Additively Manufactured Geopolymer Monoliths as Robust Supports for High Temperature Catalytic Reactions
Rafael Vidal Eleutério1, Lisandro Simão2, Maíra Palm3
1Graduate Program in Materials Science and Engineering (PGMAT), Federal University of Santa Catarina (UFSC), 88040-900 Florianópolis, Santa Catarina, Brazil.
Abstract:
Additively manufactured geopolymers are emerging as a versatile class of structured materials combining thermal and mechanical resilience for application in extreme environments. In this work, porous geopolymer monoliths were fabricated by material extrusion (MEX) using tailored metakaolin-based pastes, and printability was quantitatively assessed through a rheological protocol that links precursor attributes to processing behavior. The resulting 3D-printed structures (70% porosity, 30 m2/g) retained mechanical integrity after calcination at 800 °C, in contrast to conventionally cast counterparts that suffered severe strength loss. Upon Ni impregnation, temperature-programmed reduction (TPR-H2) evidenced strong metal-support interactions and the formation of stable nickel aluminosilicate phases, highlighting the role of the alkali rich geopolymer matrix in interfacial stabilization. As a proof of concept, methane steam reforming (MSR) was used to validate functionality under high temperature conditions (800-900 °C). Ni-geopolymer catalysts exhibited stable performance without deactivation over 2 h. These results position 3D-printed geopolymers as thermally stable, interface-engineered supports for high temperature catalytic technologies beyond the specific MSR case study.
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