Formation mechanisms of Ti3(Si,Al)C2/Al2O3 composites from Ti3AlC2 and SiO via low-temperature sintering

Bibliographic Details
Title: Formation mechanisms of Ti3(Si,Al)C2/Al2O3 composites from Ti3AlC2 and SiO via low-temperature sintering
Authors: Zhenyu ZHANG, Jun JI, Yingying CHEN, Deli MA, Sique CHEN, Hailing YANG, Guopu SHI, Zhi WANG, Mengyong SUN, Fei CHEN, Shifeng HUANG, Qinggang LI
Source: Journal of Advanced Ceramics, Vol 12, Iss 1, Pp 93-110 (2023)
Publisher Information: Tsinghua University Press, 2023.
Publication Year: 2023
Collection: LCC:Clay industries. Ceramics. Glass
Subject Terms: aluminum oxide (al2o3), current-assisted sintering (cas), silicon monoxide (sio), ti3(si,al)c2, Clay industries. Ceramics. Glass, TP785-869
More Details: Ti3SiC2/Al2O3 composites have attracted attention due to their excellent mechanical and electromagnetic properties, but the high temperatures (≥ 1400 ℃) required for the densification of aluminum oxide (Al2O3) leads to the decomposition of Ti3SiC2. To address this issue, Ti3(SixAl1−x)C2/Al2O3 (x represents the Si content) composites were synthesized for the first time via hot-pressing (HP) sintering and current-assisted sintering (CAS) of mixed Ti3AlC2 and silicon monoxide (SiO) powders at 1300 and 1200 ℃, respectively. Both approaches produced composites with x values greater than 0.9, indicating that the compositions of the prepared composites were similar to those of Ti3SiC2/Al2O3 composites. The synthetic mechanism involved substitution and continuous interdiffusion of Al and Si atoms. The composite prepared by CAS at 1200 ℃ was compacted, whereas the composite prepared by HP had a low density. The low-temperature densification mechanism is attributed to the combined effects of amorphous SiO, liquid Al, and the high heating rates for CAS. The flexural strength and hardness of the composite prepared by CAS were also comparable to those of compacted Ti3SiC2/Al2O3 composites.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2226-4108
2227-8508
Relation: https://www.sciopen.com/article/10.26599/JAC.2023.9220669; https://doaj.org/toc/2226-4108; https://doaj.org/toc/2227-8508
DOI: 10.26599/JAC.2023.9220669
Access URL: https://doaj.org/article/ecb3cdcecb22410ba074f8dfd6795775
Accession Number: edsdoj.b3cdcecb22410ba074f8dfd6795775
Database: Directory of Open Access Journals
More Details
ISSN:22264108
22278508
DOI:10.26599/JAC.2023.9220669
Published in:Journal of Advanced Ceramics
Language:English