材料科学
极限(数学)
转化(遗传学)
复合材料
热力学
纳米技术
数学分析
物理
数学
生物化学
基因
化学
作者
Guixin Hou,Jiaqi Lu,Yushan Geng,Jun Cheng,Shengyu Zhu,Hui Tan,Jiao Chen,Wenyuan Chen,Juanjuan Chen,William Yi Wang,Weimin Liu,Jun Yang
标识
DOI:10.1002/adfm.202507050
摘要
Abstract Transition metal borides as a kind of novel multifunctional superhard material remain inferior in hardness compared with traditional superhard material. To this end, this study proposes a novel approach to enhance their hardness through a synergistic hard mechanism. The large‐scale superhard WB 4 bulk is synthesized by modulating the boron isomers (β‐B→ T ‐B phase transition) at mild temperature and press conditions using a spark plasma sintering technique. The results show that WB 4 ‐ T B bulk is composed of nanosized WB 4 grains and T ‐B grains with a high density of stacking faults and grain boundary distortions, which exhibits a Vickers microindentation hardness of 63.1 GPa (0.49 N load) that is a 37% enhancement over the conventional WB 4 (≈46.2 GPa), surpassing all reported transition metal borides and approaching the performance of covalent superhard materials. The synergistic effects of fine grain hardening, generation of superhard T ‐B phase, and grain boundary strengthening inhibit dislocation motion and crack extension. This work provides a promising paradigm for designing new materials with both superhard and functional properties.
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