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位错增韧陶瓷。

Dislocation-toughened ceramics.

作者信息

Porz Lukas, Klomp Arne J, Fang Xufei, Li Ning, Yildirim Can, Detlefs Carsten, Bruder Enrico, Höfling Marion, Rheinheimer Wolfgang, Patterson Eric A, Gao Peng, Durst Karsten, Nakamura Atsutomo, Albe Karsten, Simons Hugh, Rödel Jürgen

机构信息

Technical University of Darmstadt, Department of Materials and Earth Science, Darmstadt, Germany.

出版信息

Mater Horiz. 2021 May 1;8(5):1528-1537. doi: 10.1039/d0mh02033h. Epub 2021 Mar 16.

Abstract

Functional and structural ceramics have become irreplaceable in countless high-tech applications. However, their inherent brittleness tremendously limits the application range and, despite extensive research efforts, particularly short cracks are hard to combat. While local plasticity carried by mobile dislocations allows desirable toughness in metals, high bond strength is widely believed to hinder dislocation-based toughening of ceramics. Here, we demonstrate the possibility to induce and engineer a dislocation microstructure in ceramics that improves the crack tip toughness even though such toughening does not occur naturally after conventional processing. With modern microscopy and simulation techniques, we reveal key ingredients for successful engineering of dislocation-based toughness at ambient temperature. For many ceramics a dislocation-based plastic zone is not impossible due to some intrinsic property (e.g. bond strength) but limited by an engineerable quantity, i.e. the dislocation density. The impact of dislocation density is demonstrated in a surface near region and suggested to be transferrable to bulk ceramics. Unexpected potential in improving mechanical performance of ceramics could be realized with novel synthesis strategies.

摘要

功能陶瓷和结构陶瓷在无数高科技应用中已变得不可或缺。然而,它们固有的脆性极大地限制了应用范围,尽管进行了广泛的研究,但特别是短裂纹很难解决。虽然由可移动位错产生的局部塑性使金属具有理想的韧性,但人们普遍认为高结合强度会阻碍陶瓷基于位错的增韧。在此,我们证明了在陶瓷中诱导和设计位错微观结构的可能性,这种结构即使在传统加工后不会自然发生增韧,也能提高裂纹尖端韧性。通过现代显微镜和模拟技术,我们揭示了在室温下成功设计基于位错的韧性的关键要素。对于许多陶瓷来说,基于位错的塑性区并非由于某些固有特性(如结合强度)而不可能存在,而是受一个可设计的量即位错密度的限制。位错密度的影响在表面附近区域得到了证明,并表明可转移到块状陶瓷中。采用新颖的合成策略可以实现改善陶瓷机械性能的意外潜力。

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