Journal of Inorganic Materials ›› 2026, Vol. 41 ›› Issue (9): 1339-1348.DOI: 10.15541/jim20260026
• RESEARCH LETTER • Previous Articles
ZHOU Yan1,2(
), LIU Qikai2, XIA Aidong2,3, ZHANG Buhao2,4(
), YIN Jie2,3(
), HUANG Zhengren2,3
Received:2026-01-16
Revised:2026-03-04
Published:2026-09-20
Online:2026-03-18
Contact:
ZHANG Buhao, associate professor. E-mail:buhaozhang@hotmail.com;YIN Jie, professor. E-mail:jieyin@mail.sic.ac.cn
About author:ZHOU Yan (2002-), male, Master candidate. E-mail: zyan@hnu.edu.cn
Supported by:CLC Number:
ZHOU Yan, LIU Qikai, XIA Aidong, ZHANG Buhao, YIN Jie, HUANG Zhengren. Polymer-derived ZrB2/(SiC-AlN) Ceramic Composites: Fabrication and Performance[J]. Journal of Inorganic Materials, 2026, 41(9): 1339-1348.
Fig. 3 (a, e, i) Polished surfaces, (b, c, f, g, j, k) fractured surfaces and (d, h, l) SiC grain size distributions of hot-pressed ZrB2/(SiC-AlN) ceramics
| Label | Open porosity/% | Flexural strength/MPa | Fracture toughness/ (MPa·m1/2) |
|---|---|---|---|
| P90A10 | 2.9 | 368±8 | 4.5±0.1 |
| P65A10Z25 | 0.6 | 407±14 | 5.8±0.1 |
| P45A10Z45 | 1.1 | 328±5 | 3.7±0.3 |
Table 1 Properties of the precursor-derived ZrB2/(SiC-AlN) composites
| Label | Open porosity/% | Flexural strength/MPa | Fracture toughness/ (MPa·m1/2) |
|---|---|---|---|
| P90A10 | 2.9 | 368±8 | 4.5±0.1 |
| P65A10Z25 | 0.6 | 407±14 | 5.8±0.1 |
| P45A10Z45 | 1.1 | 328±5 | 3.7±0.3 |
Fig. 7 Oxidation results of the samples at different temperatures (a-c) Phase analyses of oxide layers; (d-f) Variation of unit area mass change with oxidation time
Fig. 8 Surface and macro morphologies (insets) of the samples after oxidation at different temperatures (a-c) P90A10: (a) 800 ℃, (b) 1000 ℃, (c) 1200 ℃; (d-f) P65A10Z25: (d) 800 ℃, (e) 1000 ℃, (f) 1200 ℃; (g-i) P45A10Z45: (g) 800 ℃, (h) 1000 ℃, (i) 1200 ℃
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