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极细纳米晶镍磷合金中力学性能和磁性能的同时增强

Simultaneous Enhancement of Mechanical and Magnetic Properties in Extremely-Fine Nanograined Ni-P Alloys.

作者信息

He Qiongyao, Zhu Wanquan, Fu Xiaoxiao, Zhang Ling, Wu Guilin, Huang Xiaoxu

机构信息

Joint International Laboratory for Light Alloys (Ministry of Education), College of Materials Science and Engineering, Chongqing University, Chongqing, 400044, China.

Department of Mechanical Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark.

出版信息

Nanomaterials (Basel). 2018 Oct 5;8(10):792. doi: 10.3390/nano8100792.

Abstract

Exploring structural effects that influence both the mechanics and magnetism in nanocrystalline materials, particularly extremely-fine nanograined ones with grain sizes down to several nanometers, is of high interest for developing multifunctional materials combining superior mechanical and magnetic performances. We found in this work that electrodeposited extremely-fine nanograined Ni-P alloys exhibit a significant enhancement of magnetization, simultaneously along with an increase in hardness, after low-temperature annealing. The relaxation of non-equilibrium structures, precipitation of the second phase and the segregation of P atoms to grain boundaries (GBs) during annealing have then been sequentially evidenced. By systematically comparing the variations in macroscopic and microstructural investigation results among several Ni-P alloys with different P contents, we suggest that the second phase has little effect on magnetization enhancement, and essentially both the structural relaxation and GB segregation can play important roles in hardening by governing GB stability, and in the improvement of magnetization by enhancing Ni⁻Ni atom exchange interactions.

摘要

探索影响纳米晶材料力学性能和磁性的结构效应,特别是晶粒尺寸低至几纳米的极细纳米晶材料,对于开发兼具优异力学和磁性能的多功能材料具有重要意义。我们在这项工作中发现,电沉积的极细纳米晶Ni-P合金在低温退火后,磁化强度显著增强,同时硬度增加。随后依次证明了退火过程中非平衡结构的弛豫、第二相的析出以及P原子向晶界的偏聚。通过系统比较几种不同P含量的Ni-P合金在宏观和微观结构研究结果上的变化,我们认为第二相对磁化增强的影响很小,并且结构弛豫和晶界偏聚本质上都可以通过控制晶界稳定性在硬化过程中发挥重要作用,并通过增强Ni-Ni原子交换相互作用来改善磁化强度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c62b/6215277/317a5de52b4d/nanomaterials-08-00792-g001.jpg

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