• Acta Physica Sinica
  • Vol. 69, Issue 4, 043102-1 (2020)
Jun Li1、3, Li-Sheng Liu2、3, Shuang Xu1、3、*, and Jin-Yong Zhang2
Author Affiliations
  • 1Hubei Key Laboratory of Theory and Application of Advanced Materials Mechanics, Wuhan University of Technology, Wuhan 430070, China
  • 2State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China
  • 3Institute of Advanced Material Manufacturing Equipment and Technology, Wuhan University of Technology, Wuhan 430070, China
  • show less
    DOI: 10.7498/aps.69.20191194 Cite this Article
    Jun Li, Li-Sheng Liu, Shuang Xu, Jin-Yong Zhang. Mechanical, electronic properties and deformation mechanisms of Ti3B4 under uniaxial compressions: a first-principles calculation [J]. Acta Physica Sinica, 2020, 69(4): 043102-1 Copy Citation Text show less

    Abstract

    As an important Ti-B component, Ti3B4 has been widely used in industry and military applications. However, its deformation behaviors are not clear, which greatly limits its applications. First-principles methods based on density function theory were employed to investigate the mechanical, electronic properties and deformation mechanisms of Ti3B4 under uniaxial compressions along different axis. The results show that the structure underwent a massive change under different axial compressions. Strong anisotropic of deformation behaviors in Ti3B4 was observed. The compressive strength along b-axis is the highest in Ti3B4 structure. Under a-axis compression, the interaction between intralayer Ti—Ti bonds becomes weaker as the compressive strain increases, causing the partly damage of Ti3B4. However, in this process, the structure is not destroyed and can sustain the stress continuously. After that, the interlayer Ti—Ti bonds and the intralyer B—B bonds which are along b-axis, are broken and then it causes the sudden drop in stress, implying that the Ti3B4 structure is fully destroyed. Under b-axis compression, the changes of Ti—B bonds in Ti3B4 structure lead to the decrease of stress. Similarly, the structure can sustain the stress continuously in the process. Then, the B—B bonds which are along b-axis are broken, resulting in the sudden drop in stress. Under c-axis compression, the formation of interlayer Ti—B bonds and the breakage of intralayer Ti—B bonds result in structural instability of Ti3B4. Meanwhile, the deformed Ti3B4 still exhibits a metallic feature in the crystalline state after uniaxial compressions. However, there is no noticeable pseudogap in DOS spectra for a-axis and b-axis compressions. While for c-axis compression, there still exists a pseudogap around the Fermi energy, but it moves to the lower energy. And the pseudogap becomes narrower than that of the initial structure, which means that the covalent properties of Ti3B4 are reduced after deformations. The present work provides necessary insights in understanding the mechanical behaviors and deformation mechanisms of Ti3B4, which is the basis for improving the mechanical performance of Ti3B4 at macroscale.
    Jun Li, Li-Sheng Liu, Shuang Xu, Jin-Yong Zhang. Mechanical, electronic properties and deformation mechanisms of Ti3B4 under uniaxial compressions: a first-principles calculation [J]. Acta Physica Sinica, 2020, 69(4): 043102-1
    Download Citation