Synergistic hardening and toughening of diamond through stacking-fault engineering

Abstract Pre-oriented stacking-fault networks are programmed into polycrystalline diamond through precursor inheritance from elongated graphite flakes, producing a brick-wall architecture composed of high-aspect-ratio lamellae and dense fault bundles. This defect architecture preserves ultrahigh hardness while increasing crack resistance and oxidation stability in air. The optimized sample exhibits a Knoop hardness of 140.1 ± 3.0 GPa, an indentation fracture toughness of 16.9 ± 4.2 MPa·m1/2, and an oxidation-onset temperature of 1295 K. Correlative post-fracture high-resolution transmission electron microscopy (HRTEM), high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM), and electron energy-loss spectroscopy (EELS) analyses reveal a confined multiphase bridge near fracture origins, comprising strained cubic diamond, disordered stacking-fault-rich regions, and localized sp2-rich domains, consistent with stress-assisted local reconstruction. At larger length scales, the aligned stacking-fault architecture biases intragranular crack propagation and promotes crack deflection and crystalline bridging, thereby increasing crack-path tortuosity. These results suggest defect architecture engineering as an effective route to mitigating the hardness–toughness trade-off in diamond and point to a broader design strategy for damage-tolerant superhard covalent solids.

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Publication Details

Journal
National Science Review
Published
2026-08-25
DOI
https://doi.org/10.1093/nsr/nwag546
Primary Topic
Diamond and Carbon-based Materials Research
Type
article
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Synergistic hardening and toughening of diamond through stacking-fault engineering

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Synergistic hardening and toughening of diamond through stacking-fault engineering

Xinglin Wang, Hetian Liu, Cun You, Yue Yu, Quan Li, Yutong Hou, Xiaoci Ma, Qiang Tao, Min Lian, Yanming Ma, Tian Cui, Lu Wang, Pinwen Zhu
article en

Abstract

Abstract Pre-oriented stacking-fault networks are programmed into polycrystalline diamond through precursor inheritance from elongated graphite flakes, producing a brick-wall architecture composed of high-aspect-ratio lamellae and dense fault bundles. This defect architecture preserves ultrahigh hardness while increasing crack resistance and oxidation stability in air. The optimized sample exhibits a Knoop hardness of 140.1 ± 3.0 GPa, an indentation fracture toughness of 16.9 ± 4.2 MPa·m1/2, and an oxidation-onset temperature of 1295 K. Correlative post-fracture high-resolution transmission electron microscopy (HRTEM), high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM), and electron energy-loss spectroscopy (EELS) analyses reveal a confined multiphase bridge near fracture origins, comprising strained cubic diamond, disordered stacking-fault-rich regions, and localized sp2-rich domains, consistent with stress-assisted local reconstruction. At larger length scales, the aligned stacking-fault architecture biases intragranular crack propagation and promotes crack deflection and crystalline bridging, thereby increasing crack-path tortuosity. These results suggest defect architecture engineering as an effective route to mitigating the hardness–toughness trade-off in diamond and point to a broader design strategy for damage-tolerant superhard covalent solids.

National Science Review
Ningbo University (CN), Ningbo University of Technology (CN), Zhejiang University of Science and Technology (CN), Jilin University (CN), Jilin International Studies University (CN), Zhejiang University (CN)
Openalex Percentile: Top 22%
Diamond and Carbon-based Materials Research
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