材料科学
位错
缩进
透射电子显微镜
凝聚态物理
断裂韧性
居里温度
微观结构
铁电性
陶瓷
复合材料
纳米技术
光电子学
电介质
铁磁性
物理
作者
Oliver Preuß,Enrico Bruder,Wenjun Lu,Fangping Zhuo,Christian Minnert,Jiawen Zhang,Jürgen Rödel,Xufei Fang
摘要
Abstract The growing research interest in dislocation‐tuned functionality in ceramics is evident, with the most recent proofs‐of‐concept for enhanced ferroelectric properties, electrical conductivity, and superconductivity via dislocations. In this work, we focus on dislocation‐tuned mechanical properties and demonstrate that, by engineering high dislocation densities (up to 10 14 m −2 ) into KNbO 3 at room temperature, the fracture toughness can be improved by a factor of 2.8. The microstructures, including dislocations and domain walls, are examined by optical microscopy, electron channeling contrast imaging, piezo‐response force microscopy, and transmission electron microscopy methods to shed light on the toughening mechanisms. In addition, high‐temperature (above the Curie temperature of KNbO 3 ) indentation tests were performed to exclude the influence of ferroelastic toughening, such that the origin of the toughening effect is pinpointed to be dislocations.
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