4.6 Article

Effect of temperature and thermal history on borosilicate glass structure

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PHYSICAL REVIEW B
卷 85, 期 5, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.85.054110

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  1. TGE RMN THC [Fr3050]

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The influence of the temperature and quenching rate on the structure of a borosilicate glass was studied by high-resolution solid-state B-11, Na-23, Si-29 nuclear magnetic resonance (NMR) and high-temperature Raman spectroscopy. Data were obtained for glass in the solid state after annealing and quenching at cooling rates covering four orders of magnitude as well as in the liquid state from Raman experiments and from calorimetry and rheological data. Nuclear magnetic resonance measurements were used to calibrate the Raman spectra in order to quantify the change in boron coordination with temperature. This result can then be used to determine the fictive temperature of the glass directly from the boron coordination. The fictive temperature, heat capacity, and configurational entropy are extracted from calorimetry and viscosity measurements. Changes in the boron coordination account for only 25% of the configurational heat capacity of the liquid. The structural parameters capable of accounting for the remaining quantity are discussed on the basis of structural data, both local (inhomogeneity of the sodium distribution) and medium-range (from NMR parameter distribution). It has thus been shown that, although the B-O-B angular distributions of the boroxol rings (and probably the Si-O-Si distributions) are not affected by temperature, a structural disorder is identified through the angular distributions of the bonds linking borate and silicate groups.

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