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Updated: Jan 10, 2026

Fabrication and Optimization of Type II Silicon Clathrate Films
Published on: October 14, 2025
Structure of Cl and F Incorporation in Aluminoborosilicate Glass: Sulfate Retention, Salt Formation, and Other
John M Bussey1,2,3, Natalie J Smith-Gray1,4, Nicholas Stone-Weiss1,5
1School of Mechanical and Materials Engineering, Washington State University, Pullman, Washington 99164, United States.
Abstract:
Volatile anions such as chloride (Cl-), fluoride (F-), and sulfate (SO42-) play crucial roles in determining the behavior of silicate melts across geologic, industrial, and nuclear waste vitrification systems. Their incorporation affects the melt structure, phase stability, and processing properties, often through complex interactions with modifying cations. In nuclear waste vitrification specifically, volatiles play a significant role in inducing salt formation, a waste-loading-limiting phenomenon deleterious to melter operations and waste form durability. Here, model Hanford Site Low Activity Waste peralkaline aluminoborosilicate glasses were synthesized with Cl or F additions, alongside fixed SO42- content. These glasses were examined with a combined spectroscopy-microscopy approach that included electron microscopy and dispersive X-ray spectroscopy, Raman spectroscopy, NMR spectroscopy, and X-ray nano-Computed Tomography. Cl incorporation saturated at ∼3 mol %, beyond which excess halide and SO42- partitioned to a NaCl-rich molten salt. This salt formation reduced Na2O and SO42- content in the glass and increased the glass transition temperature (Tg), molar volume, 4-coordinated boron (N4), and network polymerization. By contrast, F was retained up to ∼12 mol % before liquid-liquid phase separation, leading to submicron-scale crystallization of CaF2, and with subsequent F addition, villiaumite (NaF) and cryolite (Na3AlF6). Before phase separation, F addition decreased Tg and increased N4. F had minimal effect on SO42- retention prior to crystallization, although SO42- preferably segregated into F-rich droplets after fluoride saturation.
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