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在陶瓷颗粒中植入韧性纳米相。

Seeding ductile nanophase in ceramic grains.

作者信息

Zhao Chong, Lu Hao, Wang Haibin, Liu Xuemei, Fang Zhigang Zak, Hou Chao, Song Xiaoyan

机构信息

College of Materials Science and Engineering, Key Laboratory of Advanced Functional Materials, Ministry of Education of China, Beijing University of Technology, Beijing 100124, P. R. China.

Department of Metallurgical Engineering, University of Utah, Salt Lake City, UT 84112, USA.

出版信息

Mater Horiz. 2024 Apr 22;11(8):1908-1922. doi: 10.1039/d3mh02233a.

Abstract

Transgranular brittle fracture is the dominant failure mode of brittle materials, including ceramics and ceramic matrix composites. However, strengthening these materials without sacrificing their toughness has been a big challenge. In this study, an innovative approach is proposed to achieve coordinated strengthening and toughening of ceramics-based composites by introducing specific ductile coherent nanoparticles into ceramic grains. As an example, the WC-Co cemented tungsten carbides were used to demonstrate how this brittle material can achieve ultrahigh strength without losing toughness by seeding metallic nanoparticles inside WC grains. The mechanisms for inducing the formation and modulating the amount, size, and distribution of such nanophase within the ceramic grains were disclosed. The fraction of transgranular ruptures of the brittle ceramic phase was reduced significantly due to the presence of the ductile coherent in-grain nanoparticles. Both the strength and strain limit of the cemented carbides were remarkably increased compared to their counterparts reported in the literature. The coordinated strengthening and toughening strategy proposed in this work is applicable to a broad range of ceramics and ceramic matrix composites to obtain superior comprehensive mechanical properties.

摘要

穿晶脆性断裂是包括陶瓷和陶瓷基复合材料在内的脆性材料的主要失效模式。然而,在不牺牲其韧性的情况下强化这些材料一直是一个巨大的挑战。在本研究中,提出了一种创新方法,通过在陶瓷晶粒中引入特定的韧性相干纳米颗粒来实现陶瓷基复合材料的协同强化和增韧。例如,以WC-Co硬质合金为例,展示了这种脆性材料如何通过在WC晶粒内部植入金属纳米颗粒来在不损失韧性的情况下实现超高强度。揭示了诱导这种纳米相在陶瓷晶粒内形成并调节其数量、尺寸和分布的机制。由于韧性相干的晶粒内纳米颗粒的存在,脆性陶瓷相的穿晶断裂比例显著降低。与文献报道的同类材料相比,硬质合金的强度和应变极限均显著提高。本工作中提出的协同强化和增韧策略适用于广泛的陶瓷和陶瓷基复合材料,以获得优异的综合力学性能。

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