用于先进陶瓷的纳米晶铜材料:功能陶瓷涂层方法综述

Md. Khalid Hossain Shishir, Sabrina Afrin, Md. Mazedul Haque Sachchu, Tanjina Nasrin Eva, Sumaya Tabassum, Shanawaz Ahmed, Sumaiya Islam Sadia, Md. Ashraful Alam
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引用次数: 0

摘要

纳米铜粒子(Cu NPs)因其卓越的物理、化学、机械和抗菌性能而成为先进陶瓷应用的热门候选材料,并引起了广泛关注。本综述广泛分析了当前用于功能陶瓷涂层的结晶 Cu NPs 的合成、表征和利用的最新进展。重点介绍了纳米铜结构的独特属性,包括高表面体积比、可调光学和电子特性以及显著的导热性和导电性。综述深入探讨了各种合成策略,如化学还原、热分解和生物合成,以实现对形状、尺寸和结晶度的适当控制。此外,还对铜纳米材料与陶瓷基质的结合进行了深入研究,揭示了它们在增强机械强度、热稳定性和抗菌活性方面的作用。特别关注了为储能、催化、传感和生物医学领域的应用量身定制的多功能陶瓷涂层的开发。该综述还讨论了面临的挑战和未来展望,包括生产工艺的可扩展性、环境因素以及为下一代先进陶瓷材料开发混合纳米复合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crystalline Copper Nanomaterials for Advanced Ceramic: A Comprehensive Review for Functional Ceramic Coating Approaches
Copper nanoparticles (Cu NPs) are appealing candidates for advanced ceramic applications because of their remarkable physical, chemical, mechanical and antibacterial capabilities which have attracted much interest. This review provides an extensive analysis of the current state-of-the-art synthesis, characterization and utilization of crystalline Cu NPs for functional ceramic coatings. Emphasis is placed on the unique attributes of copper nanostructures, including their high ratio of surface to volume, tunable optical and electronic properties and remarkable thermal and electrical conductivity. The review delves into various synthetic strategies such as chemical reduction, thermal decomposition and biological synthesis in achieving proper control over shape, size and crystallinity. Furthermore, the integration of copper nanomaterials into ceramic matrices is critically examined, unveiling their role in enhancing mechanical strength, thermal stability and antimicrobial activity. Particular attention is given to developing multifunctional ceramic coatings tailored for applications in energy storage, catalysis, sensing and biomedical fields. The review also discusses challenges and future perspectives, including the scalability of production processes, environmental considerations and the development of hybrid nanocomposites for next-generation advanced ceramic materials.
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