晶体结构预测
原子间势
从头算
晶体结构
相图
材料科学
热力学
焓
统计物理学
分子动力学
物理
化学
相(物质)
计算化学
结晶学
量子力学
作者
Ivan A. Kruglov,A. V. Yanilkin,Yana Propad,Arslan Mazitov,Pavel Rachitskii,Artem R. Oganov
标识
DOI:10.1038/s41524-023-01120-6
摘要
Abstract Crystal structure prediction is a central problem of crystallography and materials science, which until mid-2000s was considered intractable. Several methods, based on either energy landscape exploration or, more commonly, global optimization, largely solved this problem and enabled fully non-empirical computational materials discovery. A major shortcoming is that, to avoid expensive calculations of the entropy, crystal structure prediction was done at zero Kelvin, reducing to the search for the global minimum of the enthalpy rather than the free energy. As a consequence, high-temperature phases (especially those which are not quenchable to zero temperature) could be missed. Here we develop an accurate and affordable solution, enabling crystal structure prediction at finite temperatures. Structure relaxation and fully anharmonic free energy calculations are done by molecular dynamics with a forcefield (which can be anything from a parametric forcefield for simpler cases to a trained on-the-fly machine learning interatomic potential), the errors of which are corrected using thermodynamic perturbation theory to yield accurate results with full ab initio accuracy. We illustrate this method by applications to metals (probing the P–T phase diagram of Al and Fe), a refractory covalent solid (WB), an Earth-forming silicate MgSiO 3 (at pressures and temperatures of the Earth’s lower mantle), and ceramic oxide HfO 2 .
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