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Enhanced mechanical properties of nanocrystalline boron carbide by nanoporosity and interface phases

机译:通过纳米孔隙度和界面相增强纳米晶碳化硼的机械性能

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Ceramics typically have very high hardness, but low toughness and plasticity. Besides intrinsic brittleness associated with rigid covalent or ionic bonds, porosity and interface phases are the foremost characteristics that lead to their failure at low stress levels in a brittle manner. Here we show that, in contrast to the conventional wisdom that these features are adverse factors in mechanical properties of ceramics, the compression strength, plasticity and toughness of nanocrystalline boron carbide can be noticeably improved by introducing nanoporosity and weak amorphous carbon at grain boundaries. Transmission electron microscopy reveals that the unusual nanosize effect arises from the deformation-induced elimination of nanoporosity mediated by grain boundary sliding with the assistance of the soft grain boundary phases. This study has important implications in developing high-performance ceramics with ultrahigh strength and enhanced plasticity and toughness.. ? 2012 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:陶瓷通常具有很高的硬度,但韧性和可塑性却很低。除了与刚性共价键或离子键相关的固有脆性外,孔隙和界面相是导致其在低应力水平下以脆性方式破坏的最重要特征。在这里,我们表明,与传统观点相反,这些特征是陶瓷机械性能的不利因素,纳米晶碳化硼的抗压强度,可塑性和韧性可以通过在晶粒边界处引入纳米多孔性和弱无定形碳而得到显着改善。透射电子显微镜显示,异常的纳米尺寸效应是由于在软质晶界相的帮助下由晶界滑动介导的形变消除的纳米孔隙引起的。这项研究对于开发具有超高强度,增强的可塑性和韧性的高性能陶瓷具有重要意义。 2012自然出版集团,麦克米伦出版社有限公司的一个部门。版权所有。

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