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ZrAC(A = Cd,Sb)相的理论预测与实验合成

Theoretical Prediction and Experimental Synthesis of ZrAC (A = Cd, Sb) Phases.

作者信息

Luo Jia, Zhang Fengjuan, Wen Bo, Zhang Qiqiang, Chu Longsheng, Zhou Yanchun, Feng Qingguo, Hu Chunfeng

机构信息

Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China.

School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450001, China.

出版信息

Materials (Basel). 2024 Mar 28;17(7):1556. doi: 10.3390/ma17071556.

Abstract

MAX phases have great research value and application prospects, but it is challenging to synthesize the MAX phases containing Cd and Sb for the time being. In this paper, we confirmed the existence of the 312 MAX phases of ZrCdC and ZrSbC, both from theoretical calculations and experimental synthesis. The ZrAC (A = Cd, Sb) phase was predicted by the first-principles calculations, and the two MAX phases were confirmed to meet the requests of thermal, thermodynamic, and mechanical stabilities using formation energy, phonon dispersion, and the Born-Huang criteria. Their theoretical mechanical properties were also systematically investigated. It was found that the elastic moduli of ZrCdC and ZrSbC were 162.8 GPa and 164.3 GPa, respectively. Then, differences in the mechanical properties of ZrAC (A = Cd, In, Sn, and Sb) were explained using bond layouts and charge transfers. The low theoretical Vickers hardness of the ZrCdC (5.4 GPa) and ZrSbC (4.3 GPa) phases exhibited excellent machinability. Subsequently, through spark plasma sintering, composites containing ZrCdC and ZrSbC phases were successfully synthesized at the temperatures of 850 °C and 1300 °C, respectively. The optimal molar ratio of Zr:Cd/Sb:C was determined as 3:1.5:1.5. SEM and the EDS results analysis confirmed the typical layered microstructure of ZrCdC and ZrSbC grains.

摘要

MAX相具有很大的研究价值和应用前景,但目前合成含镉和锑的MAX相具有挑战性。在本文中,我们通过理论计算和实验合成证实了ZrCdC和ZrSbC的312 MAX相的存在。通过第一性原理计算预测了ZrAC(A = Cd,Sb)相,并利用形成能、声子色散和Born-Huang准则证实这两种MAX相满足热、热力学和机械稳定性的要求。还系统地研究了它们的理论力学性能。结果发现,ZrCdC和ZrSbC的弹性模量分别为162.8 GPa和164.3 GPa。然后,利用键布局和电荷转移解释了ZrAC(A = Cd,In,Sn和Sb)力学性能的差异。ZrCdC(5.4 GPa)和ZrSbC(4.3 GPa)相较低的理论维氏硬度表现出优异的可加工性。随后,通过放电等离子烧结,分别在850℃和1300℃成功合成了含ZrCdC和ZrSbC相的复合材料。确定Zr:Cd/Sb:C的最佳摩尔比为3:1.5:1.5。扫描电子显微镜(SEM)和能谱(EDS)结果分析证实了ZrCdC和ZrSbC晶粒典型的层状微观结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f75/11012513/c54f7cd8738f/materials-17-01556-g001.jpg

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