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Recent Advances and Future Prospects in Spark Plasma Sintered Alumina Hybrid Nanocomposites

机译:等离子烧结氧化铝杂化纳米复合材料的最新进展和未来展望

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摘要

Although ceramics have many advantages when compared to metals in specific applications, they could be more widely applied if their low properties (fracture toughness, strength, and electrical and thermal conductivities) are improved. Reinforcing ceramics by two nano-phases that have different morphologies and/or properties, called the hybrid microstructure design, has been implemented to develop hybrid ceramic nanocomposites with tailored nanostructures, improved mechanical properties, and enhanced functionalities. The use of the novel spark plasma sintering (SPS) process allowed for the sintering of hybrid ceramic nanocomposite materials to maintain high relative density while also preserving the small grain size of the matrix. As a result, hybrid nanocomposite materials that have better mechanical and functional properties than those of either conventional composites or nanocomposites were produced. The development of hybrid ceramic nanocomposites is in its early stage and it is expected to continue attracting the interest of the scientific community. In the present paper, the progress made in the development of alumina hybrid nanocomposites, using spark plasma sintering, and their properties are reviewed. In addition, the current challenges and potential applications are highlighted. Finally, future prospects for developing alumina hybrid nanocomposites that have better performance are set.
机译:尽管在特定应用中与金属相比,陶瓷具有许多优点,但如果改善其低性能(断裂韧性,强度以及电导率和导热率),它们可能会得到更广泛的应用。通过具有不同形态和/或特性的两个纳米相来增强陶瓷的性能,称为混合微结构设计,已被用于开发具有定制纳米结构,改善的机械性能和增强的功能性的混合陶瓷纳米复合材料。使用新颖的火花等离子体烧结(SPS)工艺可以烧结混合陶瓷纳米复合材料,以保持较高的相对密度,同时还保留基体的小晶粒尺寸。结果,产生了比常规复合材料或纳米复合材料具有更好的机械和功能性能的杂化纳米复合材料。杂化陶瓷纳米复合材料的开发尚处于初期阶段,有望继续吸引科学界的兴趣。本文综述了利用火花等离子体烧结法开发氧化铝杂化纳米复合材料的进展及其性能。此外,重点介绍了当前的挑战和潜在的应用。最后,开发具有更好性能的氧化铝杂化纳米复合材料的未来前景被确定。

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