silicates. A simple thermodynamic model, considering only the non-ideal mixing of bridging and non-bridging oxygens, at least qualitatively predicts the shape of the compositional variation of SiO5 in the potassium silicates, and is sensible with respect to known tendencies for clustering and unmixing; such a model also predicts curves of network cation coordination vs. compositon that resemble those known for borates and germanates, suggesting an underlying similarity in the energetics of mixing of anionic species. Keywords: Nuclear magnetic resonance, NMR, Five coordinated silicon, Fictive temperature, Alkali borate glass, Alkali germanate glass
url http://www.sciencedirect.com/science/article/pii/S2590159119300251
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