Multilayer amorphous-crystalline high-entropy metal films

Y. Ivanov, N. Prokopenko, E. Petrikova, V. Shugurov, A. Teresov
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Abstract

High-entropy alloys (HEA) are multi-element materials and contain at least five elements of similar concentration. HEA are, as a rule, single- phase thermodynamically stable substitutional solid solutions, mainly based on a body-centered cubic and face-centered cubic crystal lattice. Solid solution stabilization during the crystallization of a high-entropy alloy is provided by the interaction of a number of factors, namely, a high mixing entropy and low diffusion rate of components, and a low growth rate of crystallites from the melt. The purpose of this work was to obtain new knowledge about the structure and properties of high-entropy films synthesized on a metal substrate during deposition of a multi-element metal plasma in argon atmosphere. The plasma was formed as a result of independent plasma-assisted electric arc cathodes of the following metals: Ti, Al, Cu, Nb, Zr sputtering. As a result of the performed studies, the deposition mode was revealed, which allows the formation of films of various thicknesses of close to equiatomic composition. Transmission electron microscopy methods have established that the films are multilayer formations and have nanoscale amorphous-crystalline structure. Microhardness of the films significantly depends on the ratio of number of the forming elements and varies from 12 to 14 GPa, Young’s modulus – from 230 to 310 GPa. Crystallization of the films was carried out by irradiation with a pulsed electron beam. As a result of processing, a two-phase state is formed. The main phase is α-NbZrTiAl with a volume-centered cubic crystal lattice with a parameter of 0.32344 nm; the second phase of CuZr composition has a simple cubic lattice.
多层非晶高熵金属薄膜
高熵合金(HEA)是一种多元素材料,含有至少5种浓度相近的元素。HEA通常是基于体心立方和面心立方晶格的单相热稳定取代固溶体。高熵合金结晶过程中的固溶体稳定是由多种因素的相互作用提供的,即高混合熵和低组分扩散速率,以及熔体中晶体的低生长速率。本工作的目的是获得在氩气气氛中沉积多元素金属等离子体在金属衬底上合成的高熵薄膜的结构和性能的新知识。等离子体是由以下金属的独立等离子体辅助电弧阴极溅射形成的:Ti, Al, Cu, Nb, Zr。研究结果揭示了沉积模式,该模式允许形成接近等原子组成的各种厚度的薄膜。透射电镜方法证实该薄膜为多层结构,具有纳米级非晶结构。薄膜的显微硬度很大程度上取决于形成元素数量的比例,从12到14 GPa不等,杨氏模量从230到310 GPa不等。用脉冲电子束辐照使薄膜结晶。加工的结果是形成两相态。主要相为α-NbZrTiAl,具有体积中心立方晶格,晶格参数为0.32344 nm;CuZr化合物的第二相具有简单的立方晶格。
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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