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April 11, 2026Ceramics International1 citationsOpen Access

Partially Water-Soluble Feedstock for Ceramic Vat Photopolymerization Enabling Two-Stage Debinding

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ICItalo Leite de CamargoRCRafael Oliveira da CostaKFKaline Nascimento Ferreira

Key Points

  • The study aims to explore the use of sucrose as an additive to improve the debinding process in ceramic 3D printing.
  • Formulated photosensitive alumina suspensions with up to 20 vol% sucrose.
  • Implemented a two-stage debinding strategy with a water-based removal step.
  • Fabricated 3D printed parts using the developed feedstock.
  • Achieved up to 44 vol% removal of sucrose during the water-based debinding step.
  • Generated porous channels predominantly near the surface of the parts.
  • Reduced defect formation during thermal debinding and enabled tailored final porosity of ceramics.

Abstract

Vat photopolymerization (VPP) is a mature ceramic additive manufacturing technology. However, the large amount of organic material that must be removed during thermal debinding remains a major limitation, particularly in components with thick walls. The thermoset nature of VPP polymers inhibits chemical debinding prior to thermal treatment. In this work, sucrose is investigated as a water-soluble, renewable, and non-toxic additive to enable partial removal of organics before thermal debinding. Photosensitive alumina suspensions containing up to 20 vol% sucrose were formulated and used to fabricate 3D-printed parts, enabling a two-stage debinding strategy. The water-based debinding step removed up to 44 vol% of the added sucrose, generating porous channels predominantly near the surfaces, thereby partially decoupling pore formation from thermal decomposition. This porosity facilitated organic removal during thermal debinding and reduced defect formation. Moreover, the sucrose content provided a means to tailor the final porosity. This approach demonstrates a simple and effective route to facilitate debinding, enable partial decoupling of pore formation from thermal decomposition, and control porosity in VPP-produced ceramics.

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Cite This Study

Camargo et al. (2026) studied this question.

synapsesocial.com/papers/69d9e4d578050d08c1b751d6https://doi.org/10.1016/j.ceramint.2026.04.107
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