Overcoming the trade-off between electrical conductivity and densification in Al 2 O 3 –TiC Ceramics via particle size grading

Abstract Electrically conductive composite ceramics face a critical trade-off where increasing the phase domain size ratio between the insulating matrix and the conductive phase theoretically enhances conductivity but practically hinders densification. The resulting porosity inevitably degrades both mechanical and electrical properties. To address this limitation, a matrix particle size grading strategy is proposed using the Al2O3–TiC system as a model. The incorporation of nano-Al2O3 into a micro-Al2O3 matrix triggers a synergistic microstructural evolution. Specifically, nano-Al2O3 particles fill interparticle spaces to promote densification and may pin TiC grain boundaries, thereby contributing to the refinement of the conductive phase domains. Concurrently, the micro-Al2O3 phase domains coarsen at the expense of nano-Al2O3, maximizing the phase domain size disparity and favoring the formation of a continuous three-dimensional TiC network. With 10 vol% nano-Al2O3 addition, the calculated effective percolation threshold drops from 15.54 vol% to 10.20 vol%, achieving an electrical conductivity of 4.02 × 104 S/m. Consequently, the composite exhibits enhanced electrical discharge machining (EDM) performance, achieving a material removal rate of 9.50 mm2/min alongside high surface quality. This strategy offers a robust framework for developing advanced conductive ceramics tailored for EDM applications.

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Publication Details

Journal
Journal of Advanced Ceramics
Published
2026-10-08
DOI
https://doi.org/10.26599/jac.2026.9221390
Primary Topic
Advanced ceramic materials synthesis
Type
article
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article

Overcoming the trade-off between electrical conductivity and densification in Al 2 O 3 –TiC Ceramics via particle size grading

Songlin Ran, Liangliang Liu, Lei Zhao, Zhaoyang Wu et al.
Journal of Advanced Ceramics
Advanced ceramic materials synthesis
article

Overcoming the trade-off between electrical conductivity and densification in Al 2 O 3 –TiC Ceramics via particle size grading

Songlin Ran, Liangliang Liu, Lei Zhao, Zhaoyang Wu, Xiaofeng Jia, Dong Wang, Xing Jin
article en

Abstract

Abstract Electrically conductive composite ceramics face a critical trade-off where increasing the phase domain size ratio between the insulating matrix and the conductive phase theoretically enhances conductivity but practically hinders densification. The resulting porosity inevitably degrades both mechanical and electrical properties. To address this limitation, a matrix particle size grading strategy is proposed using the Al2O3–TiC system as a model. The incorporation of nano-Al2O3 into a micro-Al2O3 matrix triggers a synergistic microstructural evolution. Specifically, nano-Al2O3 particles fill interparticle spaces to promote densification and may pin TiC grain boundaries, thereby contributing to the refinement of the conductive phase domains. Concurrently, the micro-Al2O3 phase domains coarsen at the expense of nano-Al2O3, maximizing the phase domain size disparity and favoring the formation of a continuous three-dimensional TiC network. With 10 vol% nano-Al2O3 addition, the calculated effective percolation threshold drops from 15.54 vol% to 10.20 vol%, achieving an electrical conductivity of 4.02 × 104 S/m. Consequently, the composite exhibits enhanced electrical discharge machining (EDM) performance, achieving a material removal rate of 9.50 mm2/min alongside high surface quality. This strategy offers a robust framework for developing advanced conductive ceramics tailored for EDM applications.

Journal of Advanced Ceramics
Openalex Percentile: Top 25%
Advanced ceramic materials synthesis
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