College of Physical Science and Technology, Sichuan University, Chengdu, 610064, China.
Phys Chem Chem Phys. 2011 Jan 28;13(4):1669-75. doi: 10.1039/c0cp01206h. Epub 2010 Nov 23.
The phonon instability and thermal equation of state of Mo are extensively investigated using density functional theory. The calculated phonon dispersion curves agree well with experiments. Under compression, we captured a large softening in the transverse acoustic (TA) branches of body-centred cubic Mo. When the pressure is raised to 716 GPa, the frequencies along Γ-N in the TA branches soften to imaginary frequencies, indicating structural instability. For face-centred cubic Mo, the phonon calculations predicted the stability by promoting the frequencies from imaginary to real. Within quasi-harmonic approximation, we predicted the thermal equation of state and some other properties including the thermal expansion coefficient α, product αK(T), heat capacity C(V), entropy S, Grüneisen parameter γ and Debye temperature Θ(D). The melting curves of Mo were also obtained successfully.
采用密度泛函理论对钼的声子不稳定性和热物态方程进行了广泛研究。计算得到的声子色散关系与实验结果吻合较好。在压缩过程中,我们在体心立方钼的横声学(TA)支中捕捉到了较大的软化。当压力升高到 716 GPa 时,TA 支中 Γ-N 方向的频率软化到虚频,表明结构不稳定。对于面心立方钼,声子计算通过将频率从虚数提升到实数来预测其稳定性。在准谐近似下,我们预测了热物态方程和其他一些性质,包括热膨胀系数α、αK(T)的乘积、热容 C(V)、熵 S、格林艾森参数γ和德拜温度Θ(D)。还成功地得到了钼的熔化曲线。