首页> 外文期刊>Acta Crystallographica, Section B. Structural Science >Symmetry-general ab initio computation of physical properties using quantum software integrated with crystal structure databases: results and perspectives
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Symmetry-general ab initio computation of physical properties using quantum software integrated with crystal structure databases: results and perspectives

机译:使用集成了晶体结构数据库的量子软件对物理性质进行对称性从头计算,其结果和观点

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The timely integration of crystal structure databases, such as CRYSTMET, ICSD etc., with quantum software, like VASP, OresteS, ElectrA etc., allows ab initio cell and structure optimization on existing pure-phase compounds to be performed seamlessly with just a few mouse clicks. Application to the optimization of rough structure models, and possibly new atomic arrangements, is detailed. The ability to reproduce observed cell data can lead to an assessment of the intrinsic plausibility of a structure model, even without a competing model. The accuracy of optimized atom positions is analogous to that from routine powder studies. Recently, the ab initio symmetry-general least-squares extraction of the coefficients of the elastic tensor for pure-phase materials using data from corresponding entries in crystal structure databases was automated. A selection of highly encouraging results is presented, stressing the complementarity of simulation and experiment. Additional physical properties also appear to be computable using existing quantum software under the guidance of an automation scheme designed following the above automation for the elastic tensor. This possibility creates the exciting perspective of mining crystal structure databases for new materials with combinations of physical properties that were never measured before. Crystal structure databases can accordingly be expected to become the cornerstone of materials science research within a very few years, adding immense practical value to the archived structure data. [References: 44]
机译:及时地将晶体结构数据库(例如CRYSTMET,ICSD等)与量子软件(例如VASP,OresteS,ElectrA等)集成在一起,从而可以对现有的纯相化合物进行从头开始的细胞和结构优化,而只需几个步骤就可以无缝进行鼠标点击。详细介绍了其在优化粗糙结构模型以及可能的新原子排列方面的应用。即使没有竞争模型,复制观察到的细胞数据的能力也可以评估结构模型的内在合理性。优化的原子位置的精度类似于常规粉末研究的精度。最近,使用晶体结构数据库中相应条目的数据,从头开始对称性-一般最小二乘提取纯相材料的弹性张量的系数。提出了一系列令人鼓舞的结果,强调了模拟和实验的互补性。在按照上述针对弹性张量的自动化设计的自动化方案的指导下,使用现有的量子软件似乎还可以计算其他物理性质。这种可能性创造了令人兴奋的观点,即可以通过将以前从未测量过的物理特性组合起来的新材料,来挖掘晶体结构数据库。因此,晶体结构数据库有望在短短几年内成为材料科学研究的基石,从而为存档的结构数据增加巨大的实用价值。 [参考:44]

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