Zhu Zijie, Liu Yiwen, Qin Yuanbin, Gu Fangchao, Zhuang Lei, Yu Hulei, Chu Yanhui
School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510641, China.
State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, 710049, China.
Nat Commun. 2025 May 17;16(1):4587. doi: 10.1038/s41467-025-59914-9.
Developing bioinspired all-ceramics with plastic phases is considered one of the most effective ways to simultaneously achieve enhanced strength and toughness in ceramic materials for high-temperature applications. Here we explore tough and strong bioinspired high-entropy all-ceramics with a contiguous network structure that are able to serve up to 1300 °C. Specifically, we develop the high-entropy all-ceramics, featuring a unique contiguous network distribution of the CrC plastic phase within the predominant high-entropy carbide (HEC) hard phase, through a high-entropy composition-engineering strategy. The resulting materials exhibit impressive fracture initiation toughness of 12.5 ± 1.5 MPa·m and flexural strength of 613 ± 52 MPa at room temperature, as well as ~97% strength retention up to 1300 °C due to their good high-temperature stability, surpassing the performance of most other reported bioinspired ceramics. Further experimental and theoretical investigations demonstrate that the CrC phase can undergo plastic deformation by forming nanoscale shear bands with significant crystal defects, resulting in multiple toughening mechanisms involving crack-bridging of unfractured CrC ligaments and crack deflection in the HEC/CrC all-ceramics. This work successfully develops tough and strong bioinspired high-entropy all-ceramics capable of serving up to 1300 °C, offering an innovative strategy that facilitates further design of bioinspired ceramics applicable at higher temperatures.
开发具有塑性相的仿生全陶瓷材料被认为是在高温应用的陶瓷材料中同时提高强度和韧性的最有效方法之一。在此,我们探索具有连续网络结构的坚韧且强大的仿生高熵全陶瓷材料,其能够在高达1300°C的温度下使用。具体而言,我们通过高熵成分工程策略开发了高熵全陶瓷材料,其在主要的高熵碳化物(HEC)硬质相中具有独特的CrC塑性相连续网络分布。所得材料在室温下表现出令人印象深刻的12.5±1.5MPa·m的断裂起始韧性和613±52MPa的抗弯强度,并且由于其良好的高温稳定性,在高达1300°C时强度保留率约为97%,超过了大多数其他报道的仿生陶瓷的性能。进一步的实验和理论研究表明,CrC相可以通过形成具有大量晶体缺陷的纳米级剪切带来进行塑性变形,从而在HEC/CrC全陶瓷中产生多种增韧机制,包括未断裂的CrC韧带的裂纹桥接和裂纹偏转。这项工作成功开发出了能够在高达1300°C下使用的坚韧且强大的仿生高熵全陶瓷材料,提供了一种创新策略,有助于进一步设计适用于更高温度的仿生陶瓷。