材料科学
共价键
碳化硼
延展性(地球科学)
碳化物
硼
空位缺陷
极限抗拉强度
无定形固体
氮化硼
变形(气象学)
复合材料
结晶学
化学
蠕动
有机化学
作者
Penghui Li,Jun Li,Qilong Feng,Tianye Jin,Yeqiang Bu,Chong Wang,Kun Luo,Shoucong Ning,Bo Xu,Yihan Zhu,Qi An,Hongtao Wang,Anmin Nie,Yongjun Tian
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-04-09
卷期号:11 (15): eadr4648-eadr4648
被引量:4
标识
DOI:10.1126/sciadv.adr4648
摘要
Ductility is critical for preventing materials catastrophic fracture. However, achieving tensile ductility in covalent materials remains challenging and unexplored because of the strong, directional covalent bonds. Here, we unveiled the remarkable tensile ductility driven by vacancies in boron carbide (B 4 C). Using advanced electron ptychography techniques, we identified the presence of carbon-vacancy-carbon chains with boron vacancies in B 4 C lattice. The fabricated B 4 C beams exhibit a high ductility (~26.8%) at room temperature, a characteristic previously unattained in covalent materials and comparable to metals. In situ high-resolution transmission electron microscopy revealed that the formation of local amorphous regions after B 4 C lattice exceeded its elastic strain limit, causing plastic deformation. Atomistic simulations, using experimentally observed B 4 C models, reveal that the creation of carbon-carbon bonds in chains containing boron vacancies causes localized amorphization and contributes to the plastic deformation. This research highlights the significance of vacancies in facilitating plastic deformation in B 4 C and suggests a potential strategy to improve the ductility of strong covalent materials.
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