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Recent advances in understanding the reinforcing ability and mechanism of carbon nanotubes in ceramic matrix composites

机译:碳纳米管在陶瓷基复合材料中的增强能力及其机理的最新研究进展

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摘要

Since the discovery of carbon nanotubes (CNTs), commonly referred to as ultimate reinforcement, the main purpose for fabricating CNT–ceramic matrix composites has been mainly to improve the fracture toughness and strength of the ceramic matrix materials. However, there have been many studies reporting marginal improvements or even the degradation of mechanical properties. On the other hand, those studies claiming noticeable toughening measured using indentation, which is an indirect/unreliable characterization method, have not demonstrated the responsible mechanisms applicable to the nanoscale, flexible CNTs; instead, those studies proposed those classical methods applicable to microscale fiber/whisker reinforced ceramics without showing any convincing evidence of load transfer to the CNTs. Therefore, the ability of CNTs to directly improve the macroscopic mechanical properties of structural ceramics has been strongly questioned and debated in the last ten years. In order to properly discuss the reinforcing ability (and possible mechanisms) of CNTs in a ceramic host material, there are three fundamental questions to our knowledge at both the nanoscale and macroscale levels that need to be addressed: (1) does the intrinsic load-bearing ability of CNTs change when embedded in a ceramic host matrix?; (2) when there is an intimate atomic-level interface without any chemical reaction with the matrix, could one expect any load transfer to the CNTs along with effective load bearing by them during crack propagation?; and (3) considering their nanometer-scale dimensions, flexibility and radial softness, are the CNTs able to improve the mechanical properties of the host ceramic matrix at the macroscale when individually, intimately and uniformly dispersed? If so, how? Also, what is the effect of CNT concentration in such a defect-free composite system? Here, we briefly review the recent studies addressing the above fundamental questions. In particular, we discuss the new reinforcing mechanism at the nanoscale responsible for unprecedented, simultaneous mechanical improvements and highlight the scalable processing method enabling the fabrication of defect-free CNT-concentered ceramics and CNT-graded composites with unprecedented properties. Finally, possible future directions will be briefly presented.
机译:自发现碳纳米管(CNTs)(通常称为极限增强材料)以来,制造CNT-陶瓷基复合材料的主要目的一直是提高陶瓷基体材料的断裂韧性和强度。但是,已有许多研究报告了机械性能的微小改善甚至下降。另一方面,那些声称使用压痕法(间接/不可靠的表征方法)测得的显着增韧的研究尚未证明适用于纳米级柔性CNT的负责机制。取而代之的是,这些研究提出了适用于微米级纤维/晶须增强陶瓷的那些经典方法,而没有显示任何令人信服的证据表明负载会转移至CNT。因此,近十年来,CNTs直接改善结构陶瓷的宏观力学性能的能力受到了强烈的质疑和争论。为了适当地讨论碳纳米管在陶瓷基质材料中的增强能力(和可能的机理),我们需要在纳米和宏观两个层面上解决三个基本问题:(1)固有载荷-嵌入陶瓷基质时,碳纳米管的承载能力是否改变? (2)当存在紧密的原子级界面而不与基体发生任何化学反应时,人们会期望在裂纹扩展过程中任何载荷转移到CNT以及它们有效承受的载荷吗? (3)考虑到它们的纳米级尺寸,柔韧性和径向柔软性,当它们分别,均匀且均匀地分散时,CNT是否能够在宏观上改善基质陶瓷基体的机械性能?如果是这样,怎么办?另外,在这种无缺陷的复合体系中,CNT浓度有何影响?在这里,我们简要回顾一下针对上述基本问题的最新研究。特别是,我们在纳米级上讨论了新的增强机制,这将带来前所未有的,同时的机械改进,并重点介绍了可扩展的加工方法,该方法可制造出无缺陷的,以CNT为中心的陶瓷和具有前所未有性能的CNT梯度复合材料。最后,将简要介绍可能的未来方向。

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