中国物理B ›› 2025, Vol. 34 ›› Issue (8): 86105-086105.doi: 10.1088/1674-1056/add00c
所属专题: SPECIAL TOPIC — Structures and properties of materials under high pressure
Zhuang Li(李壮), Cun You(由存), Zhihui Li(李志慧), Xuepeng Li(李雪鹏), Guiqian Sun(孙贵乾), Xinglin Wang(王星淋), Qi Jia(贾琪), Qiang Tao(陶强)†, and Pinwen Zhu(朱品文)‡
Zhuang Li(李壮), Cun You(由存), Zhihui Li(李志慧), Xuepeng Li(李雪鹏), Guiqian Sun(孙贵乾), Xinglin Wang(王星淋), Qi Jia(贾琪), Qiang Tao(陶强)†, and Pinwen Zhu(朱品文)‡
摘要: Continuously improving the mechanical properties of ultra-high-temperature ceramics (UHTCs) is a key requirement for their future applications. However, the mechanical properties of conventional UHTCs, HfB$_{2}$ and ZrB$_{2}$, remain unsatisfactory among transition metal light-element (TMLE) compounds. TiB$_{2}$ has superior mechanical properties compared to both HfB$_{2}$ and ZrB$_{2}$, but suffers from inherent brittleness and limited oxidation resistance. In this work, low-content solid-solution strengthening was used to fabricate dense samples of Ti$_{x}$(Hf/Zr)$_{1-x}$B$_{2}$ (THZ) under high pressure and high temperature (HPHT). Compared to pure TiB$_{2}$, Ti$_{0.94}$(Hf/Zr)$_{0.06}$B$_{2}$ exhibits a significant 38.8% increase in oxidation resistance temperature (950 $^\circ$C), while Ti$_{0.91}$(Hf/Zr)$_{0.09}$B$_{2}$ shows a notable 28% enhancement in fracture toughness (5.8 MPa$\cdot$m$^{1/2}$). The synergistic effect of a dual-atom solid-solution results in local internal stress and anomalous lattice contraction. This lattice contraction helps resist oxygen invasion, thereby elevating the oxidation resistance threshold. Additionally, the internal stress induces crack deflection within individual grains, enhancing toughness through energy dissipation. This work provides a new strategy for fabricating robust UHTCs within TMLE systems, demonstrating significant potential for future high-temperature applications.
中图分类号: (Structure of bulk crystals)