材料科学
钻石
微尺度化学
韧性
石墨
复合材料
堆积
成核
断裂韧性
纳米技术
层错能
限制
损伤容限
制作
叠加断层
联锁
下部结构
偏转(物理)
导电体
微观结构
均质化(气候)
抵抗
异质结
六方晶系
微电子
相(物质)
材料设计
热解炭
薄膜
作者
Xiaoci Ma,Di Wang,Min Lian,Xinglin Wang,Cun You,Yufei Ge,Guiqian Sun,Hetian Liu,Yutong Hou,Qiang Tao,Quan Li,Pinwen Zhu,Tian Cui
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-10-31
卷期号:11 (44): eaea3692-eaea3692
被引量:1
标识
DOI:10.1126/sciadv.aea3692
摘要
The intrinsic trade-off between hardness and toughness presents a long-standing challenge for diamond-based materials, limiting their use in extreme environments. Here, we report a bioinspired strategy to overcome this limitation by engineering graphite precursors with mimosa-like microscale curvature. Under high-pressure and high-temperature conditions (15 gigapascals and 2300 kelvin), these precursors concentrate local stress, promoting nucleation of hexagonal diamond within a cubic diamond matrix and forming cubic-hexagonal heterostructures. The resulting composites exhibit exceptional hardness (169 gigapascals) and toughness (15.7 megapascals multiplied by square root of meter), representing 36 and 104% improvements over single-phase nanopolycrystalline diamond, respectively. This dual enhancement arises from stacking fault interlocking and semi/coherent boundaries that resist deformation, coupled with phase transformation and crack deflection that dissipate fracture energy. Our results demonstrate a microstructural design paradigm for mitigating the property trade-off in superhard materials and offer a scalable strategy for engineering robust diamond-based systems.
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