Ebrahimi Mahmoud, Luo Bangcai, Wang Qudong, Attarilar Shokouh
Department of Mechanical Engineering, Faculty of Engineering, University of Maragheh, Maragheh 83111-55181, Iran.
National Engineering Research Center of Light Alloy Net Forming and Key State Laboratory of Metal Matrix Composites, School of Material Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Materials (Basel). 2024 Aug 12;17(16):4004. doi: 10.3390/ma17164004.
This study explored the fascinating field of high-performance nanoscale metallic multilayer composites, focusing on their magnetic, optical, and radiation tolerance properties, as well as their thermal and electrical properties. In general, nanoscale metallic multilayer composites have a wide range of outstanding properties, which differ greatly from those observed in monolithic films. Their exceptional properties are primarily due to the large number of interfaces and nanoscale layer thicknesses. Through a comprehensive review of existing literature and experimental data, this paper highlights the remarkable performance enhancements achieved by the precise control of layer thicknesses and interfaces in these composites. Furthermore, it will discuss the underlying mechanisms responsible for their exceptional properties and provide insights into future research directions in this rapidly evolving field. Many studies have investigated these materials, focusing on their magnetic, mechanical, optical, or radiation-tolerance properties. This paper summarizes the findings in each area, including a description of the general attributes, the adopted synthesis methods, and the most common characterization techniques used. The paper also covers related experimental data, as well as existing and promising applications. The paper also covers other phenomena of interest, such as thermal stability studies, self-propagating reactions, and the progression from nanomultilayers to amorphous and/or crystalline alloys. Finally, the paper discusses challenges and future perspectives relating to nanomaterials. Overall, this paper is a valuable resource for researchers and engineers interested in harnessing the full potential of nanoscale metallic multilayer composites for advanced technological applications.
本研究探索了高性能纳米级金属多层复合材料这一引人入胜的领域,重点关注其磁性能、光学性能、耐辐射性能以及热性能和电性能。一般来说,纳米级金属多层复合材料具有广泛的优异性能,与整体薄膜中观察到的性能有很大差异。它们的卓越性能主要归因于大量的界面和纳米级的层厚度。通过对现有文献和实验数据的全面综述,本文强调了通过精确控制这些复合材料的层厚度和界面所实现的显著性能提升。此外,还将讨论其优异性能背后的潜在机制,并为这个快速发展领域的未来研究方向提供见解。许多研究已经对这些材料进行了调查,重点关注其磁性能、机械性能、光学性能或耐辐射性能。本文总结了每个领域的研究结果,包括一般属性的描述、采用的合成方法以及最常用的表征技术。本文还涵盖了相关的实验数据以及现有的和有前景的应用。本文还涉及其他感兴趣的现象,如热稳定性研究、自蔓延反应以及从纳米多层膜到非晶和/或结晶合金的转变。最后,本文讨论了与纳米材料相关的挑战和未来展望。总体而言,对于有兴趣充分利用纳米级金属多层复合材料的全部潜力以用于先进技术应用的研究人员和工程师来说,本文是一份有价值的资源。