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通过晶体的基本构建块来定制拓扑密排相的塑性。

Tailoring the Plasticity of Topologically Close-Packed Phases via the Crystals' Fundamental Building Blocks.

机构信息

Institute for Physical Metallurgy and Materials Physics, RWTH Aachen University, Kopernikusstraße 14, 52074, Aachen, Germany.

Max-Planck-Institut für Eisenforschung GmbH, Max-Planck-Straße 1, 40237, Düsseldorf, Germany.

出版信息

Adv Mater. 2023 Jun;35(24):e2300586. doi: 10.1002/adma.202300586. Epub 2023 Apr 27.

Abstract

Brittle topologically close-packed precipitates form in many advanced alloys. Due to their complex structures, little is known about their plasticity. Here, a strategy is presented to understand and tailor the deformability of these complex phases by considering the Nb-Co µ-phase as an archetypal material. The plasticity of the Nb-Co µ-phase is controlled by the Laves phase building block that forms parts of its unit cell. It is found that between the bulk C15-NbCo Laves and Nb-Co µ-phases, the interplanar spacing and local stiffness of the Laves phase building block change, leading to a strong reduction in hardness and stiffness, as well as a transition from synchroshear to crystallographic slip. Furthermore, as the composition changes from Nb Co to Nb Co , the Co atoms in the triple layer are substituted such that the triple layer of the Laves phase building block becomes a slab of pure Nb, resulting in inhomogeneous changes in elasticity and a transition from crystallographic slip to a glide-and-shuffle mechanism. These findings open opportunities to purposefully tailor the plasticity of these topologically close-packed phases in the bulk by manipulating the interplanar spacing and local shear modulus of the fundamental crystal building blocks at the atomic scale.

摘要

许多先进合金中都会形成脆性拓扑密排沉淀物。由于其复杂的结构,人们对它们的塑性知之甚少。在这里,我们提出了一种策略,通过考虑 Nb-Co µ 相作为典型材料来理解和调整这些复杂相的可变形性。Nb-Co µ 相的塑性受 Laves 相构建块控制,该构建块构成其单元的一部分。研究发现,在体相 C15-NbCo Laves 和 Nb-Co µ 相之间,Laves 相构建块的层间间距和局部刚度发生变化,导致硬度和刚度大幅降低,同时从同步剪切转变为晶体滑移。此外,随着组成从 NbCo 向 NbCo 变化,三重层中的 Co 原子被取代,使得 Laves 相构建块的三重层变成纯 Nb 的薄片,导致弹性不均匀变化,并从晶体滑移转变为滑移和混排机制。这些发现为通过在原子尺度上操纵基本晶体构建块的层间间距和局部剪切模量来有目的地调整这些拓扑密排相的整体塑性提供了机会。

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