材料科学
金属间化合物
合金
延展性(地球科学)
脆化
纳米颗粒
位错
加工硬化
变形(气象学)
冶金
复合材料
微观结构
纳米技术
蠕动
作者
Tao Yang,Yilu Zhao,Yang Tong,Zengbao Jiao,Jun Wei,Jixiang Cai,X. D. Han,Da Chen,Alice Hu,Ji‐Jung Kai,K. Lu,Yanfei Liu,C.T. Liu
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2018-11-23
卷期号:362 (6417): 933-937
被引量:1260
标识
DOI:10.1126/science.aas8815
摘要
Alloy design based on single-principal-element systems has approached its limit for performance enhancements. A substantial increase in strength up to gigapascal levels typically causes the premature failure of materials with reduced ductility. Here, we report a strategy to break this trade-off by controllably introducing high-density ductile multicomponent intermetallic nanoparticles (MCINPs) in complex alloy systems. Distinct from the intermetallic-induced embrittlement under conventional wisdom, such MCINP-strengthened alloys exhibit superior strengths of 1.5 gigapascals and ductility as high as 50% in tension at ambient temperature. The plastic instability, a major concern for high-strength materials, can be completely eliminated by generating a distinctive multistage work-hardening behavior, resulting from pronounced dislocation activities and deformation-induced microbands. This MCINP strategy offers a paradigm to develop next-generation materials for structural applications.
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