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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Large-Scale Phonon Calculations Using the Real-Space Multigrid Method
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Large-Scale Phonon Calculations Using the Real-Space Multigrid Method

机译:使用真实空间多重资源资源方法进行大规模声子计算

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摘要

Phonons are fundamental to understanding the dynamical and thermal properties of materials. However, first-principles phonon calculations are usually limited to moderate-size systems due to their high computational requirements. We implemented the finite displacement method (FDM) in the highly parallel real-space multigrid (RMG) suite of codes to study phonon properties. RMG scales from desktops to clusters and supercomputers containing thousands of nodes, fully supports graphics processing units (GPUs), including multiple GPUs per node, and is very suitable for large-scale electronic structure calculations. It is used as the core computational kernel to calculate the force constants matrix with FDM. By comparing with other widely used density functional theory packages and experimental data from inelastic neutron scattering, we demonstrate that RMG is very accurate in calculating forces at small displacements from equilibrium positions. The calculated phonon band structures and vibrational spectra for a variety of different systems are in very good agreement with plane-wave-based density functional theory codes, Quantum ESPRESSO, CASTEP and VASP, and these results have been validated comparing with inelastic neutron scattering experimental data measured at the VISION spectrometer at the Spallation Neutron Source.
机译:声子是理解材料的动态和热性质的基础。然而,由于其高计算要求,首先原则性计算通常限于中等大小的系统。我们在高度平行的实时空间多基体(RMG)套件中实现了有限位移方法(FDM)以研究声子属性。 RMG从桌面缩放到包含数千个节点的集群和超级计算机,完全支持图形处理单元(GPU),包括每个节点的多个GPU,非常适合大规模电子结构计算。它用作核心计算内核,以计算具有FDM的力常数矩阵。通过与来自非弹性中子散射的其他密度泛函的封装和实验数据进行比较,我们证明RMG在计算均衡位置的小型位移时的力非常准确。各种不同系统的计算的声子带结构和振动光谱与基于平面的密度函数理论代码,量子浓缩咖啡,Castep和VASP非常好,并且这些结果已经验证了与无弹性中子散射实验数据进行了验证的在介体中子源的视觉光谱仪处测量。

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