材料科学
延展性(地球科学)
叠加断层
位错
电子结构
堆积
合金
结构材料
变形(气象学)
组态熵
凝聚态物理
蠕动
统计物理学
复合材料
化学
物理
有机化学
作者
Pedro P. P. O. Borges,Robert O. Ritchie,Mark Asta
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2024-09-20
卷期号:10 (38): eadp7670-eadp7670
被引量:33
标识
DOI:10.1126/sciadv.adp7670
摘要
Controlling the balance between strength and damage tolerance in high-entropy alloys (HEAs) is central to their application as structural materials. Materials discovery efforts for HEAs are therefore impeded by an incomplete understanding of the chemical factors governing this balance. Through first-principles calculations, this study explores factors governing intrinsic ductility of a crucial subset of HEAs—those with a body-centered cubic (bcc) crystal structure. Analyses of three sets of bcc HEAs comprising nine different compositions reveal that alloy chemistry profoundly influences screw dislocation core structure, dislocation vibrational properties, and intrinsic ductility parameters derived from unstable stacking fault and surface energies. Key features in the electronic structure are identified that correlate with these properties: the fraction of occupied bonding states and bimodality of the d-orbital density of states. The findings enhance the fundamental understanding of the origins of intrinsic ductility and establish an electronic structure–based framework for computationally accelerated materials discovery and design.
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