TY - JOUR
T1 - Densification mechanism and microstructure evolution of large-sized Al2O3/YAG/ZrO2 eutectic ceramics by hot-pressing sintering based on micro-nano eutectic-structured powders
AU - Lu, Baohao
AU - Su, Haijun
AU - Zhao, Di
AU - Jiang, Hao
AU - Yu, Minghui
AU - Wang, Ruotong
AU - Shen, Zhonglin
AU - Zhang, Zhuo
AU - Guo, Min
N1 - Publisher Copyright:
© 2025
PY - 2026/6/10
Y1 - 2026/6/10
N2 - This study resolved the long-standing trade-off between densification and microstructural coarsening in large oxide eutectic ceramics by fabricating bulk Al2O3/YAG/ZrO2 ceramics (120 mm × 10 mm) with an ultra-high density (99.83 %) and retained submicron eutectic structure (spacing 0.408 µm). This achievement was enabled by an integrated innovative approach combining ultrafine micro-nano powders synthesized via laser floating zone melting at 300 µm/s (spacing 0.141 µm), ultrasonic wet sieving for interfacial purification, and low-temperature hot-pressing sintering at 1550 °C (150 °C below conventional temperatures), full densification within 45 min under 60 MPa pressure is enabled through a plasticity-dominated mechanism synergistically assisted by short-range interfacial diffusion. This plasticity-driven process, activated at 1200–1550 °C yielded ultrathin reconnected interfaces (0.7 µm thickness) while avoiding grain coarsening. The sintered ceramics exhibited exceptional properties: Vickers hardness 16.25 ± 0.46 GPa, fracture toughness 4.57 ± 0.81 MPa m1/2, and flexural strength 516.3 ± 34.6 MPa at room temperature, significantly surpassing conventional sintered eutectic counterparts. High-temperature strength was retained at 290.1 ± 33.6 MPa at 1200 °C through suppressed lattice expansion and micro-nano plasticity. Remarkably, after 500 h exposure at 1400 °C, constrained microstructural coarsening (eutectic spacing evolved from 0.408 to 1.097 µm; Al2O3/ZrO2/YAG phases limited to 0.651/0.406/0.434 µm) resulted in enhanced hardness (16.74 ± 0.37 GPa) and serviceable fracture toughness (3.09 ± 0.17 MPa m1/2), demonstrating superior thermal stability via interface pinning effects. This work establishes a scalable plasticity-enabled low-temperature sintering strategy for manufacturing large-sized structural components with high performance in extreme environments.
AB - This study resolved the long-standing trade-off between densification and microstructural coarsening in large oxide eutectic ceramics by fabricating bulk Al2O3/YAG/ZrO2 ceramics (120 mm × 10 mm) with an ultra-high density (99.83 %) and retained submicron eutectic structure (spacing 0.408 µm). This achievement was enabled by an integrated innovative approach combining ultrafine micro-nano powders synthesized via laser floating zone melting at 300 µm/s (spacing 0.141 µm), ultrasonic wet sieving for interfacial purification, and low-temperature hot-pressing sintering at 1550 °C (150 °C below conventional temperatures), full densification within 45 min under 60 MPa pressure is enabled through a plasticity-dominated mechanism synergistically assisted by short-range interfacial diffusion. This plasticity-driven process, activated at 1200–1550 °C yielded ultrathin reconnected interfaces (0.7 µm thickness) while avoiding grain coarsening. The sintered ceramics exhibited exceptional properties: Vickers hardness 16.25 ± 0.46 GPa, fracture toughness 4.57 ± 0.81 MPa m1/2, and flexural strength 516.3 ± 34.6 MPa at room temperature, significantly surpassing conventional sintered eutectic counterparts. High-temperature strength was retained at 290.1 ± 33.6 MPa at 1200 °C through suppressed lattice expansion and micro-nano plasticity. Remarkably, after 500 h exposure at 1400 °C, constrained microstructural coarsening (eutectic spacing evolved from 0.408 to 1.097 µm; Al2O3/ZrO2/YAG phases limited to 0.651/0.406/0.434 µm) resulted in enhanced hardness (16.74 ± 0.37 GPa) and serviceable fracture toughness (3.09 ± 0.17 MPa m1/2), demonstrating superior thermal stability via interface pinning effects. This work establishes a scalable plasticity-enabled low-temperature sintering strategy for manufacturing large-sized structural components with high performance in extreme environments.
KW - AlO/YAG/ZrO
KW - Eutectic microstructure
KW - Hot-pressing sintering
KW - Laser floating zone melting
KW - Thermal stability
UR - https://www.scopus.com/pages/publications/105018673219
U2 - 10.1016/j.jmst.2025.08.032
DO - 10.1016/j.jmst.2025.08.032
M3 - 文章
AN - SCOPUS:105018673219
SN - 1005-0302
VL - 256
SP - 25
EP - 41
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -