Lu Y, Sun T, Zhang Ping, Zhang P, Zhang D-B, Wentzcovitch R M
Beijing Computational Science Research Center, Beijing 100193, China.
Key Laboratory of Computational Geodynamics, University of Chinese Academy of Sciences, Beijing 100049, China.
Phys Rev Lett. 2017 Apr 7;118(14):145702. doi: 10.1103/PhysRevLett.118.145702.
Beryllium (Be) is an important material with wide applications ranging from aerospace components to x-ray equipment. Yet a precise understanding of its phase diagram remains elusive. We have investigated the phase stability of Be using a recently developed hybrid free energy computation method that accounts for anharmonic effects by invoking phonon quasiparticles. We find that the hcp → bcc transition occurs near the melting curve at 0<P<11 GPa with a positive Clapeyron slope of 41±4 K/GPa, which is more consistent with recent experimental measurements. This work also demonstrates the validity of this theoretical framework based on the phonon quasiparticle to study the structural stability and phase transitions in strongly anharmonic materials.
铍(Be)是一种重要材料,其应用广泛,涵盖从航空航天部件到X射线设备等领域。然而,对其相图的精确理解仍然难以捉摸。我们使用一种最近开发的混合自由能计算方法研究了铍的相稳定性,该方法通过引入声子准粒子来考虑非谐效应。我们发现,在0<P<11 GPa时,hcp→bcc转变发生在熔点曲线附近,Clapeyron斜率为正,为41±4 K/GPa,这与最近的实验测量结果更为一致。这项工作还证明了基于声子准粒子的这一理论框架在研究强非谐材料的结构稳定性和相变方面的有效性。