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March 17, 2026Advanced Composites and Hybrid Materials0 citationsOpen Access

Material-specific three-dimensional printing of electrostatic chuck components via digital light processing: integration of Al2O3- and BaTiO3-based composites as dual materials for performance optimization

YKYujin KimJPJae-Hyuk ParkJLJongwoo Lim

Key Points

  • The aim is to optimize electrostatic chuck performance through material-specific 3D printing with Al2O3 and BaTiO3 composites.
  • Fabrication of electrostatic chucks using digital light processing (DLP) 3D printing.
  • Dual-material design with Al2O3-resin ink for bodies and BaTiO3-resin ink for dielectric layers.
  • Characterization of rheological properties of both resin inks.
  • Evaluation of dielectric properties of cured composites.
  • Finite element analysis simulations of chucking force based on dielectric properties.
  • ESCs demonstrated high breakdown strength in Al2O3-based bodies.
  • BaTiO3-based dielectric layers exhibited higher dielectric constants than Al2O3 layers.
  • ESCs with BaTiO3 dielectrics consistently outperformed those with Al2O3 dielectrics in terms of performance.
  • Simulation results aligned with experimental findings, confirming the importance of the dielectric constant.

Abstract

Electrostatic chucks (ESCs) are critical components in semiconductor and display manufacturing, providing contact handling of delicate substrates. However, optimizing their performance requires precise control of material properties and structural design, particularly the dielectric layer and ESC body. In this study, we fabricated ESCs using a dual-material design, in which the dielectric layers were printed from BaTiO3-resin inks, while the bodies were printed using Al2O3-resin ink via digital light processing (DLP) three-dimensional printing. The rheological properties of both Al2O3- and BaTiO3-resin inks were systematically characterized to determine their suitability for DLP printing, and the dielectric properties of the corresponding cured composites were evaluated to guide ESC performance optimization. ESC bodies and dielectric layers could be printed using Al2O3-resin ink reliably. The ESC body exhibited high breakdown strength, whereas the dielectric layers exhibited high dielectric constants. The fabricated ESCs exhibited excellent structural fidelity and enabled the reliable integration of internal electrodes via liquid-metal injection. Finite element analysis simulations indicated that the dielectric constant primarily governed the chucking force and was highly localized near the edges of the embedded electrodes. Experimental results confirmed that ESCs with BaTiO3-based dielectrics consistently outperformed those with Al2O3-based dielectrics. This finding is consistent with the simulation results. Overall, the combination of material selection, additive manufacturing, and electrostatic modeling provides a comprehensive and robust strategy for developing next-generation ESCs with tunable performance and complex geometries. These ESCs are suitable for advanced precision handling in the semiconductor and display industries.

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Cite This Study

Kim et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef6ddeb47d591b8c5704https://doi.org/10.1007/s42114-026-01712-y
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