August 2026

Journal

Influence of silicon infiltration conditions on microstructure and mechanical properties in binder jet 3D printed SiC

By:
Yoon, Bola ; Groth, Ben; Martinez, Marco C; Aguirre, Trevor G; Elliott, Amelia M; Cramer, Corson L
Journal Name:
Journal of the European Ceramic Society
Page Number:
118228
Volume:
46
Issue Number:
9
Publication Date:
August 26, 2026
View DOI Listing:
https://doi.org/10.1016/j.jeurceramsoc.2026.118228

Abstract

Atmosphere, temperature, and hold time were varied for silicon infiltrated binder jet 3D printed SiC preforms. A two-step infiltration process optimized infiltration. The first step at 1450 °C under vacuum facilitated improved wetting. The second step at elevated temperature in argon advanced infiltration while suppressing vaporization. Variation of the second-step temperature (1550–1750 °C) and hold time revealed that 1550 °C for 1 h in argon following initial vacuum treatment yielded the highest silicon uptake ratio (∼96 %) with minimal residual porosity and strengths of 150–180 MPa. Flexural strength was either stable or improved with elevated temperatures up to 1000°C. In contrast, higher temperatures or extended hold times led to increased silicon vaporization and pores. The optimized process was applied to formulations with extra carbon to enhance SiC content and interconnectedness through reaction bonding, which corresponded to increased flexural strength. These findings provide guidance for silicon infiltration in additively manufactured SiC.