Wang Zhiqiang, Lü Tie-Yu, Wang Hui-Qiong, Feng Yuan Ping, Zheng Jin-Cheng
Department of Physics, and Collaborative Innovation Center for Optoelectronic Semiconductors and Efficient Devices, Xiamen University, Xiamen 361005, China.
Department of Physics, National University of Singapore, Singapore 117542, Singapore.
Phys Chem Chem Phys. 2016 Nov 23;18(46):31424-31430. doi: 10.1039/c6cp06164h.
We have studied the mechanical properties and phonon dispersions of fully hydrogenated borophene (borophane) under strains by first principles calculations. Uniaxial tensile strains along the a- and b-direction, respectively, and biaxial tensile strain have been considered. Our results show that the mechanical properties and phonon stability of borophane are both highly anisotropic. The ultimate tensile strain along the a-direction is only 0.12, but it can be as large as 0.30 along the b-direction. Compared to borophene and other 2D materials (graphene, graphane, silicene, silicane, h-BN, phosphorene and MoS), borophane presents the most remarkable anisotropy in in-plane ultimate strain, which is very important for strain engineering. Furthermore, the phonon dispersions under the three applied strains indicate that borophane can withstand up to 5% and 15% uniaxial tensile strain along the a- and b-direction, respectively, and 9% biaxial tensile strain, indicating that mechanical failure in borophane is likely to originate from phonon instability.
我们通过第一性原理计算研究了完全氢化硼烯(硼烷)在应变下的力学性能和声子色散。分别考虑了沿a方向和b方向的单轴拉伸应变以及双轴拉伸应变。我们的结果表明,硼烷的力学性能和声子稳定性都具有高度各向异性。沿a方向的极限拉伸应变仅为0.12,但沿b方向可高达0.30。与硼烯和其他二维材料(石墨烯、石墨烷、硅烯、硅烷、h-BN、磷烯和MoS)相比,硼烷在面内极限应变方面呈现出最显著的各向异性,这对应变工程非常重要。此外,三种施加应变下的声子色散表明,硼烷分别沿a方向和b方向可承受高达5%和15%的单轴拉伸应变,以及9%的双轴拉伸应变,这表明硼烷中的机械失效可能源于声子不稳定性。