Basic concepts of grain-boundary structure and phase behavior: From theory and experiments to material properties.

IF 5.7 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Mrs Bulletin Pub Date : 2026-01-01 Epub Date: 2026-02-23 DOI:10.1557/s43577-025-01040-4
Shen Dillon, Gerhard Dehm
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引用次数: 0

Abstract

Abstract: Understanding and controlling structure-processing-properties-performance relationships form the central pillar of materials science and engineering. Formation of phases and evolution of material imperfections (defects) provides the two primary features of a system that enables control of these relationships. Although the impact of imperfections such as dislocations or grain boundaries on material properties has been explored quite deeply, little is known about the thermodynamic phases of the defects themselves. In recent decades, a growing appreciation for the occurrence of phase transformations of surfaces and grain boundaries has emerged. This concept of grain-boundary phase transformation and its impact on properties is at the core of this issue and introductory article. The thermodynamic fundamentals will be explained, experimental and theoretical tools to uncover grain-boundary phases and related property changes are discussed and applied to different material systems. In addition, we also want to look beyond and introduce the readers to novel findings on phase transformations of other defects, such as dislocations. In several cases, phase transformations of defects have been demonstrated to dramatically affect their properties and in turn, the overall properties of the bulk materials containing them. The additional ability to control materials properties and performance by tailoring both defect distributions and their thermodynamic phase state motivate ongoing theoretical, computational, and experimental efforts to understand and control defect phase behavior.

Graphical abstract: Grain boundary with two different phases. Properties like grain growth, conductivity, strength and fracture as well as thermal transport are impacted by grain boundary phases. Schematic created by Pankti Mehta (MPI SusMat) based on a TEM image of Lena Langenohl and atomistic grain boundary structures obtained by atomistic simulations by Tobias Brink (ref.16).

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晶界结构和相行为的基本概念:从理论和实验到材料性能。
摘要:理解和控制结构-加工-性能-性能之间的关系是材料科学与工程的核心支柱。相的形成和材料缺陷(缺陷)的演变提供了能够控制这些关系的系统的两个主要特征。虽然诸如位错或晶界等缺陷对材料性能的影响已经被深入探讨,但对缺陷本身的热力学相知之甚少。近几十年来,越来越多的人认识到表面和晶界相变的发生。晶界相变的概念及其对性能的影响是本期和介绍性文章的核心。热力学基础将被解释,实验和理论工具来揭示晶界相和相关的性质变化进行了讨论,并应用于不同的材料系统。此外,我们还希望超越并向读者介绍其他缺陷(如位错)相变的新发现。在一些情况下,已经证明缺陷的相变会极大地影响它们的性能,进而影响含有它们的大块材料的整体性能。通过剪裁缺陷分布及其热力学相状态来控制材料特性和性能的额外能力激发了正在进行的理论、计算和实验工作,以理解和控制缺陷相行为。图形文摘:两种不同相的晶界。晶界相对晶粒生长、电导率、强度、断裂以及热输运等性能都有影响。由Pankti Mehta (MPI SusMat)基于Lena langenhl的TEM图像和Tobias Brink(参考文献16)通过原子模拟获得的原子晶界结构创建的示意图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mrs Bulletin
Mrs Bulletin 工程技术-材料科学:综合
CiteScore
7.40
自引率
2.00%
发文量
193
审稿时长
4-8 weeks
期刊介绍: MRS Bulletin is one of the most widely recognized and highly respected publications in advanced materials research. Each month, the Bulletin provides a comprehensive overview of a specific materials theme, along with industry and policy developments, and MRS and materials-community news and events. Written by leading experts, the overview articles are useful references for specialists, but are also presented at a level understandable to a broad scientific audience.
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