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Self-Standing Doughs of SiAlONs Enable Low-Volume Production through Green Machining.

Created on 08 Aug 2026

Authors

Ayse Ay, Gokhan Kula, Burcin Gul, Ceylin Isiklar, Eminenur Saritas, Alpagut Kara, Ozge Akbulut

Published in

ACS omega. Volume 11. Issue 30. Pages 45528-45535. Aug 04, 2026. Epub Jul 23, 2026.

Abstract

SiAlONs are silicon-, aluminum-, oxygen-, and nitrogen-based ceramic alloys used in high-performance applications for their thermal and mechanical properties. Their use requires custom geometries, and near-net shaping is typically carried out at the green state. This study reports the preparation of self-standing SiAlON doughs with a 0.9Y-0.5Sm-0.5Ca composition, produced by hand-mixing in under 2 min. These clay-like doughs overcome the limitations of powder-pressing and slurry-based methods. After hand-shaping or molding, they form green bodies suitable for CNC machining for low-volume production and custom-based design. A single additive, a poly-(ethylene glycol)-grafted random copolymer of acrylic acid and 2-acrylamido-2-methylpropanesulfonic acid, was used at 2 wt % to impart malleability to 72.7 wt % SiAlON suspensions. These doughs exhibited a flexural strength of ∼0.5 MPa, enabling machining without tool wear while maintaining integrity. Machining was performed at room temperature after drying. Mechanical and microstructural properties were compared with those of a wear part made by uniaxial pressing. After gas-pressure sintering, hardness and Vickers toughness values of dough-derived samples (13.48 ± 0.35 GPa, 6.22 ± 0.28 MPa·m1/2) were comparable to the uniaxially pressed samples (14.40 ± 0.39 GPa, 6.40 ± 0.40 MPa·m1/2). The doughs yield ceramics with 19% isotropic shrinkage and 3.24 g·cm-3 density (∼99.99% theoretical) postsintering, enabling efficient fabrication and prototyping of complex shapes.

PMID:
42569125
Bibliographic data and abstract were imported from PubMed on 08 Aug 2026.

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