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May 12, 2026Journal of the European Ceramic Society0 citationsOpen Access

A barium-free glass-ceramic SOFC sealant composition. Part B: In-situ crystallization study by high-temperature microscopy

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RVRaphaël VoivenelCentre National de la Recherche ScientifiqueRPRenaud PodorÉcole Nationale Supérieure de Chimie de MontpellierJLJoseph LautruÉcole Nationale Supérieure de Chimie de Montpellier

Key Points

  • This research aims to investigate the properties and performance of a barium-free glass-ceramic sealant for solid oxide fuel cells (SOFC).
  • Developed a sealant with optimized composition: 56.9SiO2 – 5.1CaO – 9.0Al2O3 – 9.2B2O3 – 12.6SrO – 2.7K2O – 2.5Na2O – 2.0ZrO2.
  • Used high-temperature microscopy to observe in-situ crystallization at 850°C for 144 hours.
  • Tested sealant with K41 alloy contact for 960 hours at 850°C to assess interface effects.
  • Crystallization volume of 60-65% was observed in the glass, indicating improved mechanical stability.
  • Crystallization growth velocity measured at 17 µm/day during exposure at high temperatures.
  • Formation of a continuous chromium oxide layer at the interface with K41 alloy was noted, affecting an interface area of 2 to 3 µm.

Abstract

Optimized barium-free, of composition 56.9SiO 2 –5.1CaO–9.0Al 2 O 3 –9.2B 2 O 3 –12.6SrO–2.7K 2 O–2.5Na 2 O–2.0ZrO 2 (SCABS), viscous sealants were successfully tested against SOFC electrolytes and interconnect materials for up to 960 h. This glass exhibit glass transition temperature near 678°C, a Littleton temperature close to 845°C, which corresponds to a viscosity of 10 7.6 dPa.s, and a thermal expansion coefficient of 8.0 × 10 -6 °C -1 . Direct observation of surface crystallization by HT-ESEM for 144 h at 850°C shows that multiphase assemblies of crystals are formed, and their growth velocity is of the order of 17 µm/day. When this glass is brought into contact with a K41 alloy for 960 h at 850°C, the interface area affected is of the order of 2 to 3 µm on the glass side. This area consists mainly of a continuous layer of chromium oxide. In addition, 60 to 65% of the glass volume is crystallized. This potentially confers good mechanical properties on the seal at high temperatures and may make it possible to adapt the seal to the stresses applied to the fuel cell.

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Cite This Study

Voivenel et al. (2026) studied this question.

synapsesocial.com/papers/6a02c2b9ce8c8c81e96403ddhttps://doi.org/10.1016/j.jeurceramsoc.2026.118490
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Also Consider

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