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在极细纳米晶金属中维持晶界偏析诱导强化效应

Maintaining Grain Boundary Segregation-Induced Strengthening Effect in Extremely Fine Nanograined Metals.

作者信息

Qian Lei, Zhang Jiacheng, Yang Wenqing, Wang Yunjiang, Chan Kangcheung, Yang Xu-Sheng

机构信息

Department of Industrial and Systems Engineering, Research Institute for Advanced Manufacturing, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong 999077, China.

Hong Kong Polytechnic University Shenzhen Research Institute, Shenzhen 518060, China.

出版信息

Nano Lett. 2025 Apr 2;25(13):5493-5501. doi: 10.1021/acs.nanolett.5c01032. Epub 2025 Mar 23.

Abstract

Reinforcing grain boundaries through solute segregation is a promising strategy to strengthen nanograined metals. However, maintaining strengthening in extremely fine nanograined metals poses challenges due to grain size reduction and grain boundary structural changes from excessive segregation. This study employs hybrid Monte Carlo/Molecular Dynamics simulations to investigate the interplay between solute concentration, grain boundary structure, deformation mechanism, and strength in Zr-segregated nanograined Cu. Results exhibit significant strength enhancement by optimizing segregation, extending the strengthening effect to a grain size as small as 3.75 nm. Continuous Zr segregation induces a progressive transition from original grain boundaries to segregated and ultimately amorphous grain boundaries. Amorphization alters the dominant deformation mechanism from grain boundary migration to homogeneous shear-transformation-zone activation, fostering and optimizing the strengthening effect in extremely fine nanograined Cu. These findings inspire a novel approach of segregation-induced grain boundary amorphization to leverage strong boundaries and extremely fine nanograins for strengthening nanograined metals.

摘要

通过溶质偏析强化晶界是强化纳米晶金属的一种有前景的策略。然而,由于晶粒尺寸减小以及过度偏析导致的晶界结构变化,在极细纳米晶金属中维持强化效果面临挑战。本研究采用混合蒙特卡洛/分子动力学模拟来研究Zr偏析的纳米晶Cu中溶质浓度、晶界结构、变形机制和强度之间的相互作用。结果表明,通过优化偏析可显著提高强度,将强化效果扩展到小至3.75 nm的晶粒尺寸。连续的Zr偏析会导致从原始晶界到偏析晶界并最终到非晶晶界的逐步转变。非晶化将主导变形机制从晶界迁移转变为均匀剪切转变区激活,从而促进并优化了极细纳米晶Cu中的强化效果。这些发现启发了一种新的偏析诱导晶界非晶化方法,以利用强边界和极细纳米晶粒来强化纳米晶金属。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45cf/11969652/a3acc762a623/nl5c01032_0001.jpg

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