Interfacial effects on diffusion and densification in heterogeneous SiC nanoparticle sintering

Silicon carbide (SiC), as a typical representative of third-generation semiconductor materials, is widely used in the fabrication of high-performance semiconductor devices and advanced ceramics. However, the synergistic regulation mechanism of polytype heterogeneity and size effects on the sintering kinetics of SiC nanoparticles remains unclear. In this study, molecular dynamics simulations were performed to investigate the high-temperature solid-state sintering behavior of SiC nanoparticles with different polytype combinations and asymmetric particle size configurations. Structural identification, diffusion analysis, and atomic displacement vector analysis were further combined to reveal the microscopic densification mechanisms. The results show that the heterointerface in the 3C/6H-SiC system can regulate atomic diffusion pathways, causing atomic migration to preferentially contribute to pore elimination and interfacial densification, thereby improving densification efficiency. The asymmetric heterogeneous sintering models further indicate that the high surface curvature of small particles and the interfacial strain field synergistically induce asymmetric mass transport. In particular, small 3C-SiC particles exhibit higher atomic mobility and accelerate overall shrinkage. This study clarifies the atomistic mechanism by which polytype heterogeneity and size effects regulate the sintering kinetics of SiC nanoparticles, providing theoretical guidance for optimizing the densification process of nanoceramics.

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Publication Details

Journal
Materials & Design
Published
2026-09-05
DOI
https://doi.org/10.1016/j.matdes.2026.116989
Primary Topic
Advanced ceramic materials synthesis
Type
article
Field-Weighted Citation Impact
0.00

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article

Interfacial effects on diffusion and densification in heterogeneous SiC nanoparticle sintering

Laibin Zhao, Jiaqi Tian, Li Sun, Jiangfeng Wang et al.
Materials & Design
Advanced ceramic materials synthesis
article

Interfacial effects on diffusion and densification in heterogeneous SiC nanoparticle sintering

Laibin Zhao, Jiaqi Tian, Li Sun, Jiangfeng Wang, Xianglong Yang, Xuejian Xie, Xiufang Chen, Xiangang Xu, Yan Zhang, Xinglong Wang
article en

Abstract

Silicon carbide (SiC), as a typical representative of third-generation semiconductor materials, is widely used in the fabrication of high-performance semiconductor devices and advanced ceramics. However, the synergistic regulation mechanism of polytype heterogeneity and size effects on the sintering kinetics of SiC nanoparticles remains unclear. In this study, molecular dynamics simulations were performed to investigate the high-temperature solid-state sintering behavior of SiC nanoparticles with different polytype combinations and asymmetric particle size configurations. Structural identification, diffusion analysis, and atomic displacement vector analysis were further combined to reveal the microscopic densification mechanisms. The results show that the heterointerface in the 3C/6H-SiC system can regulate atomic diffusion pathways, causing atomic migration to preferentially contribute to pore elimination and interfacial densification, thereby improving densification efficiency. The asymmetric heterogeneous sintering models further indicate that the high surface curvature of small particles and the interfacial strain field synergistically induce asymmetric mass transport. In particular, small 3C-SiC particles exhibit higher atomic mobility and accelerate overall shrinkage. This study clarifies the atomistic mechanism by which polytype heterogeneity and size effects regulate the sintering kinetics of SiC nanoparticles, providing theoretical guidance for optimizing the densification process of nanoceramics.

Materials & DesignVol. 270
Shandong University (CN)
National Natural Science Foundation of China, Taishan Scholar Foundation of Shandong Province
Openalex Percentile: Top 22%
Advanced ceramic materials synthesis
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Interfacial effects on diffusion and densification in heterogeneous SiC nanoparticle sintering — Laibin Zhao, Jiaqi Tian, et al. · Materials & Design (2026) | TGRS Research Map | TGRS