Ebrahimi Mahmoud, Luo Bangcai, Wang Qudong, Attarilar Shokouh
Department of Mechanical Engineering, Faculty of Engineering, University of Maragheh, Maragheh 83111-55181, Iran.
Ningbo Major Draft Beer Equipment Co., Ltd., Ningbo 315033, China.
Materials (Basel). 2024 Apr 30;17(9):2124. doi: 10.3390/ma17092124.
Due to their exceptional properties and diverse applications, including to magnetic devices, thermoelectric materials, catalysis, biomedicine, and energy storage, nanoscale metallic multilayer composites (NMMCs) have recently attracted great attention. The alternating layers of two or more metals that make up NMMCs are each just a few nanometers thick. The difficulties in producing and synthesizing new materials can be overcome by using nanoscale multilayer architectures. By adjusting the layer thickness, composition, and interface structure, the mechanical properties of these materials can be controlled. In addition, NMMCs exhibit unusually high strength at thin layer thicknesses because the multilayers have exceptionally high strength, as the individual layer thicknesses are reduced to the nanoscale. The properties of NMMCs depend on the individual layers. This means that the properties can be tuned by varying the layer thickness, composition, and interface structure. Therefore, this review article aims to provide a comprehensive overview of the mechanical properties and the application of high-performance NMMCs. The paper briefly discusses the fabrication methods used to produce these composites and highlights their potential in various fields, such as electronics, energy storage, aerospace, and biomedical engineering. Furthermore, the electrical conductivity, mechanical properties, and thermal stability of the above composite materials are analyzed in detail. The review concludes with a discussion of the future prospects and challenges associated with the development of NMMCs.
由于其优异的性能和多样的应用,包括在磁性器件、热电材料、催化、生物医学和能量存储等方面,纳米级金属多层复合材料(NMMCs)最近引起了极大关注。构成NMMCs的两种或更多种金属的交替层各自仅有几纳米厚。通过使用纳米级多层结构,可以克服生产和合成新材料的困难。通过调整层厚度、组成和界面结构,可以控制这些材料的机械性能。此外,NMMCs在薄层厚度下表现出异常高的强度,因为随着单个层厚度减小到纳米级,多层具有极高的强度。NMMCs的性能取决于各个层。这意味着可以通过改变层厚度、组成和界面结构来调整性能。因此,这篇综述文章旨在全面概述高性能NMMCs的机械性能及其应用。本文简要讨论了用于生产这些复合材料的制造方法,并突出了它们在电子、能量存储、航空航天和生物医学工程等各个领域的潜力。此外,还详细分析了上述复合材料的电导率、机械性能和热稳定性。综述最后讨论了与NMMCs发展相关的未来前景和挑战。