Unintuitive alloy strengthening by addition of weaker elements

IF 11.9 1区 材料科学 Q1 CHEMISTRY, PHYSICAL npj Computational Materials Pub Date : 2025-03-27 DOI:10.1038/s41524-025-01576-8
Dharmendra Pant, Dilpuneet S. Aidhy
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Abstract

A positive correlation between strength and elastic modulus is generally observed in metallic alloys, where the addition of a stronger element such as Mo, W, or Cr increases both the strength and elastic modulus. Our density functional theory (DFT) calculations explain an opposite experimentally measured trend, i.e., the addition of a weaker element such as Ti, Hf, or Zr enhances the yield strength in specific high entropy alloys (HEAs). We show that the underlying mechanism is the lower bond stiffness of the weaker element, which causes larger local lattice distortion (LLD). Higher lattice distortion pins the movement of dislocations, causing solid solution strengthening, thereby raising the strength in body-centered cubic (BCC) refractory HEAs. We show this unintuitive behavior in Ti-based HEAs, i.e., TixMoNbTaW, and compare it with the conventional behavior in MoxNbTiV0.3Zr.

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通过添加弱元素来增强合金的不直观性
强度和弹性模量之间的正相关关系通常在金属合金中观察到,其中添加更强的元素,如Mo, W或Cr,可以增加强度和弹性模量。我们的密度泛函理论(DFT)计算解释了相反的实验测量趋势,即添加较弱的元素,如Ti, Hf或Zr,可以提高特定高熵合金(HEAs)的屈服强度。我们发现,潜在的机制是较弱元素的键刚度较低,导致较大的局部晶格畸变(LLD)。较高的晶格畸变抑制位错的移动,引起固溶强化,从而提高体心立方(BCC)难熔HEAs的强度。我们在ti基HEAs(即TixMoNbTaW)中展示了这种不直观的行为,并将其与MoxNbTiV0.3Zr中的常规行为进行了比较。
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来源期刊
npj Computational Materials
npj Computational Materials Mathematics-Modeling and Simulation
CiteScore
15.30
自引率
5.20%
发文量
229
审稿时长
6 weeks
期刊介绍: npj Computational Materials is a high-quality open access journal from Nature Research that publishes research papers applying computational approaches for the design of new materials and enhancing our understanding of existing ones. The journal also welcomes papers on new computational techniques and the refinement of current approaches that support these aims, as well as experimental papers that complement computational findings. Some key features of npj Computational Materials include a 2-year impact factor of 12.241 (2021), article downloads of 1,138,590 (2021), and a fast turnaround time of 11 days from submission to the first editorial decision. The journal is indexed in various databases and services, including Chemical Abstracts Service (ACS), Astrophysics Data System (ADS), Current Contents/Physical, Chemical and Earth Sciences, Journal Citation Reports/Science Edition, SCOPUS, EI Compendex, INSPEC, Google Scholar, SCImago, DOAJ, CNKI, and Science Citation Index Expanded (SCIE), among others.
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