Amorphous Intergranular Films Mitigate Radiation Damage in Nanocrystalline Cu-Zr

J. Schuler, Charlette M. Grigorian, C. Barr, B. Boyce, K. Hattar, T. Rupert
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引用次数: 13

Abstract

Nanocrystalline metals are promising radiation tolerant materials due to their large interfacial volume fraction, but irradiation-induced grain growth can eventually degrade any improvement in radiation tolerance. Therefore, methods to limit grain growth and simultaneously improve the radiation tolerance of nanocrystalline metals are needed. Amorphous intergranular films are unique grain boundary structures that are predicted to have improved sink efficiencies due to their increased thickness and amorphous structure, while also improving grain size stability. In this study, ball milled nanocrystalline Cu-Zr alloys are heat treated to either have only ordered grain boundaries or to contain amorphous intergranular films distributed within the grain boundary network, and are then subjected to in situ transmission electron microscopy irradiation and ex situ irradiation. Differences in defect density and grain growth due to grain boundary complexion type are then investigated. When amorphous intergranular films are incorporated within the material, fewer and smaller defect clusters are observed while grain growth is also limited, leading to nanocrystalline alloys with improved radiation tolerance.
非晶晶间膜对Cu-Zr纳米晶辐射损伤的抑制作用
纳米晶金属具有较大的界面体积分数,是一种很有前途的耐辐射材料,但辐照诱导的晶粒生长最终会降低其耐辐射性能。因此,需要在限制晶粒生长的同时提高纳米晶金属的耐辐射能力。非晶晶间膜是一种独特的晶界结构,由于其厚度和非晶结构的增加,预计可以提高吸收效率,同时还可以提高晶粒尺寸的稳定性。在本研究中,对球磨纳米晶Cu-Zr合金进行热处理,使其仅具有有序晶界或包含分布在晶界网络内的非晶态晶间膜,然后进行原位透射电镜辐照和非原位辐照。然后研究了晶界肤色类型对缺陷密度和晶粒生长的影响。当材料中加入非晶间膜时,观察到的缺陷团簇更少、更小,同时晶粒生长也受到限制,导致纳米晶合金具有更好的耐辐射能力。
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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