Department of Materials Science and Engineering, University of California , Berkeley, California 94720, USA.
Environmental Energy Technologies Division, Lawrence Berkeley National Laboratory , Berkeley, California 94720, USA ; Department of Mechanical, Materials and Aerospace Engineering, Illinois Institute of Technology , Berkeley, Chicago IL 60616, USA.
Sci Data. 2015 Sep 29;2:150053. doi: 10.1038/sdata.2015.53. eCollection 2015.
Piezoelectric materials are used in numerous applications requiring a coupling between electrical fields and mechanical strain. Despite the technological importance of this class of materials, for only a small fraction of all inorganic compounds which display compatible crystallographic symmetry, has piezoelectricity been characterized experimentally or computationally. In this work we employ first-principles calculations based on density functional perturbation theory to compute the piezoelectric tensors for nearly a thousand compounds, thereby increasing the available data for this property by more than an order of magnitude. The results are compared to select experimental data to establish the accuracy of the calculated properties. The details of the calculations are also presented, along with a description of the format of the database developed to make these computational results publicly available. In addition, the ways in which the database can be accessed and applied in materials development efforts are described.
压电材料在许多需要电场和机械应变之间耦合的应用中得到了广泛应用。尽管这类材料具有重要的技术意义,但在具有兼容晶体对称性的所有无机化合物中,只有一小部分具有压电性,其已经通过实验或计算得到了表征。在这项工作中,我们采用基于密度泛函微扰理论的第一性原理计算,计算了近千种化合物的压电张量,从而使该性质的可用数据增加了一个数量级以上。将计算结果与选定的实验数据进行了比较,以确定计算性质的准确性。还介绍了计算的细节,并描述了为使这些计算结果公开可用而开发的数据库的格式。此外,还描述了可以访问和应用该数据库的方法,以用于材料开发工作。