从不可能的配对到功能纳米复合材料:FeTi-Cu作为模型系统

IF 8.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Lukas Schweiger, Daniel Kiener, Michael Burtscher, Erhard Schafler, Gregor Mori, Florian Spieckermann, Jürgen Eckert
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引用次数: 0

摘要

为了开发储能材料,采用高压扭转法制备了FeTi- 25vol % Cu的块体纳米复合材料,以FeTi为储氢功能相,Cu为延展性相,提高了材料的可加工性。尽管使用了这种高延展性的辅助相,但由于应变局部化在较软的Cu中,加工性能仍然具有挑战性。这种行为在室温下最为明显,且不形成纳米复合材料。在高温下,Cu纳米晶对流动应力的应变速率敏感性强,有利于FeTi-Cu纳米复合材料的形成。然而,FeTi的破碎是有限的,因为在250°C温度下产生的大量应变硬化阻碍了控制加工,并且在250°C温度下形成富cu剪切带。只有在最高变形温度550°C时才能达到令人满意的组织均匀性。总的来说,这项研究强调,对于不太可能的材料配对,正如在追求优质功能材料时经常需要的那样,所涉及的相的力学行为及其相互作用仍然是至关重要的,并且必须在控制块状纳米材料的结构均匀性时进行彻底的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

From unlikely pairings to functional nanocomposites: FeTi–Cu as a model system

From unlikely pairings to functional nanocomposites: FeTi–Cu as a model system

In order to develop materials for energy storage, a bulk nanocomposite with a composition of FeTi-25 vol% Cu was prepared by high-pressure torsion, with FeTi as functional phase for hydrogen storage and Cu as ductile phase to improve the processability. Despite the use of such a highly ductile auxiliary phase, the processability remained challenging due to strain localization in the softer Cu. This behavior is most pronounced at room temperature, and no nanocomposites were formed. At elevated temperatures, the strong strain rate sensitivity of the flow stress of the nanocrystalline Cu facilitates the formation of a FeTi–Cu nanocomposite due to a self-reinforcing process. Nevertheless, fragmentation of FeTi is limited because the resulting massive strain hardening prevents controlled processing at temperatures <250 °C, and Cu-rich shear bands develop at temperatures >250 °C. Satisfactory microstructural homogeneity is only achieved at the highest deformation temperatures of 550 °C. Overall, this study highlights that for unlikely material pairings, as often required in the pursuit of superior functional materials, the mechanical behavior of the phases involved and their interplay remains critical and must be thoroughly investigated when aiming for controlled structural homogeneity of bulk nanomaterials.

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来源期刊
Materials Today Advances
Materials Today Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
14.30
自引率
2.00%
发文量
116
审稿时长
32 days
期刊介绍: Materials Today Advances is a multi-disciplinary, open access journal that aims to connect different communities within materials science. It covers all aspects of materials science and related disciplines, including fundamental and applied research. The focus is on studies with broad impact that can cross traditional subject boundaries. The journal welcomes the submissions of articles at the forefront of materials science, advancing the field. It is part of the Materials Today family and offers authors rigorous peer review, rapid decisions, and high visibility.
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