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February 2, 2026Journal of the American Ceramic Society0 citations

A Comparative Study of CMC and HPMC Binders for Direct Ink Writing of Ceramics

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FLFlavie LebasFMFrédérine MarieSMSylvain Marinel

Key Points

  • This research aims to compare the effectiveness of CMC and HPMC as binders for ceramic printing via direct ink writing.
  • Investigated sodium carboxymethylcellulose and hydroxypropylmethylcellulose in aqueous alumina suspensions.
  • Assessed the rheological properties and dissolution behavior of both binders.
  • Conducted microstructural and mechanical evaluations of sintered ceramic parts.
  • CMC showed rapid dissolution and better stability in ink formulations compared to HPMC.
  • Parts produced with CMC exhibited higher density, homogeneity, and microhardness than those with HPMC.
  • HPMC resulted in printing inconsistencies due to slower dissolution and lack of electrostatic stabilization.

Abstract

ABSTRACT The selection of binders in ceramic additive manufacturing plays a high role in determining the feasibility and quality of printed components. This study investigates the performance of sodium carboxymethylcellulose (CMC) and hydroxypropylmethylcellulose (HPMC) as bio‐based binders in aqueous alumina suspensions for direct ink writing (DIW). CMC, characterized by its polyelectrolyte nature, demonstrated rapid dissolution, exceptional dispersion stability, and consistent rheological properties, facilitating smooth extrusion and the formation of high‐quality surfaces. These characteristics are critical for DIW, where ink homogeneity and stability directly impact printing resolution and part integrity. HPMC, by contrast, exhibited slow dissolution, thermally induced gelation, and printing inconsistencies, likely due to its lack of electrostatic stabilization. Microstructural and mechanical evaluations of sintered parts confirmed that CMC‐based systems achieved higher density, homogeneity, and microhardness. This study highlights the significance of CMC as a binder, providing a pathway to overcome common challenges in DIW, such as agglomeration, foaming, and poor sintered properties, while enabling the production of high‐performance ceramic components.

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Cite This Study

Lebas et al. (2026) studied this question.

synapsesocial.com/papers/6980ffd6c1c9540dea812b2ahttps://doi.org/10.1111/jace.70565
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