Liao Wei-Bing, Zhang Hongti, Liu Zhi-Yuan, Li Pei-Feng, Huang Jian-Jun, Yu Chun-Yan, Lu Yang
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China.
Entropy (Basel). 2019 Feb 4;21(2):146. doi: 10.3390/e21020146.
Recently, high-entropy alloy thin films (HEATFs) with nanocrystalline structures and high hardness were developed by magnetron sputtering technique and have exciting potential to make small structure devices and precision instruments with sizes ranging from nanometers to micrometers. However, the strength and deformation mechanisms are still unclear. In this work, nanocrystalline AlCoCrFeNi HEATFs with a thickness of ~4 μm were prepared. The microstructures of the thin films were comprehensively characterized, and the mechanical properties were systematically studied. It was found that the thin film was smooth, with a roughness of less than 5 nm. The chemical composition of the high entropy alloy thin film was homogeneous with a main single face-centered cubic (FCC) structure. Furthermore, it was observed that the hardness and the yield strength of the high-entropy alloy thin film was about three times that of the bulk samples, and the plastic deformation was inhomogeneous. Our results could provide an in-depth understanding of the mechanics and deformation mechanism for future design of nanocrystalline HEATFs with desired properties.
最近,通过磁控溅射技术制备了具有纳米晶体结构和高硬度的高熵合金薄膜(HEATFs),这些薄膜在制造尺寸从纳米到微米的小型结构器件和精密仪器方面具有令人兴奋的潜力。然而,其强度和变形机制仍不清楚。在这项工作中,制备了厚度约为4μm的纳米晶体AlCoCrFeNi HEATFs。对薄膜的微观结构进行了全面表征,并对其力学性能进行了系统研究。结果发现,该薄膜表面光滑,粗糙度小于5nm。高熵合金薄膜的化学成分均匀,主要为单一的面心立方(FCC)结构。此外,观察到高熵合金薄膜的硬度和屈服强度约为块状样品的三倍,且塑性变形不均匀。我们的结果可为未来设计具有所需性能的纳米晶体HEATFs的力学和变形机制提供深入理解。