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通过溶质的晶界偏析和纳米团簇实现接近理论强度和变形稳定化。

Near-theoretical strength and deformation stabilization achieved via grain boundary segregation and nano-clustering of solutes.

作者信息

Liu Chang, Rao Jing, Sun Zhongji, Lu Wenjun, Best James P, Li Xuehan, Xia Wenzhen, Gong Yilun, Wei Ye, Zhang Bozhao, Ding Jun, Wu Ge, Ma En

机构信息

Center for Alloy Innovation and Design (CAID), State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, 710049 Xi'an, China.

Max-Planck-Institut für Eisenforschung, Düsseldorf 40237, Germany.

出版信息

Nat Commun. 2024 Oct 28;15(1):9283. doi: 10.1038/s41467-024-53349-4.

Abstract

Grain boundary hardening and precipitation hardening are important mechanisms for enhancing the strength of metals. Here, we show that these two effects can be amplified simultaneously in nanocrystalline compositionally complex alloys (CCAs), leading to near-theoretical strength and large deformability. We develop a model nanograined (TiZrNbHf)Ni alloy via thermodynamic design. The Ni solutes, which has a large negative mixing enthalpy and different electronegativity to Ti, Zr, Nb and Hf, not only produce Ni-enriched local chemical inhomogeneities in the nanograins, but also segregate to grain boundaries. The resultant alloy achieves a 2.5 GPa yield strength, together with work hardening capability and large homogeneous deformability to 65% compressive strain. The local chemical inhomogeneities impede dislocation propagation and encourage dislocation multiplication to promote strain hardening. Meanwhile, Ni segregates to grain boundaries and enhances cohesion, suppressing the grain growth and grain boundary cracking found while deforming the reference TiZrNbHf alloy. Our alloy design strategy thus opens an avenue, via solute decoration at grain boundaries combined with local chemical inhomogeneities inside the grains, towards ultrahigh strength and large plasticity in nanostructured alloys.

摘要

晶界强化和沉淀强化是提高金属强度的重要机制。在此,我们表明,在纳米晶成分复杂合金(CCA)中,这两种效应可同时被放大,从而实现接近理论强度和大变形能力。我们通过热力学设计开发了一种模型纳米晶(TiZrNbHf)Ni合金。Ni溶质与Ti、Zr、Nb和Hf具有很大的负混合焓和不同的电负性,不仅在纳米晶粒中产生富Ni的局部化学不均匀性,还会偏聚到晶界。所得合金的屈服强度达到2.5 GPa,同时具有加工硬化能力和高达65%压缩应变的大均匀变形能力。局部化学不均匀性阻碍位错传播并促进位错增殖以促进应变硬化。同时,Ni偏聚到晶界并增强内聚力,抑制了在变形参考TiZrNbHf合金时出现的晶粒生长和晶界开裂。因此,我们的合金设计策略通过晶界溶质修饰与晶粒内部局部化学不均匀性相结合,为实现纳米结构合金的超高强度和大塑性开辟了一条途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a6fc/11519530/bbc52ffb1f60/41467_2024_53349_Fig1_HTML.jpg

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