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通过可控的缓慢晶格扩散在化学复杂合金中实现热稳定的纳米颗粒。

Achieving thermally stable nanoparticles in chemically complex alloys via controllable sluggish lattice diffusion.

作者信息

Xiao Bo, Luan Junhua, Zhao Shijun, Zhang Lijun, Chen Shiyao, Zhao Yilu, Xu Lianyong, Liu C T, Kai Ji-Jung, Yang Tao

机构信息

Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong, China.

Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China.

出版信息

Nat Commun. 2022 Aug 18;13(1):4870. doi: 10.1038/s41467-022-32620-6.

Abstract

Nanoparticle strengthening provides a crucial basis for developing high-performance structural materials with potentially superb mechanical properties for structural applications. However, the general wisdom often fails to work well due to the poor thermal stability of nanoparticles, and the rapid coarsening of these particles will lead to the accelerated failures of these materials especially at elevated temperatures. Here, we demonstrate a strategy to achieve ultra-stable nanoparticles at 800~1000 °C in a NiCoFeCrAlTiB (at.%) chemically complex alloy, resulting from the controllable sluggish lattice diffusion (SLD) effect. Our diffusion kinetic simulations reveal that the Co element leads to a significant reduction in the interdiffusion coefficients of all the main elements, especially for the Al element, with a maximum of up to 5 orders of magnitude. Utilizing first-principles calculations, we further unveil the incompressibility of Al induced by the increased concentration of Co plays a critical role in controlling the SLD effect. These findings are useful for providing advances in the design of novel structural alloys with extraordinary property-microstructure stability combinations for structural applications.

摘要

纳米颗粒强化为开发具有潜在卓越力学性能的高性能结构材料以用于结构应用提供了关键基础。然而,由于纳米颗粒热稳定性差,一般的方法往往效果不佳,并且这些颗粒的快速粗化将导致这些材料加速失效,尤其是在高温下。在此,我们展示了一种在NiCoFeCrAlTiB(原子百分比)化学复杂合金中于800~1000 °C实现超稳定纳米颗粒的策略,这是由可控的迟缓晶格扩散(SLD)效应导致的。我们的扩散动力学模拟表明,Co元素导致所有主要元素的互扩散系数显著降低,尤其是对于Al元素,最大降低幅度可达5个数量级。利用第一性原理计算,我们进一步揭示了Co浓度增加所诱导的Al的不可压缩性在控制SLD效应中起关键作用。这些发现有助于推动新型结构合金的设计进展,使其具有用于结构应用的非凡性能 - 微观结构稳定性组合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29f7/9388539/39f20dbae886/41467_2022_32620_Fig1_HTML.jpg

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