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Dual-phase eutectic ceramics with improved hardness and toughness via nano-coherent high-entropy oxides

  • Xu Wang
  • , Yujie Zhong
  • , Huadong Li
  • , Ye Yuan
  • , Xiangyu Huang
  • , Cui Zhou
  • , Detian Wan
  • , Yuan Tian
  • , Xingyue Zhai
  • , Jihong Zhu
  • , Zied Moumni
  • , Jian Lu
  • , Weihong Zhang
  • Northwestern Polytechnical University Xian
  • Xi'an Shiyou University
  • Liaoning Academy of Materials
  • CAS - Institute of Metal Research
  • China Testing & Certification International Group Co. Ltd.
  • Institut Polytechnique de Paris
  • City University of Hong Kong

Research output: Contribution to journalArticlepeer-review

Abstract

Alumina-based eutectic ceramics exhibited high high-temperature strength but their intrinsic brittleness constrained broad structural applications. Here, we broke this limitation by introducing high-entropy rare-earth aluminate (REAlO3, RE = Gd0.25Eu0.25Nd0.25Sm0.25) into the Al2O3 matrix via directional solidification. The resulting dual-phase eutectics exhibited a unique architecture where single-crystalline Al2O3 was interlocked with bicrystalline high-entropy REAlO3, forming nanoscale coherent grain boundaries (~57.5 nm) and semi-coherent phase boundaries (lattice misfit <5.1%). The tailored microstructure and orientation relationship enabled a synergistic enhancement of Vickers hardness (19.4 GPa) and fracture toughness (5.5 MPa·m1/2), outperforming all reported binary alumina-based counterparts. The property synergy originated from a cascaded strengthening mechanism that spanned atomic-scale lattice distortion to nanoscale coherent interfaces, coupled with multi-mode toughening via crack deflection, bifurcation, and bridging. Our work establishes a high-entropy eutectic design strategy for engineering ceramics with exceptional mechanical performance under extreme conditions.

Original languageEnglish
Article number7494
JournalNature Communications
Volume17
Issue number1
DOIs
StatePublished - Dec 2026

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