Mechanical Properties of Novel Nanocrystalline Materials

J. Narayan, H. Wang, A. Kvit
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Abstract

We have synthesized nanocrystalline thin films of Cu, Zn, TiN, and WC having uniform grain size in the range of 5 to 100 nm. This was accomplished by introducing a couple of manolayers of materials with high surface and have a weak interaction with the substrate. The hardness measurements of these well-characterized specimens with controlled microstructures show that hardness initially increases with decreasing grain size following the well-known Hall-Petch relationship (H∝d−½). However, there is a critical grain size below which the hardness decreases with decreasing grain size. The experimental evidence for this softening of nanocrystalline materials at very small grain sizes (referred as reverse Hall-Petch effect) is presented for the first time. Most of the plastic deformation in our model is envisioned to be due to a large number of small “sliding events” associated with grain boundary shear or grain boundary sliding. This grain-size dependence of hardness can be used to create functionally gradient materials for improved adhesion and wear among other improved properties.
新型纳米晶材料的力学性能
我们已经合成了Cu、Zn、TiN和WC的纳米晶薄膜,其晶粒尺寸在5 ~ 100 nm范围内均匀。这是通过引入一对具有高表面和与衬底弱相互作用的单分子层材料来实现的。对这些显微组织得到控制且表征良好的试样的硬度测量表明,硬度最初随着晶粒尺寸的减小而增加,遵循著名的Hall-Petch关系(H∝d−½)。然而,存在一个临界晶粒尺寸,硬度随晶粒尺寸的减小而减小。本文首次提出了纳米晶材料在非常小的晶粒尺寸下软化的实验证据(称为反向霍尔-佩奇效应)。在我们的模型中,大多数塑性变形被设想为由于与晶界剪切或晶界滑动相关的大量小“滑动事件”。这种硬度的粒度依赖性可以用来制造功能梯度材料,以改善附着力和磨损等性能。
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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